0
登录后你可以
  • 下载海量资料
  • 学习在线课程
  • 观看技术视频
  • 写文章/发帖/加入社区
会员中心
创作中心
发布
  • 发文章

  • 发资料

  • 发帖

  • 提问

  • 发视频

创作活动
LM95214CISDX

LM95214CISDX

  • 厂商:

    BURR-BROWN(德州仪器)

  • 封装:

    WFDFN14_EP

  • 描述:

    SENSOR TEMPERATURE SMBUS 14WSON

  • 数据手册
  • 价格&库存
LM95214CISDX 数据手册
LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Quad Remote Diode and Local Temperature Sensor with SMBus Interface Check for Samples: LM95214 FEATURES APPLICATIONS • • 1 23 • • • • • • • • • • • Accurately Senses Die Temperature of 4 Remote ICs or Diode Junctions and Local Temperature Programmable Digital Filters and Analog Front End Filter 0.125°C LSb Temperature Resolution 0.03125°C LSb Remote Temperature Resolution with Digital Filter Enabled +127.875°C/–128°C and 0°C/255°C Remote Ranges Remote Diode Fault Detection, Model Selection and Offset Correction Mask and Status Register Support 3 Programmable TCRIT Outputs with Programmable Shared Hysteresis and FaultQueue Programmable Conversion Rate and Shutdown Mode One-shot Conversion Control SMBus 2.0 Compatible Interface, Supports TIMEOUT Three-level Address Pin 14-pin WSON Package KEY SPECIFICATIONS • • • • Local Temperature Accuracy ±2.0°C (max) Remote Diode Temperature Accuracy ±1.1°C (Max) Supply Voltage 3.0V to 3.6V Average Supply Current (1Hz Conversion Rate) 0.57 mA (Typ) • • Processor/Computer System Thermal Management – (e.g. Laptop, Desktop, Workstations, Server) Electronic Test Equipment Office Electronics DESCRIPTION The LM95214 is an 11-bit digital temperature sensor with a 2-wire System Management Bus (SMBus) interface that can very accurately monitor the temperature of four remote diodes as well as its own temperature. The four remote diodes can be external devices such as microprocessors, graphics processors that target the ideality of a 2N3904 transistor or diode-connected 2N3904s. The LM95214 reports temperature in two different formats for +127.875°C/–128°C range and 0°C/255°C range. The LM95214 TCRIT1, TCRIT2 and TCRIT3 outputs are triggered when any unmasked channel exceeds its corresponding programmable limit and can be used to shutdown the system, to turn on the system fans or as a microcontroller interrupt function. The current status of the TCRIT1, TCRIT2 and TCRIT3 pins can be read back from the status registers. Mask registers are available for further control of the TCRIT outputs. Two LM95214 remote temperature channels have programmable digital filters while the other two remote channels utilize a fault-queue to minimize unwanted TCRIT events when temperature spikes are encountered. For optimum flexibility and accuracy, each LM95214 channel includes registers for offset correction. A three-level address pin allows connection of up to 3 LM95214s to the same SMBus master. The LM95214 includes power saving functions such as: programmable conversion rate, shutdown mode, and disabling of unused channels. 1 2 3 Please be aware that an important notice concerning availability, standard warranty, and use in critical applications of Texas Instruments semiconductor products and disclaimers thereto appears at the end of this data sheet. Pentium is a trademark of Intel Corporation. All other trademarks are the property of their respective owners. PRODUCTION DATA information is current as of publication date. Products conform to specifications per the terms of the Texas Instruments standard warranty. Production processing does not necessarily include testing of all parameters. Copyright © 2007–2013, Texas Instruments Incorporated LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com Connection Diagram NC 1 14 TCRIT3 VDD 2 13 SMBCLK D4+ 3 12 SMBDAT D3+ 4 11 TCRIT2 TCRIT1 LM95214 D- 5 10 D2+ 6 9 A0 D1+ 7 8 GND Figure 1. WSON-14 TOP VIEW Simplified Block Diagram 3.0V-3.6V LM95214 Local Diode Selector D1+ Remote Diode1 Selector D2+ Remote Diode2 Selector D3+ D4+ Remote Diode3 Selector Remote Diode4 Selector D- '-6 Converter 11-Bit or 10-Bit Plus Sign Remote 10-bit Plus Sign Local Local Temperature Registers Temperature Sensor Circuitry Remote 1 Temperature Registers Remote 1 Digital Filter Remote 2 Temperature Registers Remote 1 Offset Register Remote 3 Temperature Registers Remote 2 Digital Filter TCRIT2 T_CRIT Control Logic TCRIT3 Remote 4 Temperature Registers Remote 2 Offset Register Limit, Status and Mask Registers Remote 3 Status Fault Queue Remote 3 Offset Register Remote 4 Status Fault Queue SMBus Interface Remote 4 Offset Register Control Logic TCRIT1 SMBDAT SMBCLK Conversion Rate Rgister Diode Configuration Registers General Configuration Registers 2 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Pin Descriptions Label Pin # Function Typical Connection NC 1 No Connect Not connected. May be left floating, connected to GND or VDD. VDD 2 Positive Supply Voltage Input DC Voltage from 3.0V to 3.6V. VDD should be bypassed with a 0.1 µF capacitor in parallel with 100 pF. The 100 pF capacitor should be placed as close as possible to the power supply pin. Noise should be kept below 200 mVp-p, a 10 µF capacitor may be required to achieve this. D4+ 3 Diode Current Source Fourth Diode Anode. Connected to remote discrete diodeconnected transistor junction or to the diode-connected transistor junction on a remote IC whose die temperature is being sensed. A capacitor is not required between D4+ and D-. A 100 pF capacitor between D4+ and D- can be added and may improve performance in noisy systems. Float this pin if this thermal diode is not used. D3+ 4 Diode Current Source Third Diode Anode. Connected to remote discrete diodeconnected transistor junction or to the diode-connected transistor junction on a remote IC whose die temperature is being sensed. A capacitor is not required between D3+ and D-. A 100 pF capacitor between D3+ and D- can be added and may improve performance in noisy systems. Float this pin if this thermal diode is not used. D− 5 Diode Return Current Sink All Diode Cathodes. Common D- pin for all four remote diodes. D2+ 6 Diode Current Source Second Diode Anode. Connected to remote discrete diodeconnected transistor junction or to the diode-connected transistor junction on a remote IC whose die temperature is being sensed. A capacitor is not required between D2+ and D-. A 100 pF capacitor between D2+ and D- can be added and may improve performance in noisy systems. Float this pin if this thermal diode is not used. D1+ 7 Diode Current Source First Diode Anode. Connected to remote discrete diodeconnected transistor junction or to the diode-connected transistor junction on a remote IC whose die temperature is being sensed. A capacitor is not required between D1+ and D-. A 100 pF capacitor between D1+ and D- can be added and may improve performance in noisy systems. Float this pin if this thermal diode is not used. GND 8 Power Supply Ground System low noise ground. A0 9 Digital Input SMBus slave address select pin. Selects one of three addresses. Can be tied to VDD, GND, or to the middle of a resistor divider connected between VDD and GND. TCRIT1 10 Digital Output, Open-Drain Critical temperature output 1. Requires pull-up resistor. Active "LOW". TCRIT2 11 Digital Output, Open-Drain Critical temperature output 2. Requires pull-up resistor. Active "LOW". SMBDAT 12 SMBus Bidirectional Data Line, Open-Drain Output From and to Controller; may require an external pull-up resistor SMBCLK 13 SMBus Clock Input From Controller; may require an external pull-up resistor TCRIT3 14 Digital Output, Open-Drain Critical temperature output 3. Requires pull-up resistor. Active "LOW". Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 3 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com Typical Application +3.3V Standby C3 10 PF C2 0.1 PF C1* 100 pF C4** 100 pF Ambient Board Q1 MMBT3904 C5** 100 pF Q2 MMBT3904 Processor ASIC C6** 100 pF 1 NC 2 VDD 3 D4+ 4 D3+ 5 D6 D2+ 7 D1+ R1 10k 14 TCRIT3 13 SMBCLK 12 SMBDAT 11 TCRIT2 10 TCRIT1 9 A0 8 GND R2 R3 10k 10k R4 1.3k R5 1.3k SMBCLK SMBDAT SMBus Master LM95214 C7** 100 pF * Note, place close to LM95214 pins. ** Note, optional - place close to LM95214 pins. These devices have limited built-in ESD protection. The leads should be shorted together or the device placed in conductive foam during storage or handling to prevent electrostatic damage to the MOS gates. 4 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Absolute Maximum Ratings (1) −0.3 to 6.0V Supply Voltage −0.5 to 6.0 Voltage at SMBDAT, SMBCLK, TCRIT1, TCRIT2, TCRIT3 −0.3 to (VDD + 0.3)V Voltage at Other Pins D− Input Current ±1 mA Input Current at All Other Pins (2) ±5 mA Package Input Current (2) 30 mA Output Sink Current SMBDAT, TCRIT1, TCRIT2, TCRIT3 10 mA −65 to +150°C Storage Temperature ESD Susceptibility (3) Human Body Model 2000V Machine Model 200V Charge Device Model 1000V Soldering process must comply with Texas Instruments' reflow temperature profile specifications. Refer to http://www.ti.com/packaging (4) (1) (2) (3) (4) Absolute Maximum Ratings indicate limits beyond which damage to the device may occur. DC and AC electrical specifications do not apply when operating the device beyond its rated operating conditions. When the input voltage (VI) at any pin exceeds the power supplies (VI < GND or VI > VDD), the current at that pin should be limited to 5 mA. Parasitic components and or ESD protection circuitry are shown in the table below for the LM95214's pins. Human body model, 100 pF discharged through a 1.5 kΩ resistor. Machine model, 200 pF discharged directly into each pin. Charged Device Model (CDM) simulates a pin slowly acquiring charge (such as from a device sliding down the feeder in an automated assembler) then rapidly being discharged. Reflow temperature profiles are different for packages containing lead (Pb) than for those that do not. Operating Ratings (1) (2) −40 to +140°C Operating Temperature Range Electrical Characteristics Temperature Range TMIN ≤ TA ≤ TMAX°C LM95214CISD −40 ≤ TA ≤ +125°C Supply Voltage Range (VDD) (1) (2) +3.0 to +3.6V Absolute Maximum Ratings indicate limits beyond which damage to the device may occur. DC and AC electrical specifications do not apply when operating the device beyond its rated operating conditions. Thermal resistance junction-to-ambient when attached to a 4 layer printed circuit board per JEDEC standard JESD51-7: – 14-lead WSON = 90°C/W (no thermal vias, no airflow) – 14-lead WSON = 63°C/W (1 thermal via, no airflow) – 14-lead WSON = 43°C/W (6 thermal vias, no airflow) – 14-lead WSON = 31°C/W (6 thermal vias, 900 ln. ft. / min. airflow) Note, all quoted values include +15% error factor from nominal value. Temperature-to-Digital Converter Electrical Characteristics Unless otherwise noted, these specifications apply for VDD = +3.0Vdc to 3.6Vdc. Boldface limits apply for TA = TJ = TMIN ≤ TA ≤ TMAX; all other limits TA = TJ = +25°C, unless otherwise noted. Parameter Conditions Typical (1) Limits (2) Units (Limit) Temperature Error Using Local Diode TA = -40°C to +125°C (3) ±2 °C (max) Temperature Error Using an MMBT3904 Transistor Remote Diode (4) TA = +25°C to +85°C TD = +60°C to +100°C ±1.1 °C (max) TA = +25°C to +85°C TD = −40°C to +125°C ±1.3 °C (max) TA = −40°C to +85°C TD = −40°C to +125°C ±3.0 °C (max) TA = −40°C to +85°C TD = 125°C to +140°C ±3.3 °C (max) (1) (2) (3) (4) ±1 Typicals are at TA = 25°C and represent most likely parametric norm. Limits are specified to AOQL (Average Outgoing Quality Level). Local temperature accuracy does not include the effects of self-heating. The rise in temperature due to self-heating is the product of the internal power dissipation of the LM95214 and the thermal resistance. See Note 2 under Operating Ratings table for the thermal resistance to be used in the self-heating calculation. The accuracy of the LM95214CISD is ensured when using a typical MMBT3904 diode-connected transistor. For further information on other thermal diodes see applications DIODE NON-IDEALITY. Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 5 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com Temperature-to-Digital Converter Electrical Characteristics (continued) Unless otherwise noted, these specifications apply for VDD = +3.0Vdc to 3.6Vdc. Boldface limits apply for TA = TJ = TMIN ≤ TA ≤ TMAX; all other limits TA = TJ = +25°C, unless otherwise noted. Parameter Typical (1) Conditions Local Diode Measurement Resolution Remote Diode Measurement Resolution 11 Digital Filter Off Digital Filter On (Remote Diodes 1 and 2 only) Conversion Time of All Temperatures at the Fastest Setting (5) Quiescent Current (6) Limits (2) All Channels are Enabled in Default State Bits 0.125 °C 11 Bits 0.125 °C 13 Bits 0.03125 °C 1100 1210 ms (max) 1 External Channel 31 34 ms (max) Local only 30 33 ms (max) SMBus Inactive, 1Hz Conversion Rate, channels in default state 570 800 µA (max) Shutdown 360 D− Source Voltage µA 0.4 Remote Diode Source Current Units (Limit) High level 160 Low level 10 V 230 µA (max) 2.8 1.6 V (max) V (min) Power-On Reset Threshold Measured on VDD input, falling edge TCRIT1 Pin Temperature Threshold Default Diodes 1 and 2 only +110 °C TCRIT2 Pin Temperature Threshold Default all channels +85 °C TCRIT3 Pin Temperature Threshold Default Diodes 3 and 4 only +85 °C (5) (6) This specification is provided only to indicate how often temperature data is updated. The LM95214 can be read at any time without regard to conversion state (and will yield last conversion result). Quiescent current will not increase substantially with an SMBus communication. Logic Electrical Characteristics DIGITAL DC CHARACTERISTICS Unless otherwise noted, these specifications apply for VDD = +3.0Vdc to 3.6Vdc. Boldface limits apply for TA = TJ = TMIN to TMAX; all other limits TA= TJ=+25°C, unless otherwise noted. Symbol Parameter Conditions Typical (1) Limits (2) Units (Limit) SMBDAT, SMBCLK INPUTS VIN(1) Logical “1” Input Voltage 2.1 V (min) VIN(0) Logical “0”Input Voltage 0.8 V (max) VIN(HYST) SMBDAT and SMBCLK Digital Input Hysteresis 400 mV IIN(1) Logical “1” Input Current VIN = VDD 0.005 10 µA (max) IIN(0) Logical “0” Input Current VIN = 0V −0.005 -10 µA (max) CIN Input Capacitance 5 pF A0 DIGITAL INPUT (1) (2) 6 VIH Input High Voltage 0.90 × VDD V (min) VIM Input Middle Voltage 0.57 × VDD V (max) VIL Input Low Voltage 0.43 × VDD V (min) 0.10 × VDD V (max) IIN(1) Logical "1" Input Current VIN = VDD −0.005 −10 µA (min) IIN(0) Logical "0" Input Current VIN = 0V 0.005 10 µA (max) CIN Input Capacitance 5 pF Typicals are at TA = 25°C and represent most likely parametric norm. Limits are specified to AOQL (Average Outgoing Quality Level). Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Logic Electrical Characteristics (continued) DIGITAL DC CHARACTERISTICS Unless otherwise noted, these specifications apply for VDD = +3.0Vdc to 3.6Vdc. Boldface limits apply for TA = TJ = TMIN to TMAX; all other limits TA= TJ=+25°C, unless otherwise noted. Symbol Parameter Conditions Typical (1) Limits (2) Units (Limit) SMBDAT, TCRIT1, TCRIT2, TCRIT3 DIGITAL OUTPUTS IOH VOL(SMBDAT) VOL(TCRIT) COUT High Level Output Current VOH = VDD 10 µA (max) SMBus Low Level Output Voltage IOL = 4 mA IOL = 6 mA 0.4 0.6 V (max) V (max) TCRIT1, TCRIT2, TCRIT3 Low Level Output Voltage IOL= 6 mA 0.4 V (max) Digital Output Capacitance 5 pF SMBus DIGITAL SWITCHING CHARACTERISTICS Unless otherwise noted, these specifications apply for VDD=+3.0 Vdc to +3.6 Vdc, CL (load capacitance) on output lines = 80 pF. Boldface limits apply for TA = TJ = TMIN to TMAX; all other limits TA = TJ = +25°C, unless otherwise noted. The switching characteristics of the LM95214 fully meet or exceed the published specifications of the SMBus version 2.0. The following parameters are the timing relationships between SMBCLK and SMBDAT signals related to the LM95214. They adhere to but are not necessarily the SMBus bus specifications. Symbol Conditions Typical (1) Limits (2) Units (Limit) 100 10 kHz (max) kHz (min) fSMB SMBus Clock Frequency tLOW SMBus Clock Low Time from VIN(0)max to VIN(0)max 4.7 25 µs (min) ms (max) tHIGH SMBus Clock High Time from VIN(1)min to VIN(1)min 4.0 µs (min) (3) tR,SMB SMBus Rise Time See tF,SMB SMBus Fall Time See (4) tOF Output Fall Time CL = 400 pF, IO = 3 mA (4) 1 µs (max) 0.3 µs (max) 250 ns (max) SMBDAT and SMBCLK Time Low for Reset of Serial Interface (5) 25 35 ms (min) ms (max) tSU;DAT Data In Setup Time to SMBCLK High 250 ns (min) tHD;DAT Data Out Stable after SMBCLK Low 300 1075 ns (min) ns (max) tHD;STA Start Condition SMBDAT Low to SMBCLK Low (Start condition hold before the first clock falling edge) 100 ns (min) tSU;STO Stop Condition SMBCLK High to SMBDAT Low (Stop Condition Setup) 100 ns (min) tSU;STA SMBus Repeated Start-Condition Setup Time, SMBCLK High to SMBDAT Low 0.6 µs (min) SMBus Free Time Between Stop and Start Conditions 1.3 µs (min) tTIMEOUT tBUF (1) (2) (3) (4) (5) Parameter Typicals are at TA = 25°C and represent most likely parametric norm. Limits are specified to AOQL (Average Outgoing Quality Level). The output rise time is measured from (VIN(0)max − 0.15V) to (VIN(1)min + 0.15V). The output fall time is measured from (VIN(1)min + 0.15V) to (VIN(0)max − 0.15V). Holding the SMBDAT and/or SMBCLK lines Low for a time interval greater than tTIMEOUT will reset the LM95214's SMBus state machine, therefore setting SMBDAT and SMBCLK pins to a high impedance state. Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 7 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com tLOW tR SMBCL K VIL tBUF SMBDA T tF VIH tHD;STA tHIGH tSU;STA tSU;DAT tHD;DAT tSU;STO VIH VIL P S P Figure 2. SMBus Communication 8 Pin # Label Circuit 1 NC – 2 VDD A 3 D4+ A 4 D3+ A 5 D- A 6 D2+ A 7 D1+ A 8 GND – 9 A0 B 10 TCRIT1 B 11 TCRIT2 B 12 SMBDAT B 13 SMBCLK B 14 TCRIT2 B Circuits for Pin ESD Protection Structure V+ D2 PIN D1 D3 6.5V ESD CLAMP GND Circuit A PIN D1 SNP GND Circuit B Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Typical Performance Characteristics 3.0 Thermal Diode Capacitor or PCB Leakage Current Effect on Remote Diode Temperature Reading Conversion Rate Effect on Average Power Supply Current VDD = +3.3V AVERAGE I DD (mA) 2.5 TA = 25°C 2.0 1.5 1.0 0.5 0.0 100 1000 10000 CONVERSION TIME (ms) Figure 3. Figure 4. Remote Temperature Reading Sensitivity to Thermal Diode Filter Capacitance Figure 5. Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 9 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com FUNCTIONAL DESCRIPTION The LM95214 is an 11-bit digital temperature sensor with a 2-wire System Management Bus (SMBus) interface that can monitor the temperature of four remote diodes as well as its own temperature. The LM95214 can be used to very accurately monitor the temperature of up to four external devices such as microprocessors, graphics processors or diode-connected 2N3904 transistor. Any device whose thermal diode can be modeled by an MMBT3904 transistor will work well with the LM95214. The LM95214 reports temperature in two different formats for +127.875°C/–128°C range and 0°C/255°C range. The LM95214 has a Sigma-Delta ADC (Analog-to-Digital Converter) core which provides the first level of noise imunity. For improved performance in a noisy environment the LM95214 includes programmable digital filters for Remote Diode 1 and 2 temperature readings. When the digital filters are invoked the resolution for Remote Diode 1 and 2 readings increases to 0.03125°C. For maximum flexibility and best accuracy the LM95214 includes offset registers that allow calibration of other diode types. Diode fault detection circuitry in the LM95214 can detect the absence or fault state of a remote diode: whether D+ is shorted to VDD, D- or ground, or whether D+ is floating. The LM95214 TCRIT1, TCRIT2 and TCRIT3 active low outputs are triggered when any unmasked channel exceeds its corresponding programmable limit and can be used to shutdown the system, to turn on the system fans or as a microcontroller interrupt function. The current status of the TCRIT1, TCRIT2 and TCRIT3 pins can be read back from the status registers via the SMBus interface. Two of the remote channels have two separate limits each that control the TCRIT1 and TCRIT2 pins. The remaining two channels and the local channel each have one limit to control both the TCRIT1 and TCRIT2 pins. The TCRIT3 pin shares the limits of the TCRIT2 pin but allows for different masking options. All limits have a shared programmable hysteresis register. Remote Diode 1 and 2 temperature channels have programmable digital filters while the other two remote temperature channels utilize a fault-queue in order to avoid false triggering the TCRIT pins. The LM95214 has a three-level address pin to connect up to 3 devices to the same SMBus master. LM95214 also has programmable conversion rate register as well as a shutdown mode for power savings. One round of conversions can be triggered in shutdown mode by writing to the one-shot register through the SMBus interface. LM95214 can be programmed to turn off unused channels for more power savings. The LM95214 register set has an 8-bit data structure and includes: 1. Temperature Value Registers with signed format – Most-Significant-Byte (MSB) and Least-Significant-Byte (LSB) Local Temperature – MSB and LSB Remote Temperature 1 – MSB and LSB Remote Temperature 2 – MSB and LSB Remote Temperature 3 – MSB and LSB Remote Temperature 4 2. Temperature Value Registers with unsigned format – MSB and LSB Remote Temperature 1 – MSB and LSB Remote Temperature 2 – MSB and LSB Remote Temperature 3 – MSB and LSB Remote Temperature 4 3. Diode Configuration Registers – Diode Model Select – Remote 1 Offset – Remote 2 Offset – Remote 3 Offset – Remote 4 Offset 4. General Configuration Registers – Configuration (Standby, Fault Queue enable for Remote 3 and 4; Conversion Rate) – Channel Conversion Enable – Filter Setting for Remote 1 and 2 – 1-Shot 10 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 5. Status Registers – Main Status Register (Busy bit, Not Ready, Status Register 1 to 4 Flags) – Status 1 (diode fault) – Status 2 (TCRIT1) – Status 3 (TCRIT2) – Status 4 (TCRIT3) 6. Mask Registers – TCRIT1 Mask – TCRIT2 Mask – TCRIT3 Mask 7. Limit Registers – Local Tcrit Limit – Remote 1 Tcrit-1 Limit – Remote 2 Tcrit-1 Limit – Remote 3 Tcrit Limit – Remote 4 Tcrit Limit – Remote 1 Tcrit-2 and Tcrit-3 Limit – Remote 2 Tcrit-2 and Tcrit-3 Limit – Common Tcrit Hysteresis 8. Manufacturer ID Register 9. Revision ID Register CONVERSION SEQUENCE The LM95214 takes approximately 190 ms to convert the Local Temperature, Remote Temperatures 1 through 4, and to update all of its registers. These conversions for each thermal diode are addressed in a round robin sequence. Only during the conversion process the busy bit (D7) in Status register (02h) is high. The conversion rate may be modified by the Conversion Rate bits found in the Configuration Register (03h). When the conversion rate is modified a delay is inserted between each round of conversions, the actual time for each round remains at 190 ms (typical all channels enabled). The time a round takes depends on the number of channels that are on. Different conversion rates will cause the LM95214 to draw different amounts of average supply current as shown in Figure 6. This curve assumes all the channels are on. If channels are turned off the average current will drop since the round robin time will decrease and the shutdown time will increase during each conversion interval. 3.0 VDD = +3.3V AVERAGE I DD (mA) 2.5 TA = 25°C 2.0 1.5 1.0 0.5 0.0 100 1000 10000 CONVERSION TIME (ms) Figure 6. Conversion Rate Effect on Power Supply Current POWER-ON-DEFAULT STATES The LM95214 always powers up to these known default states. The LM95214 remains in these states until after the first conversion. Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 11 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 1. 2. 3. 4. 5. 6. 7. www.ti.com All Temperature readings set to 0°C until the end of the first conversion Remote offset for all channels 0°C Configuration: Active converting, Fault Queue enabled for Remote 3 and 4 Continuous conversion with all channels enabled, time = 1s Enhanced digital filter enabled for Remote 1 and 2 Status Registers depends on state of thermal diode inputs Local and Remote Temperature Limits for TCRIT1, TCRIT2 and TCRIT3 outputs: Output Pin Temperature Channel Limit Remote 4 (°C) Remote 3 (°C) Remote 2 (°C) Remote 1 (°C) Local (°C) TCRIT1 Masked, 85 Masked, 85 110 110 Masked, 85 TCRIT2 85 85 85 85 85 TCRIT3 85 85 Masked, 85 Masked, 85 Masked, 85 8. Manufacturers ID set to 01h 9. Revision ID set to 7Bh SMBus INTERFACE The LM95214 operates as a slave on the SMBus, so the SMBCLK line is an input and the SMBDAT line is bidirectional. The LM95214 never drives the SMBCLK line and it does not support clock stretching. According to SMBus specifications, the LM95214 has a 7-bit slave address. Three SMBus device address can be selected by connecting A0 (pin 6) to either Low, Mid-Supply or High voltages. The LM95214 has the following SMBus slave address: A0 Pin State SMBus Device Address A[6:0] Hex Binary Low 18h 001 1000 Mid-Supply 4Dh 100 1101 High 4Eh 100 1110 TEMPERATURE CONVERSION SEQUENCE Each of the 5 temperature channels of LM95214 can be turned OFF independent from each other via the Channel Enable Register. Turning off unused channels will increase the conversion speed in the fastest conversion speed mode. If the slower conversion speed settings are used, disabling unused channels will reduce the average power consumption of LM95214. Digital Filter In order to suppress erroneous remote temperature readings due to noise as well as increase the resolution of the temperature, the LM95214 incorporates a digital filter for Remote 1 and 2 Temperature Channels. When a filter is enabled the filtered readings are used for the TCRIT comparisons. There are two possible digital filter settings that are enabled through the Filter Setting Register at register address 0Fh. The filter for each channel can be set according to the following table: 12 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 R1F[1:0] or R2F[1:0] Filter Setting 0 0 No Filter 0 1 Filter (equivalent to Level 2 filter of the LM86/LM89) 1 0 Reserved 1 1 Enhanced Filter (Filter with transient noise clipping) Figure 7, Figure 8, andFigure 9 describe the filter output in response to a step input and an impulse input. Figure 7. Seventeen and fifty degree step response Figure 8. Impulse response with input transients less than 4°C Figure 9. Impulse response with input transients great than 4°C 45 LM95214 with Filter Off 43 TEMPERATURE (°C) 41 39 37 35 LM95214 with Filter On 33 31 29 27 25 0 50 100 150 200 SAMPLE NUMBER Figure 10. Digital Filter Response in a typical Intel processor on a 65 nm or 90 nm process. The filter curves were purposely offset for clarity. Figure 10 shows the filter in use in a typical system. Note that the two curves have been purposely offset for clarity. Inserting the filter does not induce an offset as shown. Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 13 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com FAULT QUEUE In order to suppress erroneous TCRIT1,TCRIT2 and TCRIT3 triggering the LM95214 incorporates a Fault Queue for the unfiltered remote channels 3 and 4. The Fault Queue acts to ensure the remote temperature measurement of these channels is genuinely beyond the corresponding Tcrit limit by not triggering until three consecutive out of limit measurements have been made, see Figure 11 for an example. The Fault Queue defaults on upon power-up. The fault queue for channels 3 and 4 can be turned ON or OFF via bits 0 and 1 of the Configuration Register. When the fault queue is enabled, the TCRIT1, TCRIT2 and TCRIT3 pins will be triggered if the temperature is above the Tcrit limit for 3 consecutive conversions and the corresponding mask bit is 0 in the TCRIT Mask registers. Similarly the temperature needs to be below the Tcrit limit minus the hysteresis value for three consecutive conversions for the TCRIT1, TCRIT2 and TCRIT3 pins to deactivate. Remote 4 Temperature Readings Remote 4 Tcrit Limit Register Value n+11 n+9 n+10 n+8 n+7 n+6 n+5 n+4 n+3 n+2 n n+1 Status 4 Register R4T3 Bit SAMPLE NUMBER Figure 11. Fault Queue Response Diagram (with 0°C hysteresis) TEMPERATURE DATA FORMAT Temperature data can only be read from the Local and Remote Temperature value registers. The data format for all temperature values is left justified 16-bit word available in two 8-bit registers. Unused bits will always report "0". All temperature data is clamped and will not roll over when a temperature exceeds full-scale value. Remote temperature data for all channels can be represented by an 11-bit, two's complement word or unsigned binary word with an LSb (Least Significant Bit) equal to 0.125°C. Table 1. 11-bit, 2's complement (10-bit plus sign) Temperature 14 Digital Output Binary Hex +125°C 0111 1101 0000 0000 7D00h +25°C 0001 1001 0000 0000 1900h +1°C 0000 0001 0000 0000 0100h +0.125°C 0000 0000 0010 0000 0020h 0°C 0000 0000 0000 0000 0000h −0.125°C 1111 1111 1110 0000 FFE0h FF00h −1°C 1111 1111 0000 0000 −25°C 1110 0111 0000 0000 E700h −55°C 1100 1001 0000 0000 C900h Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Table 2. 11-bit, unsigned binary Temperature Digital Output Binary Hex +255.875°C 1111 1111 1110 0000 FFE0h +255°C 1111 1111 0000 0000 FF00h +201°C 1100 1001 0000 0000 C900h +125°C 0111 1101 0000 0000 7D00h +25°C 0001 1001 0000 0000 1900h +1°C 0000 0001 0000 0000 0100h +0.125°C 0000 0000 0010 0000 0020h 0°C 0000 0000 0000 0000 0000h When the digital filter is enabled on Remote 1 and 2 channels temperature data is represented by a 13-bit unsigned binary or 12-bit plus sign (two's complement) word with an LSb equal to 0.03125°C. Table 3. 13-bit, 2's complement (12-bit plus sign) Temperature Digital Output Binary Hex +125°C 0111 1101 0000 0000 7D00h +25°C 0001 1001 0000 0000 1900h +1°C 0000 0001 0000 0000 0100h +0.03125°C 0000 0000 0000 1000 0008h 0°C 0000 0000 0000 0000 0000h −0.03125°C 1111 1111 1111 1000 FFF8h −1°C 1111 1111 0000 0000 FF00h −25°C 1110 0111 0000 0000 E700h −55°C 1100 1001 0000 0000 C900h Table 4. 13-bit, unsigned binary Temperature Digital Output Binary Hex +255.875°C 1111 1111 1110 0000 FFE0h +255°C 1111 1111 0000 0000 FF00h +201°C 1100 1001 0000 0000 C900h +125°C 0111 1101 0000 0000 7D00h +25°C 0001 1001 0000 0000 1900h +1°C 0000 0001 0000 0000 0100h +0.03125°C 0000 0000 0000 1000 0008h 0°C 0000 0000 0000 0000 0000h Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 15 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com Local Temperature data is only represented by an 11-bit, two's complement, word with an LSb equal to 0.125°C. Table 5. 11-bit, 2's complement (10-bit plus sign) Temperature Digital Output Binary Hex +125°C 0111 1101 0000 0000 7D00h +25°C 0001 1001 0000 0000 1900h +1°C 0000 0001 0000 0000 0100h +0.125°C 0000 0000 0010 0000 0020h 0°C 0000 0000 0000 0000 0000h −0.125°C 1111 1111 1110 0000 FFE0h −1°C 1111 1111 0000 0000 FF00h −25°C 1110 0111 0000 0000 E700h −55°C 1100 1001 0000 0000 C900h SMBDAT OPEN-DRAIN OUTPUT The SMBDAT output is an open-drain output and does not have internal pull-ups. A “high” level will not be observed on this pin until pull-up current is provided by some external source, typically a pull-up resistor. Choice of resistor value depends on many system factors but, in general, the pull-up resistor should be as large as possible without effecting the SMBus desired data rate. This will minimize any internal temperature reading errors due to internal heating of the LM95214. The maximum resistance of the pull-up to provide a 2.1V high level, based on LM95214 specification for High Level Output Current with the supply voltage at 3.0V, is 82 kΩ (5%) or 88.7 kΩ (1%). TCRIT1, TCRIT2, and TCRIT3 OUTPUTS The LM95214's TCRIT pins are active-low open-drain outputs and do not include internal pull-up resistors. A “high” level will not be observed on these pins until pull-up current is provided by some external source, typically a pull-up resistor. Choice of resistor value depends on many system factors but, in general, the pull-up resistor should be as large as possible without effecting the performance of the device receiving the signal. This will minimize any internal temperature reading errors due to internal heating of the LM95214. The maximum resistance of the pull-up to provide a 2.1V high level, based on LM95214 specification for High Level Output Current with the supply voltage at 3.0V, is 82 kΩ (5%) or 88.7 kΩ (1%). The three TCRIT pins can each sink 6 mA of current and still ensured a "Logic Low" output voltage of 0.4V. If all three pins are set at maximum current this will cause a power dissipation of 7.2 mW. This power dissipation combined with a thermal resistance of 77.8°C/W will cause the LM95214's junction temperature to rise approximately 0.6°C and thus cause the Local temperature reading to shift. This can only be cancelled out if the environment that the LM95214 is enclosed in has stable and controlled air flow over the LM95214, as airflow can cause the thermal resistance to change dramatically. Tcrit LIMITS AND TCRIT OUTPUTS Figure 12 describes a simplified diagram of the temperature comparison and status register logic. Figure 13, Figure 14, and Figure 15 describe simplified logic diagrams of the circuitry associated with the status registers, mask registers and the TCRIT output pins. 16 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Remote Temp 4 Status 2 (TCRIT1) A AtB B S Remote 4 Tcrit Limit Q A R2T1 A B + - R4T1 R3T1 R B R1T1 LT1 A Remote Temp 3 AtB B S Remote 3 Tcrit Limit Q R A A B + - Remote Temp 2 B A AtB B S Remote 2 Tcrit-1 Limit Q R A R4T2 A B + - Status 3 (TCRIT2) B R3T2 R2T2 Remote Temp 1 R1T2 A LT2 AtB B S Remote 1 Tcrit-1 Limit Q R A A B + - B A AtB B Remote 2 Tcrit-2 & Tcrit-3 Limit S Q R A A B + - Status 4 (TCRIT3) B R4T3 R3T3 A R2T3 AtB B Remote 1 Tcrit2 & Tcrit-3 Limit S Q R1T3 LT3 R A A B + - B A Local Temp AtB B S Local Tcrit Limit Q R A A B + - B Common Tcrit Hysteresis Figure 12. Temperature Comparison Logic and Status Register Simplified Diagram Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 17 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com Status 1 (Diode Fault) Status 1 (Diode Fault) R4DO R4DO R4DS R4DS R3DO R3DO R3DS R3DS R2DO R2DO R2DS R2DS R1DO R1DO R1DS R1DS Status 2 (TCRIT1) Status 3 (TCRIT2) R4T1 R4T2 R3T1 R3T2 R2T1 TCRIT1 R2T2 R1T1 R1T2 LT1 LT2 TCRIT1 Mask TCRIT2 Mask R4TM R4TM R3TM R3TM R2T1M R2T2M R1T1M R1T2M LTM LTM TCRIT2 Figure 13. TCRIT1 Mask Register, Status Register 1 Figure 14. TCRIT2 Mask Register, Status Register 1 and 2, and TCRIT1 output logic diagram and 3, and TCRIT2 output logic diagram Status 1 (Diode Fault) R4DO R4DS R3DO R3DS R2DO R2DS R1DO R1DS Status 4 (TCRIT3) R4T3 R3T3 R2T3 TCRIT3 R1T3 LT3 TCRIT3 Mask R4TM R3TM R2T2M R1T2M LTM Figure 15. TCRIT3 Mask Register, Status Register 1 and 4, and TCRIT3 output logic diagram If enabled, local temperature is compared to the user programmable Local Tcrit Limit Register (Default Value = 85°C). The result of this comparison is stored in Status Register 2, Status Register 3 and Status Register 4 (see Figure 12). The comparison result can trigger TCRIT1 pin, TCRIT2 pin or TCRIT3 pin depending on the settings in the TCRIT1 Mask, TCRIT2 Mask and TCRIT3 Mask Registers (see Figure 13, Figure 14, and Figure 15). The comparison result can also be read back from the Status Register 2, Status Register 3 and Status Register 4. 18 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 If enabled, remote temperature 1 is compared to the user programmable Remote 1 Tcrit-1 Limit Register (Default Value 110°C) and Remote 1 Tcrit-2 Limit Register (Default Value = 85°C). The result of this comparison is stored in Status Register 2, Status Register 3 and Status Register 4 (see Figure 12). The comparison result can trigger TCRIT1 pin, TCRIT2 pin or TCRIT3 pin depending on the settings in the TCRIT1 Mask, TCRIT2 Mask and TCRIT3 Mask Registers (see Figure 13, Figure 14, and Figure 15). The comparison result can also be read back from the Status Register 2, Status Register 3 and Status Register 4. The remote temperature 2 operates in a similar manner to remote temperature 1 using its associated user programmable limit registers: Remote 2 Tcrit-1 Limit Register (Default Value 110°C) and Remote 2 Tcrit-2 Limit Register (Default Value = 85°C). When enabled, the remote temperature 3 is compared to the user programmable Remote 3 Tcrit Limit Register (Default Value 85°C). The comparison result can trigger TCRIT1 pin, TCRIT2 pin or TCRIT3 pin depending on the settings in the TCRIT1 Mask, TCRIT2 Mask and TCRIT3 Mask Registers. The comparison result can also be read back from the Status Register 2, Status Register 3 and Status Register 4. The remote temperature 4 operates in a similar manner to remote temperature 3 using its associated user programmable limit register: Remote 4 Tcrit Limit Register (Default Value 85°C). Table 6. Limit assignments for each TCRIT output pin: TCRIT1 TCRIT2 TCRIT3 Remote 4 Remote 4 Tcrit Limit Remote 4 Tcrit Limit Remote 4 Tcrit Limit Remote 3 Remote 3 Tcrit Limit Remote 3 Tcrit Limit Remote 3 Tcrit Limit Remote 2 Remote 2 Tcrit-1 Limit Remote 2 Tcrit-2 Limit Remote 2 Tcrit-2 Limit Remote 1 Remote 1 Tcrit-1 Limit Remote 1 Tcrit-2 Limit Remote 1 Tcrit-2 Limit Local Local Tcrit Limit Local Tcrit Limit Local Tcrit Limit Local Tcrit Limit Local Tcrit Limit Common Hysteresis Local Temperature Common Hysteresis T_CRITn Output Pin Status bit LTn Figure 16. TCRIT response diagram (masking options not included) The TCRIT response diagram of Figure 16 shows the local temperature interaction with the Tcrit limit and hysteresis value. As can be seen in the diagram when the local temperature exceeds the Tcrit limit register value the LTn Status bit is set and the T_CRITn output(s) is/are activated. The Status bit(s) and outputs are not deactivated until the temperature goes below the value calculated by subtracting the Common Hysteresis value programmed from the limit. This diagram mainly shows an example function of the hysteresis and is not meant to show complete function of the possible settings and options of all the TCRIT outputs and limit values. DIODE FAULT DETECTION The LM95214 is equipped with operational circuitry designed to detect fault conditions concerning the remote diodes. In the event that the D+ pin is detected as shorted to GND, D−, VDD or D+ is floating, the Remote Temperature reading is –128.000°C if signed format is selected and 0°C if unsigned format is selected. In addition, the appropriate status register bits RD1M or RD2M (D1 or D0) are set. Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 19 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com COMMUNICATING with the LM95214 The data registers in the LM95214 are selected by the Command Register. At power-up the Command Register is set to “00”, the location for the Read Local Temperature Register. The Command Register latches the last location it was set to. Each data register in the LM95214 falls into one of three types of user accessibility: 1. Read only 2. Write only 3. Write/Read same address A Write to the LM95214 will always include the address byte and the command byte. A write to any register requires one data byte. Reading the LM95214 can take place either of two ways: 1. If the location latched in the Command Register is correct (most of the time it is expected that the Command Register will point to one of the Read Temperature Registers because that will be the data most frequently read from the LM95214), then the read can simply consist of an address byte, followed by retrieving the data byte. 2. If the Command Register needs to be set, then an address byte, command byte, repeat start, and another address byte will accomplish a read. The data byte has the most significant bit first. At the end of a read, the LM95214 can accept either acknowledge or No Acknowledge from the Master (No Acknowledge is typically used as a signal for the slave that the Master has read its last byte). It takes the LM95214 190 ms (typical, all channels enabled) to measure the temperature of the remote diodes and internal diode. When retrieving all 11 bits from a previous remote diode temperature measurement, the master must insure that all 11 bits are from the same temperature conversion. This may be achieved by reading the MSB register first. The LSB will be locked after the MSB is read. The LSB will be unlocked after being read. If the user reads MSBs consecutively, each time the MSB is read, the LSB associated with that temperature will be locked in and override the previous LSB value locked-in. SMBus Timing Diagrams 1 9 1 9 SMBCLK SMBDAT A6 A5 A4 A3 A2 A1 D7 Ack by LM95214 D6 A0 R/W Start by Master D5 Frame 1 Serial Bus Address Byte D4 D3 D2 SMBDAT (Continued) D0 Ack by LM95214 Frame 2 Command Byte 1 SMBCLK (Continued) D1 9 D7 D6 D5 D4 D3 D2 D1 D0 Ack by Stop LM95214 by Master Frame 3 Data Byte Figure 17. Serial Bus Write to the internal Command Register followed by a the Data Byte 1 9 1 9 SMBCLK SMBDAT A6 A5 A4 A3 A2 A1 D7 Ack by LM95214 A0 R/W Start by Master Frame 1 Serial Bus Address Byte D6 D5 D4 D3 D2 Frame 2 Command Byte D1 D0 Ack by Stop LM95214 by Master Figure 18. Serial Bus Write to the Internal Command Register 20 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 1 9 1 9 SMBCLK SMBDAT A6 A4 A5 A2 A3 D7 Ack by LM95214 A1 D6 A0 R/W Start by Master Frame 1 Serial Bus Address Byte D5 D4 D3 D2 D1 D0 NoAck Stop by by Master Master Frame 2 Data Byte from the LM95214 Figure 19. Serial Bus Read from a Register with the Internal Command Register preset to desired value 1 9 1 9 SMBCLK SMBDAT A6 A5 A4 A3 A2 A1 D7 Ack by LM95214 D6 A0 R/W Start by Master D5 Frame 1 Serial Bus Address Byte SMBCLK (Continued) SMBDAT (Continued) 9 A5 A4 A3 A2 A1 D3 D2 D1 D0 Ack Repeat by Start by LM95214 Master Frame 2 Command Byte 1 A6 D4 D7 Ack by LM95214 A0 R/W Frame 3 Serial Bus Address Byte 1 9 D6 D5 D4 D3 D2 D1 D0 Frame 4 Data Byte from the LM95214 No Ack Stop by by Master Master Figure 20. Serial Bus Write followed by a Repeat Start and Immediate Read SERIAL INTERFACE RESET In the event that the SMBus Master is RESET while the LM95214 is transmitting on the SMBDAT line, the LM95214 must be returned to a known state in the communication protocol. This may be done in one of two ways: 1. When SMBDAT is LOW, the LM95214 SMBus state machine resets to the SMBus idle state if either SMBDAT or SMBCLK are held low for more than 35ms (tTIMEOUT). Note that according to SMBus specification 2.0 all devices are to timeout when either the SMBCLK or SMBDAT lines are held low for 2535ms. Therefore, to insure a timeout of all devices on the bus the SMBCLK or SMBDAT lines must be held low for at least 35ms. 2. When SMBDAT is HIGH, have the master initiate an SMBus start. The LM95214 will respond properly to an SMBus start condition at any point during the communication. After the start the LM95214 will expect an SMBus Address address byte. ONE-SHOT CONVERSION The One-Shot register is used to initiate a round of conversions and comparisons when the device is in standby mode, after which the device returns to standby. This is not a data register and it is the write operation that causes the one-shot conversion. The data written to this address is irrelevant and is not stored. A zero will always be read from this register. All the channels that are enabled in the Channel Enable Register will be converted once and the TCRIT1, TCRIT2 and TCRIT3 pins will reflect the comparison results based on this round of conversion results of the channels that are not masked. LM95214 Registers Command register selects which registers will be read from or written to. Data for this register should be transmitted during the Command Byte of the SMBus write communication. Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 21 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 P7 www.ti.com P6 P5 P4 P3 P2 P1 P0 Command Byte P0-P7: Command Table 7. Register Summary Register Name Comman d Byte (Hex) Read/ Write D7 Local Temp MSB 0x10 RO SIGN Local Temp LSB 0x20 RO 1/2 Remote Temp 1 MSB – Signed 0x11 RO SIGN 0x21 RO 1/2 Remote Temp 1 LSB – Signed, Digital Filter Off Remote Temp 1 LSB – Signed, Digital Filter On Remote Temp 2 MSB – Signed Remote Temp 2 LSB – Signed, Digital Filter Off Remote Temp 2 LSB – Signed, Digital Filter On D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) 64 32 16 8 4 2 1 – 1/4 1/8 0 0 0 0 0 – 64 32 16 8 4 2 1 – 0 0 1/4 1/8 0 0 0 – 1/16 1/32 16 8 4 2 1 – 0 0 0 0 0 – 1/16 1/32 0x12 RO SIGN 64 32 0x22 RO 1/2 1/4 1/8 Remote Temp 3 MSB – Signed 0x13 RO SIGN 64 32 16 8 4 2 1 – Remote Temp 3 LSB – Signed 0x23 RO 1/2 1/4 1/8 0 0 0 0 0 – Remote Temp 4 MSB – Signed 0x14 RO SIGN 64 32 16 8 4 2 0 – Remote Temp 4 LSB – Signed 0x24 RO 1/2 1/4 1/8 0 0 0 0 0 – Remote Temp 1 MSB – Unsigned 0x19 RO 128 64 32 16 8 4 2 1 – 0 0 0x29 RO 1/2 1/4 1/8 0 0 0 – 1/16 1/32 16 8 4 2 1 – 0 0 0 0 0 – 1/16 1/32 Remote Temp 1 LSB – Unsigned, Digital Filter Off Remote Temp 1 LSB – Unsigned, Digital Filter On Remote Temp 2 MSB – Unsigned Remote Temp 2 LSB – Unsigned, Digital Filter Off Remote Temp 2 LSB – Unsigned, Digital Filter On 0x1A RO 128 64 32 0x2A RO 1/2 1/4 1/8 Remote Temp 3 MSB – Unsigned 0x1B RO 128 64 32 16 8 4 2 1 – Remote Temp 3 LSB – Unsigned 0x2B RO 1/2 1/4 1/8 0 0 0 0 0 – Remote Temp 4 MSB – Unsigned 0x1C RO 128 64 32 16 8 4 2 1 – Remote Temp 4 LSB – Unsigned 0x2C RO 1/2 1/4 1/8 0 0 0 0 0 – Remote 1 Offset 0x31 R/W SIGN 32 16 8 4 2 1 1/2 0x00 Remote 2 Offset 0x32 R/W SIGN 32 16 8 4 2 1 1/2 0x00 Remote 3 Offset 0x33 R/W SIGN 32 16 8 4 2 1 1/2 0x00 Remote 4 Offset 0x34 R/W SIGN 32 16 8 4 2 1 1/2 0x00 Configuration 0x03 R/W – STBY – – – – R4QE R3QE 0x03 Conversion Rate 0x04 R/W – – – – – – CR1 CR0 0x02 Channel Conversion Enable 0x05 R/W – – – R4CE R3CE R2CE R1CE LCE 0x1F Filter Setting 0x06 R/W – – – – R2F1 R2F0 R1F1 R1F0 0x0F 1-shot 0x0F WO – – – – – – – – – Common Status Register 0x02 RO BUSY NR – – SR4F SR3F SR2F SR1F 0x00 Status 1 (Diode Fault) 0x07 RO R4DO R4DS R3DO R3DS R2DO R2DS R1DO R1DS – Status 2 (TCRIT1) 0x08 RO – – – R4T1 R3T1 R2T1 R1T1 LT1 – Status 3 (TCRIT2) 0x09 RO – – – R4T2 R3T2 R2T2 R1T2 LT2 – Status 4 (TCRIT3) 0x0A RO – – – R4T3 R3T3 R2T3 R1T3 LT3 – 22 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Table 7. Register Summary (continued) Register Name Comman d Byte (Hex) Read/ Write D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) TCRIT1 Mask 0x0C R/W – – – R4TM R3TM R2T1M R1T1M LTM 0x19 TCRIT2 Mask 0x0D R/W – – – R4TM R3TM R2T2M R1T2M LTM 0x00 TCRIT3 Mask 0x0E R/W – – – R4TM R3TM R2T2M R1T2M LTM 0x07 Local Tcrit Limit 0x40 R/W 0 64 32 16 8 4 2 1 0x55 Remote 1 Tcrit-1 Limit 0x41 R/W 128 64 32 16 8 4 2 1 0x6E Remote 2 Tcrit-1 Limit 0x42 R/W 128 64 32 16 8 4 2 1 0x6E Remote 3 Tcrit Limit 0x43 R/W 128 64 32 16 8 4 2 1 0x55 Remote 4 Tcrit Limit 0x44 R/W 128 64 32 16 8 4 2 1 0x55 Remote 1 Tcrit-2 and Tcrit-3 Limit 0x49 R/W 128 64 32 16 8 4 2 1 0x55 Remote 2 Tcrit-2 and Tcrit-3 Limit 0x4A R/W 128 64 32 16 8 4 2 1 0x55 Common Tcrit Hysteresis 0x5A R/W 0 0 0 16 8 4 2 1 0x0A Manufacturer ID 0xFE RO 0 0 0 0 0 0 0 1 0x01 Revision ID 0xFF RO 0 1 1 1 1 0 1 1 0x7B VALUE REGISTERS For data synchronization purposes, the MSB register should be read first if the user wants to read both MSB and LSB registers. The LSB will be locked after the MSB is read. The LSB will be unlocked after being read. If the user reads MSBs consecutively, each time the MSB is read, the LSB associated with that temperature will be locked in and override the previous LSB value locked-in Local Value Registers Register Name Command Read/ Byte Write (Hex) D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) Local Temp MSB 0x10 RO SIGN 64 32 16 8 4 2 1 – Local Temp LSB 0x20 RO 1/2 1/4 1/8 0 0 0 0 0 – Bit(s) Bit Name Read/ Write Description 7 SIGN RO Sign bit 6 64 RO bit weight 64°C 5 32 RO bit weight 32°C 4 16 RO bit weight 16°C 3 8 RO bit weight 8°C 2 4 RO bit weight 4°C 1 2 RO bit weight 2°C 0 1 RO bit weight 1°C Bit(s) Bit Name Read/ Write Description 7 1/2 RO bit weight 1/2°C (0.5°C) 6 1/4 RO bit weight 1/4°C (0.25°C) 5 1/8 RO bit weight 1/8°C (0.125°C) 4-0 0 RO Reserved – will report "0" when read. The Local temperature MSB value register range is +127°C to −128°C. The value programmed in this register is used to determine a local temperature error event. The Local Limit register range is 0°C to 127°C. The value programmed in this register is used to determine a local temperature error event. Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 23 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com Remote Temperature Value Registers with Signed Format Register Name Command Read/ Byte Write (Hex) Remote Temp 1 MSB – Signed Remote Temp 1 LSB – Signed, Digital Filter Off Remote Temp 1 LSB – Signed, Digital Filter On Remote Temp 2 MSB – Signed Remote Temp 2 LSB – Signed, Digital Filter Off Remote Temp 2 LSB – Signed, Digital Filter On D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) 32 16 8 4 2 1 – 0 0 0 0 0 0 – 1/16 1/32 32 16 8 4 2 1 – 0 0 0 0 0 0 – 1/16 1/32 0x11 RO SIGN 64 0x21 RO 1/2 1/8 0x12 RO SIGN 64 0x22 RO 1/2 1/8 Remote Temp 3 MSB – Signed 0x13 RO SIGN 64 32 16 8 4 2 1 – Remote Temp 3 LSB – Signed 0x23 RO 1/2 1/8 0 0 0 0 0 0 – Remote Temp 4 MSB – Signed 0x14 RO SIGN 64 32 16 8 4 2 0 – Remote Temp 4 LSB – Signed 0x24 RO 1/2 1/8 0 0 0 0 0 0 – The Local temperature MSB value register range is +127°C to −128°C. The value programmed in this register is used to determine a local temperature error event. Bit(s) Bit Name Read/ Write Description 7 SIGN RO Sign bit 6 64 RO bit weight 64°C 5 32 RO bit weight 32°C 4 16 RO bit weight 16°C 3 8 RO bit weight 8°C 2 4 RO bit weight 4°C 1 2 RO bit weight 2°C 0 1 RO bit weight 1°C Bit(s) Bit Name Read/ Write Description 7 1/2 RO bit weight 1/2°C (0.5°C) 6 1/4 RO bit weight 1/4°C (0.25°C) 5 1/8 RO bit weight 1/8°C (0.125°C) 4 0 or 1/16 RO When the digital filter is disabled this bit will always read "0". When the digital filter is enabled this bit will report 1/16°C (0.0625°C) bit state. 3 0 or 1/32 RO When the digital filter is disabled this bit will always read "0". When the digital filter is enabled this bit will report 1/32°C (0.03125°C) bit state. 2-0 0 RO Reserved – will report "0" when read. 24 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Remote Temperature Value Registers with Unsigned Format Register Name Command Read/ Byte Write (Hex) Remote Temp 1 MSB – Unsigned Remote Temp 1 LSB – Unsigned, Digital Filter Off Remote Temp 1 LSB – Unsigned, Digital Filter On Remote Temp 2 MSB – Unsigned Remote Temp 2 LSB – Unsigned, Digital Filter Off Remote Temp 2 LSB – Unsigned, Digital Filter On D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) 32 16 8 4 2 1 – 0 0 0 0 0 0 – 1/16 1/32 32 16 8 4 2 1 – 0 0 0 0 0 0 – 1/16 1/32 0x19 RO 128 64 0x29 RO 1/2 1/8 0x1A RO 128 64 0x2A RO 1/2 1/8 Remote Temp 3 MSB – Unsigned 0x1B RO 128 64 32 16 8 4 2 1 – Remote Temp 3 LSB – Unsigned 0x2B RO 1/2 1/8 0 0 0 0 0 0 – Remote Temp 4 MSB – Unsigned 0x1C RO 128 64 32 16 8 4 2 1 – Remote Temp 4 LSB – Unsigned 0x2C RO 1/2 1/8 0 0 0 0 0 0 – Bit(s) Bit Name Read/ Write Description 7 SIGN RO bit weight 128°C 6 64 RO bit weight 64°C 5 32 RO bit weight 32°C 4 16 RO bit weight 16°C 3 8 RO bit weight 8°C 2 4 RO bit weight 4°C 1 2 RO bit weight 2°C 0 1 RO bit weight 1°C Bit(s) Bit Name Read/ Write Description 7 1/2 RO bit weight 1/2°C (0.5°C) 6 1/4 RO bit weight 1/4°C (0.25°C) 5 1/8 RO bit weight 1/8°C (0.125°C) 4 0 or 1/16 RO When the digital filter is disabled this bit will always read "0". When the digital filter is enabled this bit will report 1/16°C (0.0625°C) bit state. 3 0 or 1/32 RO When the digital filter is disabled this bit will always read "0". When the digital filter is enabled this bit will report 1/32°C (0.03125°C) bit state. 2-0 0 RO Reserved – will report "0" when read. DIODE CONFIGURATION REGISTER Remote 1-4 Offset Register Name Command Read/ Byte Write (Hex) D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) Remote 1 Offset 0x31 R/W SIGN 32 16 8 4 2 1 1/2 0x00 Remote 2 Offset 0x32 R/W SIGN 32 16 8 4 2 1 1/2 0x00 Remote 3 Offset 0x33 R/W SIGN 32 16 8 4 2 1 1/2 0x00 Remote 4 Offset 0x34 R/W SIGN 32 16 8 4 2 1 1/2 0x00 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 25 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com Bit(s) Bit Name Read/ Write Description 7 SIGN R/W Sign bit 6 32 R/W bit weight 32°C 5 16 R/W bit weight 16°C 4 8 R/W bit weight 8°C 3 4 R/W bit weight 4°C 2 2 R/W bit weight 2°C 1 1 R/W bit weight 1°C 0 1/2 R/W bit weight 1/2°C (0.5°C) All registers have 2’s complement format. The offset range for each remote is +63.5°C/−64°C. The value programmed in this register is directly added to the actual reading of the ADC and the modified number is reported in the remote value registers. CONFIGURATION REGISTERS Main Configuration Register Register Name Command Read/ Byte Write (Hex) Configuration 0x03 R/W D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) – STBY – – – – R4QE R3QE 0x03 Bit(s) Bit Name Read/ Write Description 7 – RO Reserved will report "0" when read. 6 STBY R/W Software Standby 1 – standby (when in this mode one conversion sequence can be initiated by writing to the one-shot register) 0 – active/converting 5–2 – RO Reserved – will report "0" when read. 1 R4QE R/W Fault queue enable for Remote 4 1– Fault queue enabled 0– Fault queue disabled 0 R3QE R/W Fault queue enable for Remote 3 1– Fault queue enabled 0– Fault queue disabled Conversion Rate Register Register Name Command Read/ Byte Write (Hex) Conversion Rate 0x04 R/W D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) – – – – – – CR1 CR0 0x02 Bit(s) Bit Name Read/ Write Description 7-2 – RO Reserved – will report "0" when read. 1-0 CR[1:0] R/W Conversion rate control bits modify the time interval for conversion of the channels enabled. The channels enabled are converted sequentially then standby mode enabled for the remainder of the time interval. CR[1:0] 26 Conversion Rate 00 continuous (30 ms to 143 ms) 01 0.364 s 10 1s 11 2.5 s Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Channel Conversion Enable When a conversion is disabled for a particular channel it is skipped. The continuous conversion rate is effected all other conversion rates are not effected as extra standby time is inserted in order to compensate. See Conversion Rate Register description. Register Name Command Read/ Byte Write (Hex) Channel Conversion Enable 0x05 R/W D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) – – – R4CE R3CE R2CE R1CE LCE 0x1F Bit(s) Bit Name Read/ Write Description 7–5 – RO Reserved – will report "0" when read. 4 R4CE R/W Remote 4 Temperature Conversion Enable 1– Remote 4 temp conversion enabled 0– Remote 4 temp conversion disabled 3 R3CE R/W Remote 3 Temperature Conversion Enable 1– Remote 3 temp conversion enabled 0– Remote 3 temp conversion disabled 2 R2CE R/W Remote 2 Temperature Conversion Enable 1– Remote 2 temp conversion enabled 0– Remote 2 temp conversion disabled 1 R1CE R/W Remote 1 Temperature Conversion Enable 1– Remote 1 temp conversion enabled 0– Remote 1 temp conversion disabled 0 LCE R/W Local Temperature Conversion Enable 1– Local temp conversion enabled 0– Local temp conversion disabled Filter Setting Register Name Command Read/ Byte Write (Hex) Filter Setting 0x06 R/W D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) – – – – R2F1 R2F0 R1F1 R1F0 0x0F Bit(s) Bit Name Read/ Write Description 7–4 – RO Reserved – will report "0" when read. 3–2 R2F[1:0] R/W Remote Channel 2 Filter Enable Bits R2F[1:0] 1–0 R1F[1:0] R/W Digital Filter State 00 disable all digital filtering 01 enable basic filter 10 reserved (do not use) 11 enable enhanced filter Remote Channel 1 Filter Enable R1F[1:0] Filter State 00 disable all digital filtering 01 enable basic filter 10 reserved (do not use) 11 enable enhanced filter Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 27 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com 1-Shot Register Name Command Read/ Byte Write (Hex) 1-Shot 0x0F WO D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) – – – – – – – – – Bit(s) Bit Name Read/ Write Description 7–0 - WO Writing to this register activates one conversion for all the enabled channels if the chip is in standby mode (i.e. standby bit = 1). The actual data written does not matter and is not stored. STATUS REGISTERS Common Status Register Register Name Command Read/ Byte Write (Hex) Common Status Register 0x02 RO D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) BUSY NR – – SR4F SR3F SR2F SR1F 0x00 Bit(s) Bit Name Read/ Write Description 7 BUSY RO Busy bit (device converting) 6 NR RO Not Ready bit (30 ms), indicates power up initialization sequence is in progress 5–4 – RO Reserved – will report "0" when read. 3 SR4F RO Status Register 4 Flag: 1 – indicates that Status Register 4 has at least one bit set 0 – indicates that all of Status Register 4 bits are cleared 2 SR3F RO Status Register 3 Flag: 1 – indicates that Status Register 3 has at least one bit set 0 – indicates that all of Status Register 3 bits are cleared 1 SR2F RO Status Register 2 Flag: 1 – indicates that Status Register 2 has at least one bit set 0 – indicates that all of Status Register 2 bits are cleared 0 SR1F RO Status Register 1 Flag: 1 – indicates that Status Register 1 has at least one bit set 0 – indicates that all of Status Register 1 bits are cleared Status 1 Register (Diode Fault) Status fault bits for open or shorted diode (i.e. Short Fault: D+ shorted to Ground or D-; Open Fault: D+ shorted to VDD, or floating). During fault conditions the temperature reading is 0 °C if unsigned value registers are read or –128.000 °C if signed value registers are read. Register Name Command Read/ Byte Write (Hex) Status 1 (Diode Fault) 0x07 RO D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) R4DO R4DS R3DO R3DS R2DO R2DS R1DO R1DS – Bit(s) Bit Name Read/ Write Description 7 R4DO RO Remote 4 diode open fault status: 1 – indicates that remote 4 diode has an "open" fault 0 – indicates that remote 4 diode does not have an "open" fault 6 R4DS RO Remote 4 diode short fault status: 1 – indicates that remote 4 diode has a "short" fault 0 – indicates that remote 4 diode does not have a "short" fault 28 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Bit(s) Bit Name Read/ Write Description 5 R3DO RO Remote 3 diode open fault status: 1 – indicates that remote 3 diode has an "open" fault 0 – indicates that remote 3 diode does not have an "open" fault 4 R3DS RO Remote 3 diode short fault status: 1 – indicates that remote 3 diode has a "short" fault 0 – indicates that remote 3 diode does not have a "short" fault 3 R2DO RO Remote 2 diode open fault status: 1 – indicates that remote 2 diode has an "open" fault 0 – indicates that remote 2 diode does not have an "open" fault 2 R2DS RO Remote 2 diode short fault status: 1 – indicates that remote 2 diode has a "short" fault 0 – indicates that remote 2 diode does not have a "short" fault 1 R1DO RO Remote 1 diode open fault status: 1 – indicates that remote 1 diode has an "open" fault 0 – indicates that remote 1 diode does not have an "open" fault 0 R1DS RO Remote 1 diode short fault status: 1 – indicates that remote 1 diode has a "short" fault 0 – indicates that remote 1 diode does not have a "short" fault Status 2 (TCRIT1) Status bits for TCRIT1. When one or more of these bits are set and if not masked the TCRIT1 output will activate. TCRIT1 will deactivate when all these bits are cleared. Register Name Command Read/ Byte Write (Hex) Status 2 (TCRIT1) 0x08 RO D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) – – – R4T1 R3T1 R2T1 R1T1 LT1 – Bit(s) Bit Name Read/ Write Description 7–5 - RO Reserved – will report "0" when read. 4 R4T1 RO Remote 4 Tcrit Status: 1 – indicates that remote 4 reading is greater than or equal to the value set in Remote 4 Tcrit Limit register 0 – indicates that that remote 4 reading is less than the value set in Remote 4 Tcrit Limit register minus the Common Hysteresis value 3 R3T1 RO Remote 3 Tcrit Status: 1 – indicates that remote 3 reading is greater than or equal to the value set in Remote 3 Tcrit Limit register 0 – indicates that that remote 3 reading is less than the value set in Remote 3 Tcrit Limit register minus the Common Hysteresis value 2 R2T1 RO Remote 2 Tcrit-1 Status: 1 – indicates that remote 2 reading is greater than or equal to the value set in Remote 2 Tcrit-1 Limit register 0 – indicates that that remote 2 reading is less than the value set in Remote 2 Tcrit-1 Limit register minus the Common Hysteresis value 1 R1T1 RO Remote 1 Tcrit-1 Status: 1 – indicates that remote 1 reading is greater than or equal to the value set in Remote 1 Tcrit-1 Limit register 0 – indicates that that remote 1 reading is less than the value set in Remote 1 Tcrit-1 Limit register minus the Common Hysteresis value 0 LT1 RO Local Tcrit Status: 1 – indicates that local reading is greater than or equal to the value set in Local Tcrit Limit register 0 – indicates that local reading is less than the value set in Local Tcrit Limit register minus the Common Hysteresis value Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 29 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com Status 3 (TCRIT2) Status bits for TCRIT2. When one or more of these bits are set and if not masked the TCRIT2 output will activate. TCRIT2 will deactivate when all these bits are cleared. Register Name Command Read/ Byte Write (Hex) Status 3 (TCRIT2) 0x09 RO D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) – – – R4T2 R3T2 R2T2 R1T2 LT2 – Bit(s) Bit Name Read/ Write Description 7–5 - RO Reserved – will report "0" when read. 4 R4T2 RO Remote 4 Tcrit Status: 1 – indicates that remote 4 reading is greater than or equal to the value set in Remote 4 Tcrit Limit register 0 – indicates that that remote 4 reading is less than the value set in Remote 4 Tcrit Limit register minus the Common Hysteresis value 3 R3T2 RO Remote 3 Tcrit Status: 1 – indicates that remote 3 reading is greater than or equal to the value set in Remote 3 Tcrit Limit register 0 – indicates that that remote 3 reading is less than the value set in Remote 3 Tcrit Limit register minus the Common Hysteresis value 2 R2T2 RO Remote 2 Tcrit-2 Status: 1 – indicates that remote 2 reading is greater than or equal to the value set in Remote 2 Tcrit-2 Limit register 0 – indicates that that remote 2 reading is less than the value set in Remote 2 Tcrit-2 Limit register minus the Common Hysteresis value 1 R1T2 RO Remote 1 Tcrit-2 Status: 1 – indicates that remote 1 reading is greater than or equal to the value set in Remote 1 Tcrit-2 Limit register 0 – indicates that that remote 1 reading is less than the value set in Remote 1 Tcrit-2 Limit register minus the Common Hysteresis value 0 LT2 RO Local Tcrit Status: 1 – indicates that local reading is greater than or equal to the value set in Local Tcrit Limit register 0 – indicates that local reading is less than the value set in Local Tcrit Limit register minus the Common Hysteresis value Status 4 (TCRIT3) Status bits for TCRIT3. When one or more of these bits are set and if not masked the TCRIT3 output will activate. TCRIT3 will deactivate when all these bits are cleared. Register Name Command Read/ Byte Write (Hex) Status 4 (TCRIT3) 0x0A RO D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) – – – R4T3 R3T3 R2T3 R1T3 LT3 – Bit(s) Bit Name Read/ Write Description 7–5 - RO Reserved – will report "0" when read. 4 R4T3 RO Remote 4 Tcrit Status: 1 – indicates that remote 4 reading is greater than or equal to the value set in Remote 4 Tcrit Limit register 0 – indicates that that remote 4 reading is less than the value set in Remote 4 Tcrit Limit register minus the Common Hysteresis value 3 R3T3 RO Remote 3 Tcrit Status: 1 – indicates that remote 3 reading is greater than or equal to the value set in Remote 3 Tcrit Limit register 0 – indicates that that remote 3 reading is less than the value set in Remote 3 Tcrit Limit register minus the Common Hysteresis value 30 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Bit(s) Bit Name Read/ Write Description 2 R2T3 RO Remote 2 Tcrit-2 Status: 1 – indicates that remote 2 reading is greater than or equal to the value set in Remote 2 Tcrit-2 Limit register 0 – indicates that that remote 2 reading is less than the value set in Remote 2 Tcrit-2 Limit register minus the Common Hysteresis value 1 R1T3 RO Remote 1 Tcrit-2 Status: 1 – indicates that remote 1 reading is greater than or equal to the value set in Remote 1 Tcrit-2 Limit register 0 – indicates that that remote 1 reading is less than the value set in Remote 1 Tcrit-2 Limit register minus the Common Hysteresis value 0 LT3 RO Local Tcrit Status: 1 – indicates that local reading is greater than or equal to the value set in Local Tcrit Limit register 0 – indicates that local reading is less than the value set in Local Tcrit Limit register minus the Common Hysteresis value MASK REGISTERS TCRIT1 Mask Register The mask bits in this register allow control over which error events propagate to the TCRIT1 pin. Register Name Command Read/ Byte Write (Hex) TCRIT1 Mask 0x0C R/W D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) – – – R4TM R3TM R2T1 M R1T1 M LTM 0x19 Bit(s) Bit Name Read/ Write Description 7-5 – RO Reserved – will report "0" when read. 4 R4TM R/W Remote 4 Tcrit Mask: 1 – prevents the remote 4 temperature error event from propagating to the TCRIT1 pin 0 – allows the remote 4 temperature error event to propagate to the TCRIT1 pin 3 R3TM R/W Remote 3 Tcrit Mask: 1 – prevents the remote 3 temperature error event from propagating to the TCRIT1 pin 0 – allows the remote 3 temperature error event to propagate to the TCRIT1 pin 2 R2T1M R/W Remote 2 Tcrit-1 Mask: 1 – prevents the remote 2 temperature error event from propagating to the TCRIT1 pin 0 – allows the remote 2 temperature error event to propagate to the TCRIT1 pin 1 R1T1M R/W Remote 1 Tcrit-1 Mask: 1 – prevents the remote 1 temperature error event from propagating to the TCRIT1 pin 0 – allows the remote 1 temperature error event to propagate to the TCRIT1 pin 0 LTM R/W Local Tcrit Mask: 1 – prevents the local temperature error event from propagating to the TCRIT1 pin 0 – allows the local temperature error event to propagate to the TCRIT1 pin TCRIT2 Mask Registers Register Name Command Read/ Byte Write (Hex) TCRIT2 Mask 0x0D R/W D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) – – – R4TM R3TM R2T2 M R1T2 M LTM 0x00 Bit(s) Bit Name Read/ Write Description 7-5 – RO Reserved – will report "0" when read. 4 R4TM R/W Remote 4 Tcrit Mask: 1 – prevents the remote 4 temperature error event from propagating to the TCRIT2 pin 0 – allows the remote 4 temperature error event to propagate to the TCRIT2 pin Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 31 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com Bit(s) Bit Name Read/ Write Description 3 R3TM R/W Remote 3 Tcrit Mask: 1 – prevents the remote 3 temperature error event from propagating to the TCRIT2 pin 0 – allows the remote 3 temperature error event to propagate to the TCRIT2 pin 2 R2T2M R/W Remote 2 Tcrit-2 Mask: 1 – prevents the remote 2 temperature error event from propagating to the TCRIT2 pin 0 – allows the remote 2 temperature error event to propagate to the TCRIT2 pin 1 R1T2M R/W Remote 1 Tcrit-2 Mask: 1 – prevents the remote 1 temperature error event from propagating to the TCRIT2 pin 0 – allows the remote 1 temperature error event to propagate to the TCRIT2 pin 0 LTM R/W Local Tcrit Mask: 1 – prevents the local temperature error event from propagating to the TCRIT2 pin 0 – allows the local temperature error event to propagate to the TCRIT2 pin TCRIT3 Mask Register The mask bits in this register allow control over which error events propagate to the TCRIT3 pin. Register Name Command Read/ Byte Write (Hex) TCRIT3 Mask 0x0E R/W D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) – – – R4TM R3TM R2T2 M R1T2 M LTM 0x07 Bit(s) Bit Name Read/ Write Description 7-5 – RO Reserved – will report "0" when read. 4 R4TM R/W Remote 4 Tcrit Mask: 1 – prevents the remote 4 temperature error event from propagating to the TCRIT3 pin 0 – allows the remote 4 temperature error event to propagate to the TCRIT3 pin 3 R3TM R/W Remote 3 Tcrit Mask: 1 – prevents the remote 3 temperature error event from propagating to the TCRIT3 pin 0 – allows the remote 3 temperature error event to propagate to the TCRIT3 pin 2 R2T2M R/W Remote 2 Tcrit-2 Mask: 1 – prevents the remote 2 temperature error event from propagating to the TCRIT3 pin 0 – allows the remote 2 temperature error event to propagate to the TCRIT3 pin 1 R1T2M R/W Remote 1 Tcrit-2 Mask: 1 – prevents the remote 1 temperature error event from propagating to the TCRIT3 pin 0 – allows the remote 1 temperature error event to propagate to the TCRIT3 pin 0 LTM R/W Local Tcrit Mask: 1 – prevents the local temperature error event from propagating to the TCRIT3 pin 0 – allows the local temperature error event to propagate to the TCRIT3 pin LIMIT REGISTERS Local Limit Register The Local Limit register range is 0°C to 127°C. The value programmed in this register is used to determine a local temperature error event. Register Name Command Read/ Byte Write (Hex) Local Tcrit Limit 0x40 R/W D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) 0 64 32 16 8 4 2 1 0x55 Bit(s) Bit Name Read/ Write Description 7 0 R0 Read only bit will always report "0". 6 64 R/W bit weight 64°C 5 32 R/W bit weight 32°C 32 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Bit(s) Bit Name Read/ Write Description 4 16 R/W bit weight 16°C 3 8 R/W bit weight 8°C 2 4 R/W bit weight 4°C 1 2 R/W bit weight 2°C 0 1 R/W bit weight 1°C Remote Limit Registers The range for these registers is 0°C to 255°C. Register Name Command Read/ Byte Write (Hex) D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) Remote 1 Tcrit-1 Limit (used by TCRIT1 error events) 0x41 R/W 128 64 32 16 8 4 2 1 0x6E Remote 2 Tcrit-1 Limit (used by TCRIT1 error events) 0x42 R/W 128 64 32 16 8 4 2 1 0x6E Remote 3 Tcrit Limit (used by TCRIT1, TCRIT2 and TCRIT3 error events) 0x43 R/W 128 64 32 16 8 4 2 1 0x55 Remote 4 Tcrit Limit (used by TCRIT1, TCRIT2 and TCRIT3 error events) 0x44 R/W 128 64 32 16 8 4 2 1 0x55 Remote 1 Tcrit-2 and Tcrit3 Limit (used by TCRIT2 and TCRIT3 error events) 0x49 R/W 128 64 32 16 8 4 2 1 0x55 Remote 2 Tcrit-2 and Tcrit3 Limit (used by TCRIT2 and TCRIT3 error events) 0x4A R/W 128 64 32 16 8 4 2 1 0x55 Bit(s) Bit Name Read/ Write Description 7 128 R/W bit weight 128°C 6 64 R/W bit weight 64°C 5 32 R/W bit weight 32°C 4 16 R/W bit weight 16°C 3 8 R/W bit weight 8°C 2 4 R/W bit weight 4°C 1 2 R/W bit weight 2°C 0 1 R/W bit weight 1°C Limit assignments for each TCRIT output pin: Output Pin Remote 4 Remote 3 Remote 2 Remote 1 Local TCRIT1 Remote 4 Tcrit Limit Remote 3 Tcrit Limit Remote 2 Tcrit-1 Limit Remote 1 Tcrit-1 Limit Local Tcrit Limit TCRIT2 Remote 4 Tcrit Limit Remote 3 Tcrit Limit Remote 2 Tcrit-2 Limit Remote 1 Tcrit-2 Limit Local Tcrit Limit TCRIT3 Remote 4 Tcrit Limit Remote 3 Tcrit Limit Remote 2 Tcrit-2 Limit Remote 1 Tcrit-2 Limit Local Tcrit Limit Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 33 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com Common Tcrit Hysteresis Register The hysteresis register range is 0°C to 32°C. The value programmed in this register is used to modify all the limit values for decreasing temperature. Register Name Command Read/ Byte Write (Hex) Common Tcrit Hysteresis 0x5A R/W D7 D6 D5 D4 D3 D2 D1 D0 POR Default (Hex) 0 0 0 16 8 4 2 1 0x0A POR Default (Hex) Bit(s) Bit Name Read/ Write Description 7 0 RO Read only bit will always report "0". 6 0 RO Read only bit will always report "0". 5 0 RO Read only bit will always report "0". 4 16 R/W bit weight 16°C 3 8 R/W bit weight 8°C 2 4 R/W bit weight 4°C 1 2 R/W bit weight 2°C 0 1 R/W bit weight 1°C IDENTIFICATION REGISTERS Register Name Command Read/ Byte Write (Hex) D7 D6 D5 D4 D3 D2 D1 D0 Manufacturer ID 0xFE RO 0 0 0 0 0 0 0 1 0x01 Revision ID 0xFF RO 0 1 1 1 1 0 1 1 0x7B Applications Hints The LM95214 can be applied easily in the same way as other integrated-circuit temperature sensors, and its remote diode sensing capability allows it to be used in new ways as well. It can be soldered to a printed circuit board, and because the path of best thermal conductivity is between the die and the pins, its temperature will effectively be that of the printed circuit board lands and traces soldered to the LM95214's pins. This presumes that the ambient air temperature is almost the same as the surface temperature of the printed circuit board; if the air temperature is much higher or lower than the surface temperature, the actual temperature of the LM95214 die will be at an intermediate temperature between the surface and air temperatures. Again, the primary thermal conduction path is through the leads, so the circuit board temperature will contribute to the die temperature much more strongly than will the air temperature. To measure temperature external to the LM95214's die, incorporates remote diode sensing technology. This diode can be located on the die of a target IC, allowing measurement of the IC's temperature, independent of the LM95214's temperature. A discrete diode can also be used to sense the temperature of external objects or ambient air. Remember that a discrete diode's temperature will be affected, and often dominated, by the temperature of its leads. Most silicon diodes do not lend themselves well to this application. It is recommended that an MMBT3904 transistor base emitter junction be used with the collector tied to the base. The LM95214 can measure a diode-connected transistor such as the MMBT3904 or the thermal diode found in an AMD processor. The LM95214 has been optimized to measure the MMBT3904 remote thermal diode the offset register can be used to calibrate for other thermal diodes easily. The LM95214 does not include TruTherm™ technology that allows sensing of sub-micron geometry process thermal diodes. For this application the LM95234 would be better suited. The LM95234 has been specifically optimized to measure the remote thermal diode integrated in a typical Intel processor on 65 nm or 90 nm process or an MMBT3904 transistor. Using the Remote Diode Model Select register found in the LM95234 any of the four remote inputs can be optimized for a typical Intel processor on 65 nm or 90 nm process or an MMBT3904. 34 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 DIODE NON-IDEALITY Diode Non-Ideality Factor Effect on Accuracy When a transistor is connected as a diode, the following relationship holds for variables VBE, T and IF: ª §KVxBEV · º IF = IS x «e© t ¹ -1» « ¬ » ¼ where • • • • • • • • Vt = kT q q = 1.6×10−19 Coulombs (the electron charge) T = Absolute Temperature in Kelvin k = 1.38×10−23 joules/K (Boltzmann's constant) η is the non-ideality factor of the process the diode is manufactured on IS = Saturation Current and is process dependent If = Forward Current through the base-emitter junction VBE = Base-Emitter Voltage drop (1) In the active region, the -1 term is negligible and may be eliminated, yielding the following equation ª §KVxBEV ·º IF = IS x «e© t ¹» « ¬ » ¼ (2) In Equation 2, η and IS are dependant upon the process that was used in the fabrication of the particular diode. By forcing two currents with a very controlled ratio(IF2 / IF1) and measuring the resulting voltage difference, it is possible to eliminate the IS term. Solving for the forward voltage difference yields the relationship: I F2 kT · x ln § · q © ¹ © I F1¹ 'VBE = K x § (3) Solving Equation 3 for temperature yields: q x 'VBE T= § IF2 · ¸ © IF1 ¹ K x k x ln ¨¨ (4) Equation 4 holds true when a diode connected transistor such as the MMBT3904 is used. When this “diode” equation is applied to an integrated diode such as a processor transistor with its collector tied to GND as shown in Figure 21 it will yield a wide non-ideality spread. This wide non-ideality spread is not due to true process variation but due to the fact that Equation 4 is an approximation. Texas Instruments invented TruTherm beta cancellation technology that uses the transistor equation, Equation 5, which is a more accurate representation of the topology of the thermal diode found in some sub-micron FPGAs or processors. T= q x 'VBE §I · K x k x ln¨¨ C2 ¸ © IC1 ¹ (5) Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 35 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com 7 IE = IF D1+ 100 pF ASIC IC IR 5 MMBT3904 IR 100 pF D- 6 IF D2+ LM95214 Figure 21. Thermal Diode Current Paths TruTherm technology can be found in the LM95234 four channel remote diode sensor that is pin and register compatible with the LM95214. The LM95214 does not support this technology. Calculating Total System Accuracy The voltage seen by the LM95214 also includes the IFRS voltage drop of the series resistance. The non-ideality factor, η, is the only other parameter not accounted for and depends on the diode that is used for measurement. Since ΔVBE is proportional to both η and T, the variations in η cannot be distinguished from variations in temperature. Since the non-ideality factor is not controlled by the temperature sensor, it will directly add to the inaccuracy of the sensor. For the for Intel processor on 65 nm process, Intel specifies a +4.06%/−0.897% variation in η from part to part when the processor diode is measured by a circuit that assumes diode equation, Equation 4, as true. As an example, assume a temperature sensor has an accuracy specification of ±1.0°C at a temperature of 80°C (353 Kelvin) and the processor diode has a non-ideality variation of +1.19%/−0.27%. The resulting system accuracy of the processor temperature being sensed will be: TACC = + 1.0°C + (+4.06% of 353 K) = +15.3 °C and TACC = - 1.0°C + (−0.89% of 353 K) = −4.1 °C The next error term to be discussed is that due to the series resistance of the thermal diode and printed circuit board traces. The thermal diode series resistance is specified on most processor data sheets. For the MMBT3904 transistor, this is specified at 0Ω typical. The LM95214 accommodates the typical series resistance of a circuit with the offset register compensation. The error that is not accounted for is the spread of the thermal diodes series resistance. If a circuit has a series resistance spread that is 2.79Ω to 6.24Ω or 4.515Ω ±1.73Ω, the 4.515Ω can be cancelled out with the offset register setting. The ±1.73Ω spread cannot be cancelled out. The equation to calculate the temperature error due to series resistance (TER) for the LM95214 is simply: ºC · § TER = ¨0.62 : ¸ x RPCB © ¹ (6) Solving Equation 6 for RPCB equal to ±1.73Ω results in the additional error due to the spread in the series resistance of ±1.07°C. The bulk of the error caused by the 4.515 ohms will cause a positive offset in the temperature reading of 2.79°C wich can be cancelled out by setting the offset register to - 2.75°C. The spread in error cannot be canceled out, as it would require measuring each individual thermal diode device. This is quite difficult and impractical in a large volume production environment. Equation 6 can also be used to calculate the additional error caused by series resistance on the printed circuit board. Since the variation of the PCB series resistance is minimal, the bulk of the error term is always positive and can simply be cancelled out by subtracting it from the output readings of the LM95214. 36 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 Diode Equation ηD, non-ideality Processor Family Pentium™ III CPUID 67h Series R,Ω min typ max 1 1.0065 1.0125 Pentium III CPUID 68h/PGA370Socket/ Celeron 1.0057 1.008 1.0125 Pentium 4, 423 pin 0.9933 1.0045 1.0368 Pentium 4, 478 pin 0.9933 1.0045 1.0368 Pentium 4 on 0.13 micron process, 2 - 3.06 GHz 1.0011 1.0021 1.0030 3.64 Pentium 4 on 90 nm process 1.0083 1.011 1.023 3.33 Intel Processor on 65 nm process 1.000 1.009 1.050 4.52 1.00151 1.00220 1.00289 3.06 Pentium M (Centrino) MMBT3904 1.003 AMD Athlon MP model 6 1.002 1.008 1.016 AMD Athlon 64 1.008 1.008 1.096 AMD Opteron 1.008 1.008 1.096 AMD Sempron 1.00261 0.93 Compensating for Different Non-Ideality In order to compensate for the errors introduced by non-ideality, the temperature sensor is calibrated for a particular processor. Texas Instruments temperature sensors are always calibrated to the typical non-ideality and series resistance of a given transistor type. The LM95214 is calibrated for the non-ideality factor and series resistance values of the MMBT3904 transistor without the requirement for additional trims. When a temperature sensor calibrated for a particular thermal diode type is used with a different thermal diode type, additional errors are introduced. Temperature errors associated with non-ideality of different processor types may be reduced in a specific temperature range of concern through use of software calibration. Typical Non-ideality specification differences cause a gain variation of the transfer function, therefore the center of the temperature range of interest should be the target temperature for calibration purposes. The following equation can be used to calculate the temperature correction factor (TCF) required to compensate for a target non-ideality differing from that supported by the LM95214. TCF = § KS - KPROCESSOR · x (TCR + 273K) KS © ¹ where • • • ηS = LM95214 non-ideality for accuracy specification ηPROCESSOR = Processor thermal diode typical non-ideality TCR = center of the temperature range of interest in °C (7) where The correction factor should be directly added to the temperature reading produced by the LM95214. For example when using the LM95214, with the 3904 mode selected, to measure a AMD Athlon processor, with a typical non-ideality of 1.008, for a temperature range of 60 °C to 100 °C the correction factor would calculate to: TCF = §1.003 - 1.008 · ˜ (80 + 273) = -1.75oC © 1.003 ¹ (8) Therefore, 1.75°C should be subtracted from the temperature readings of the LM95214 to compensate for the differing typical non-ideality target. Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 37 LM95214 SNIS146A – MARCH 2007 – REVISED MARCH 2013 www.ti.com PCB LAYOUT FOR MINIMIZING NOISE Figure 22. Ideal Diode Trace Layout In a noisy environment, such as a processor mother board, layout considerations are very critical. Noise induced on traces running between the remote temperature diode sensor and the LM95214 can cause temperature conversion errors. Keep in mind that the signal level the LM95214 is trying to measure is in microvolts. The following guidelines should be followed: 1. VDD should be bypassed with a 0.1 µF capacitor in parallel with 100 pF. The 100 pF capacitor should be placed as close as possible to the power supply pin. A bulk capacitance of approximately 10 µF needs to be in the near vicinity of the LM95214. 2. A 100 pF diode bypass capacitor is recommended to filter high frequency noise but may not be necessary. Make sure the traces to the 100 pF capacitor are matched. Place the filter capacitors close to the LM95214 pins. 3. Ideally, the LM95214 should be placed within 10 cm of the Processor diode pins with the traces being as straight, short and identical as possible. Trace resistance of 1Ω can cause as much as 0.62°C of error. This error can be compensated by using simple software offset compensation. 4. Diode traces should be surrounded by a GND guard ring to either side, above and below if possible. This GND guard should not be between the D+ and D− lines. In the event that noise does couple to the diode lines it would be ideal if it is coupled common mode. That is equally to the D+ and D− lines. 5. Avoid routing diode traces in close proximity to power supply switching or filtering inductors. 6. Avoid running diode traces close to or parallel to high speed digital and bus lines. Diode traces should be kept at least 2 cm apart from the high speed digital traces. 7. If it is necessary to cross high speed digital traces, the diode traces and the high speed digital traces should cross at a 90 degree angle. 8. The ideal place to connect the LM95214's GND pin is as close as possible to the Processors GND associated with the sense diode. 9. Leakage current between D+ and GND and between D+ and D− should be kept to a minimum. Thirteen nano-amperes of leakage can cause as much as 0.2°C of error in the diode temperature reading. Keeping the printed circuit board as clean as possible will minimize leakage current. Noise coupling into the digital lines greater than 400 mVp-p (typical hysteresis) and undershoot less than 500 mV below GND, may prevent successful SMBus communication with the LM95214. SMBus no acknowledge is the most common symptom, causing unnecessary traffic on the bus. Although the SMBus maximum frequency of communication is rather low (100 kHz max), care still needs to be taken to ensure proper termination within a system with multiple parts on the bus and long printed circuit board traces. An RC lowpass filter with a 3 dB corner frequency of about 40 MHz is included on the LM95214's SMBCLK input. Additional resistance can be added in series with the SMBDAT and SMBCLK lines to further help filter noise and ringing. Minimize noise coupling by keeping digital traces out of switching power supply areas as well as ensuring that digital lines containing high speed data communications cross at right angles to the SMBDAT and SMBCLK lines. 38 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 LM95214 www.ti.com SNIS146A – MARCH 2007 – REVISED MARCH 2013 REVISION HISTORY Changes from Original (March 2013) to Revision A • Page Changed layout of National Data Sheet to TI format .......................................................................................................... 38 Submit Documentation Feedback Copyright © 2007–2013, Texas Instruments Incorporated Product Folder Links: LM95214 39 PACKAGE OPTION ADDENDUM www.ti.com 23-Sep-2013 PACKAGING INFORMATION Orderable Device Status (1) Package Type Package Pins Package Drawing Qty LM95214CISD ACTIVE WSON NHL 14 LM95214CISD/NOPB ACTIVE WSON NHL 14 LM95214CISDX ACTIVE WSON NHL 14 LM95214CISDX/NOPB ACTIVE WSON NHL 14 1000 4500 Eco Plan Lead/Ball Finish (2) MSL Peak Temp Op Temp (°C) Device Marking (3) (4/5) TBD Call TI Call TI -40 to 140 95214CI Green (RoHS & no Sb/Br) CU SN Level-1-260C-UNLIM -40 to 140 95214CI TBD Call TI Call TI -40 to 140 95214CI Green (RoHS & no Sb/Br) CU SN Level-1-260C-UNLIM -40 to 140 95214CI (1) The marketing status values are defined as follows: ACTIVE: Product device recommended for new designs. LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect. NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design. PREVIEW: Device has been announced but is not in production. Samples may or may not be available. OBSOLETE: TI has discontinued the production of the device. (2) Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS), Pb-Free (RoHS Exempt), or Green (RoHS & no Sb/Br) - please check http://www.ti.com/productcontent for the latest availability information and additional product content details. TBD: The Pb-Free/Green conversion plan has not been defined. Pb-Free (RoHS): TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements for all 6 substances, including the requirement that lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes. Pb-Free (RoHS Exempt): This component has a RoHS exemption for either 1) lead-based flip-chip solder bumps used between the die and package, or 2) lead-based die adhesive used between the die and leadframe. The component is otherwise considered Pb-Free (RoHS compatible) as defined above. Green (RoHS & no Sb/Br): TI defines "Green" to mean Pb-Free (RoHS compatible), and free of Bromine (Br) and Antimony (Sb) based flame retardants (Br or Sb do not exceed 0.1% by weight in homogeneous material) (3) MSL, Peak Temp. -- The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder temperature. (4) There may be additional marking, which relates to the logo, the lot trace code information, or the environmental category on the device. (5) Multiple Device Markings will be inside parentheses. Only one Device Marking contained in parentheses and separated by a "~" will appear on a device. If a line is indented then it is a continuation of the previous line and the two combined represent the entire Device Marking for that device. Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. Addendum-Page 1 Samples PACKAGE OPTION ADDENDUM www.ti.com 23-Sep-2013 In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis. Addendum-Page 2 PACKAGE MATERIALS INFORMATION www.ti.com 23-Sep-2013 TAPE AND REEL INFORMATION *All dimensions are nominal Device Package Package Pins Type Drawing SPQ Reel Reel A0 Diameter Width (mm) (mm) W1 (mm) B0 (mm) K0 (mm) P1 (mm) W Pin1 (mm) Quadrant LM95214CISD/NOPB WSON NHL 14 1000 178.0 12.4 4.3 4.3 1.3 8.0 12.0 Q1 LM95214CISDX/NOPB WSON NHL 14 4500 330.0 12.4 4.3 4.3 1.3 8.0 12.0 Q1 Pack Materials-Page 1 PACKAGE MATERIALS INFORMATION www.ti.com 23-Sep-2013 *All dimensions are nominal Device Package Type Package Drawing Pins SPQ Length (mm) Width (mm) Height (mm) LM95214CISD/NOPB WSON NHL 14 1000 210.0 185.0 35.0 LM95214CISDX/NOPB WSON NHL 14 4500 367.0 367.0 35.0 Pack Materials-Page 2 MECHANICAL DATA NHL0014B SDA14B (Rev A) www.ti.com IMPORTANT NOTICE Texas Instruments Incorporated and its subsidiaries (TI) reserve the right to make corrections, enhancements, improvements and other changes to its semiconductor products and services per JESD46, latest issue, and to discontinue any product or service per JESD48, latest issue. Buyers should obtain the latest relevant information before placing orders and should verify that such information is current and complete. All semiconductor products (also referred to herein as “components”) are sold subject to TI’s terms and conditions of sale supplied at the time of order acknowledgment. TI warrants performance of its components to the specifications applicable at the time of sale, in accordance with the warranty in TI’s terms and conditions of sale of semiconductor products. Testing and other quality control techniques are used to the extent TI deems necessary to support this warranty. Except where mandated by applicable law, testing of all parameters of each component is not necessarily performed. TI assumes no liability for applications assistance or the design of Buyers’ products. Buyers are responsible for their products and applications using TI components. To minimize the risks associated with Buyers’ products and applications, Buyers should provide adequate design and operating safeguards. TI does not warrant or represent that any license, either express or implied, is granted under any patent right, copyright, mask work right, or other intellectual property right relating to any combination, machine, or process in which TI components or services are used. Information published by TI regarding third-party products or services does not constitute a license to use such products or services or a warranty or endorsement thereof. Use of such information may require a license from a third party under the patents or other intellectual property of the third party, or a license from TI under the patents or other intellectual property of TI. Reproduction of significant portions of TI information in TI data books or data sheets is permissible only if reproduction is without alteration and is accompanied by all associated warranties, conditions, limitations, and notices. TI is not responsible or liable for such altered documentation. Information of third parties may be subject to additional restrictions. Resale of TI components or services with statements different from or beyond the parameters stated by TI for that component or service voids all express and any implied warranties for the associated TI component or service and is an unfair and deceptive business practice. TI is not responsible or liable for any such statements. Buyer acknowledges and agrees that it is solely responsible for compliance with all legal, regulatory and safety-related requirements concerning its products, and any use of TI components in its applications, notwithstanding any applications-related information or support that may be provided by TI. Buyer represents and agrees that it has all the necessary expertise to create and implement safeguards which anticipate dangerous consequences of failures, monitor failures and their consequences, lessen the likelihood of failures that might cause harm and take appropriate remedial actions. Buyer will fully indemnify TI and its representatives against any damages arising out of the use of any TI components in safety-critical applications. In some cases, TI components may be promoted specifically to facilitate safety-related applications. With such components, TI’s goal is to help enable customers to design and create their own end-product solutions that meet applicable functional safety standards and requirements. Nonetheless, such components are subject to these terms. No TI components are authorized for use in FDA Class III (or similar life-critical medical equipment) unless authorized officers of the parties have executed a special agreement specifically governing such use. Only those TI components which TI has specifically designated as military grade or “enhanced plastic” are designed and intended for use in military/aerospace applications or environments. Buyer acknowledges and agrees that any military or aerospace use of TI components which have not been so designated is solely at the Buyer's risk, and that Buyer is solely responsible for compliance with all legal and regulatory requirements in connection with such use. TI has specifically designated certain components as meeting ISO/TS16949 requirements, mainly for automotive use. In any case of use of non-designated products, TI will not be responsible for any failure to meet ISO/TS16949. Products Applications Audio www.ti.com/audio Automotive and Transportation www.ti.com/automotive Amplifiers amplifier.ti.com Communications and Telecom www.ti.com/communications Data Converters dataconverter.ti.com Computers and Peripherals www.ti.com/computers DLP® Products www.dlp.com Consumer Electronics www.ti.com/consumer-apps DSP dsp.ti.com Energy and Lighting www.ti.com/energy Clocks and Timers www.ti.com/clocks Industrial www.ti.com/industrial Interface interface.ti.com Medical www.ti.com/medical Logic logic.ti.com Security www.ti.com/security Power Mgmt power.ti.com Space, Avionics and Defense www.ti.com/space-avionics-defense Microcontrollers microcontroller.ti.com Video and Imaging www.ti.com/video RFID www.ti-rfid.com OMAP Applications Processors www.ti.com/omap TI E2E Community e2e.ti.com Wireless Connectivity www.ti.com/wirelessconnectivity Mailing Address: Texas Instruments, Post Office Box 655303, Dallas, Texas 75265 Copyright © 2013, Texas Instruments Incorporated
LM95214CISDX 价格&库存

很抱歉,暂时无法提供与“LM95214CISDX”相匹配的价格&库存,您可以联系我们找货

免费人工找货