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PVX003A0X3-SRDZ

PVX003A0X3-SRDZ

  • 厂商:

    ABB

  • 封装:

    SMD17 模块

  • 描述:

    非隔离 PoL 模块 直流转换器 1 输出 0.6 ~ 5.5V 3A 3V - 14.4V 输入

  • 数据手册
  • 价格&库存
PVX003A0X3-SRDZ 数据手册
GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Features RoHS Compliant Applications ▪ Distributed power architectures ▪ Intermediate bus voltage applications ▪ Telecommunications equipment ▪ Servers and storage applications ▪ Networking equipment ▪ Industrial equipment Vin+ VIN PGOOD Vout+ VOUT SENSE MODULE RTUNE Cin CTUNE ON/OFF GND Co ▪ Compliant to RoHS Directive 2011/65/EU and amended Directive (EU) 2015/863. ▪ Compliant to REACH Directive (EC) No 1907/2006 ▪ Compatible in a Pb-free or SnPb reflow environment (Z versions) ▪ Compliant to IPC-9592 (September 2008), Category 2, Class II ▪ Use ABB specified module version and process for SMT placement on bottom side of board (-D version only) ▪ DOSA based ▪ Wide Input voltage range (3Vdc-14.4Vdc). Ref. to Figure 41 for corresponding output range ▪ Output voltage programmable from 0.6Vdc to 5.5Vdc via external resistor ▪ Tunable LoopTM to optimize dynamic output voltage response ▪ Power Good signal ▪ Fixed switching frequency ▪ Output overcurrent protection (non-latching) ▪ Overtemperature protection ▪ Remote On/Off ▪ Ability to sink and source current ▪ Cost efficient open frame design ▪ Small size: 12.2 mm x 12.2 mm x 6.25 mm (0.48 in x 0.48 in x 0.246 in) TRIM RTrim ▪ Wide operating temperature range [-40°C to 105°C (Ruggedized: -D), 85°C(Regular)] ▪ UL* 60950-1, 2nd Ed. Recognized, CSA† C22.2 No. 60950-1-07 Certified, and VDE‡ (EN60950-1, 2nd Ed.) Licensed ▪ ISO** 9001 and ISO 14001 certified manufacturing facilities Description The 3A Analog PicoDLynxTM power modules are non-isolated dc-dc converters that can deliver up to 3A of output current. These modules operate over a wide range of input voltage (VIN = 3Vdc-14.4Vdc) and provide a precisely regulated output voltage from 0.6Vdc to 5.5Vdc, programmable via an external resistor. Features include remote On/Off, adjustable output voltage, over current and over temperature protection. The Tunable LoopTM feature allows the user to optimize the dynamic response of the converter to match the load with reduced amount of output capacitance leading to savings on cost and PWB area. * UL is a registered trademark of Underwriters Laboratories, Inc. † CSA is a registered trademark of Canadian Standards Association. VDE is a trademark of Verband Deutscher Elektrotechniker e.V. ** ISO is a registered trademark of the International Organization of Standards ‡ May 6, 2020 ©2014 General Electric Company. All rights reserved. GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Absolute Maximum Ratings Stresses in excess of the absolute maximum ratings can cause permanent damage to the device. These are absolute stress ratings only, functional operation of the device is not implied at these or any other conditions in excess of those given in the operations sections of the data sheet. Exposure to absolute maximum ratings for extended periods can adversely affect the device reliability. Parameter Device Symbol Min Max Unit All VIN -0.3 15 Vdc All TA -40 85 °C All Tstg -55 125 °C Input Voltage Continuous Operating Ambient Temperature (see Thermal Considerations section) Storage Temperature Electrical Specifications Unless otherwise indicated, specifications apply over all operating input voltage, resistive load, and temperature conditions. Parameter Device Symbol Min Typ Max Unit Operating Input Voltage All VIN 3 ⎯ 14.4 Vdc Maximum Input Current All IIN,max 2.4 Adc VO,set = 0.6 Vdc IIN,No load 17 mA VO,set = 5Vdc IIN,No load 38 mA Input Stand-by Current (VIN = 12.0Vdc, module disabled) All IIN,stand-by 0.8 mA Inrush Transient All I2t Input Reflected Ripple Current, peak-to-peak (5Hz to 20MHz, 1μH source impedance; VIN =0 to 14V, IO= IOmax ; See Test Configurations) All 15 mAp-p Input Ripple Rejection (120Hz) All -60 dB (VIN=3V to 14V, IO=IO, max ) Input No Load Current (VIN = 12.0Vdc, IO = 0, module enabled) May 6, 2020 ©2014 General Electric Company. All rights reserved. 1 A2s Page 2 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Electrical Specifications (continued) Parameter Device Symbol Min Output Voltage Set-point (with 0.1% tolerance for external resistor used to set output voltage) All VO, set -1.0 Output Voltage (Over all operating input voltage, resistive load, and temperature conditions until end of life) All VO, set -3.0 Adjustment Range (selected by an external resistor) (Some output voltages may not be possible depending on the input voltage – see Feature Descriptions Section) All VO 0.6 Remote Sense Range All Typ ⎯ Max Unit +1.0 % VO, set +3.0 % VO, set 5.5 Vdc 0.5 Vdc Output Regulation (for VO ≥ 2.5Vdc) Line (VIN=VIN, min to VIN, max) All ⎯ +0.4 % VO, set Load (IO=IO, min to IO, max) All ⎯ 10 mV Line (VIN=VIN, min to VIN, max) All ⎯ 5 mV Load (IO=IO, min to IO, max) All ⎯ 10 mV Temperature (Tref=TA, min to TA, max) All ⎯ 0.4 % VO, set 50 100 mVpk-pk 20 38 mVrms Output Regulation (for VO < 2.5Vdc) Output Ripple and Noise on nominal output (VIN=VIN, nom and IO=IO, min to IO, max Co = 0.1μF // 22 μF ceramic capacitors) Peak-to-Peak (5Hz to 20MHz bandwidth) RMS (5Hz to 20MHz bandwidth) ⎯ All All External Capacitance1 Without the Tunable LoopTM All CO, max 10 ⎯ 22 μF ESR ≥0.15 mΩ All CO, max 10 ⎯ 1000 μF ESR ≥ 10 mΩ All CO, max 10 ⎯ 3000 μF Output Current (in either sink or source mode) All Io 0 3 Adc Output Current Limit Inception (Hiccup Mode) (current limit does not operate in sink mode) All IO, lim Output Short-Circuit Current All IO, s/c ESR ≥ 1 mΩ With the Tunable LoopTM 200 % Io,max 0.5 Arms (VO≤250mV) ( Hiccup Mode ) VIN= 12Vdc, TA=25°C VO,set = 0.6Vdc (8Vin) VO, set = 1.2Vdc IO=IO, max , VO= VO,set VO,set = 1.8Vdc η 88.2 % VO,set = 2.5Vdc η 89.9 % VO,set = 3.3Vdc η VO,set = 5.0Vdc η All fsw Efficiency Switching Frequency η 75 % η 82.8 % 91.6 % 93.9 ⎯ 600 % ⎯ kHz External capacitors may require using the new Tunable LoopTM feature to ensure that the module is stable as well as getting the best transient response. See the Tunable LoopTM section for details. 1 May 6, 2020 ©2014 General Electric Company. All rights reserved. Page 3 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current General Specifications Parameter Device Calculated MTBF (IO=0.8IO, max, TA=40°C) Telecordia Issue 2 Method 1 Case 3 Min All Max 19,508,839 ⎯ Weight Typ Unit Hours ⎯ 0.89 (0.031) g (oz.) Feature Specifications Unless otherwise indicated, specifications apply over all operating input voltage, resistive load, and temperature conditions. See Feature Descriptions for additional information. Parameter Device Symbol Input High Current All IIH Input High Voltage All VIH Input Low Current All Input Low Voltage Min Typ Max Unit ⎯ 1 mA 3.0 ⎯ VIN,max V IIL ⎯ ⎯ 10 μA All VIL -0.2 ⎯ 0.3 V Input High Current All IIH ― ― 1 mA Input High Voltage All VIH 3.0 ― VIN, max Vdc On/Off Signal Interface (VIN=VIN, min to VIN, max ; open collector or equivalent, Signal referenced to GND) Device is with suffix “4” – Positive Logic (See Ordering Information) Logic High (Module ON) Logic Low (Module OFF) Device Code with no suffix – Negative Logic (See Ordering Information) (On/OFF pin is open collector/drain logic input with external pull-up resistor; signal referenced to GND) Logic High (Module OFF) Logic Low (Module ON) Input low Current All IIL ― ― 10 μA Input Low Voltage All VIL -0.2 ― 0.4 Vdc All Tdelay ― 4 ― msec All Tdelay ― 4.8 ― msec All Trise ― 2.8 ― msec 3.0 % VO, set Turn-On Delay and Rise Times (VIN=VIN, nom, IO=IO, max , VO to within ±1% of steady state) Case 1: On/Off input is enabled and then input power is applied (delay from instant at which VIN = VIN, min until Vo = 10% of Vo, set) Case 2: Input power is applied for at least one second and then the On/Off input is enabled (delay from instant at which Von/Off is enabled until Vo = 10% of Vo, set) Output voltage Rise time (time for Vo to rise from 10% of Vo, set to 90% of Vo, set) Output voltage overshoot (TA = 25oC VIN= VIN, min to VIN, max,IO = IO, min to IO, max) With or without maximum external capacitance Over Temperature Protection All Tref 135 °C (See Thermal Considerations section) May 6, 2020 ©2014 General Electric Company. All rights reserved. Page 4 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Feature Specifications (cont.) Parameter Device Symbol Min Typ Max Units 3.0 Vdc Input Undervoltage Lockout Turn-on Threshold All Turn-off Threshold All 2.69 Vdc Hysteresis All 0.2 Vdc Overvoltage threshold for PGOOD 112.5 %VO, set Undervoltage threshold for PGOOD 87.5 %VO, set 30  PGOOD (Power Good) Signal Interface Open Drain, Vsupply  5VDC Pulldown resistance of PGOOD pin All Sink current capability into PGOOD pin All May 6, 2020 ©2014 General Electric Company. All rights reserved. 5 mA Page 5 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Characteristic Curves The following figures provide typical characteristics for the 3A Analog PicoDLynxTM at 0.6Vo and 25oC. 3.5 90 85 OUTPUT CURRENT, Io (A) EFFICIENCY,  (%) 80 75 70 Vin=3.3V Vin=6V 65 Vin=8V 60 55 50 0 0.5 1 1.5 2 2.5 3.0 NC 2.5 Standard Part (85°C) Ruggedized (D) Part (105°C) 2.0 65 95 105 OUTPUT VOLTAGE VO (V) (10mV/div) IO (A) (1Adiv) OUTPUT CURRENT, OUTPUT VOLTAGE VO (V) (20mV/div) TIME, t (20s /div) INPUT VOLTAGE VIN (V) (5V/div) VO (V) (200mV/div) Figure 4. Transient Response to Dynamic Load Change from 50% to 100% at 8Vin, Cout-1x47uF+2x330uF, CTune-27nF, RTune-178 OUTPUT VOLTAGE VON/OFF (V) (5V/div) VO (V) (200mV/div) OUTPUT VOLTAGE ON/OFF VOLTAGE May 6, 2020 85 Figure 2. Derating Output Current versus Ambient Temperature and Airflow. TIME, t (2ms/div) Figure 5. Typical Start-up Using On/Off Voltage (Io = Io,max). 75 AMBIENT TEMPERATURE, TA OC TIME, t (1s/div) Figure 3. Typical output ripple and noise (CO=10μF ceramic, VIN = 8V, Io = Io,max, ). 2m/s (400LFM) 1.5 OUTPUT CURRENT, IO (A) Figure 1. Converter Efficiency versus Output Current. 1m/s (200LFM) 1.5m/s (300LFM) 55 3 0.5m/s (100LFM) TIME, t (2ms/div) Figure 6. Typical Start-up Using Input Voltage (VIN = 8V, Io = Io,max). ©2014 General Electric Company. All rights reserved. Page 6 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Characteristic Curves The following figures provide typical characteristics for the 3A Analog PicoDLynxTM at 1.2Vo and 25oC. 95 3.5 OUTPUT CURRENT, Io (A) EFFICIENCY,  (%) 90 85 Vin=3.3 V 80 75 Vin=14.4V Vin=12V 70 65 0 0.5 1 1.5 2 2.5 2.0 Ruggedized (D) Part (105°C) 65 85 95 105 OUTPUT VOLTAGE VO (V) (10mV/div) IO (A) (1Adiv) TIME, t (20s /div) INPUT VOLTAGE VIN (V) (5V/div) VO (V) (500mV/div) Figure 10. Transient Response to Dynamic Load Change from 50% to 100% at 12Vin, Cout-1x47uF+1x330uF, CTune10nF & RTune-261 OUTPUT VOLTAGE VON/OFF (V) (5V/div) VO (V) (500mV/div) OUTPUT VOLTAGE ON/OFF VOLTAGE May 6, 2020 75 Figure 8. Derating Output Current versus Ambient Temperature and Airflow. TIME, t (2ms/div) Figure 11. Typical Start-up Using On/Off Voltage (Io = Io,max). 1m/s (200LFM) 1.5 TIME, t (1s/div) Figure 9. Typical output ripple and noise (CO=10μF ceramic, VIN = 12V, Io = Io,max, ). 0.5m/s (100LFM) Standard Part (85 C) AMBIENT TEMPERATURE, TA OC OUTPUT CURRENT, VO (V) (20mV/div) OUTPUT VOLTAGE NC 2.5 55 3 OUTPUT CURRENT, IO (A) Figure 7. Converter Efficiency versus Output Current. 3.0 TIME, t (2ms/div) Figure 12. Typical Start-up Using Input Voltage (VIN = 12V, Io = Io,max). ©2014 General Electric Company. All rights reserved. Page 7 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Characteristic Curves The following figures provide typical characteristics for the 3A Analog PicoDLynxTM at 1.8Vo and 25oC. 100 3.5 1.5m/s (300LFM) OUTPUT CURRENT, Io (A) EFFICIENCY,  (%) 95 90 Vin=3.3V 85 80 Vin=14.4V Vin=12V 75 0 0.5 1 1.5 2 2.5 2.5 0.5m/s (100LFM) Standard Part (85°C) 2.0 Ruggedized (D) Part (105°C) 1.5 65 95 105 OUTPUT VOLTAGE VO (V) (10mV/div) IO (A) (1Adiv) INPUT VOLTAGE VIN (V) (5V/div) VO (V) (500mV/div) Figure 16. Transient Response to Dynamic Load Change from 50% to 100% at 12Vin, Cout-1x47uF+1x330uF, CTune10nF & RTune-261 OUTPUT VOLTAGE VON/OFF (V) (5V/div) VO (V) (500mV/div) OUTPUT VOLTAGE ON/OFF VOLTAGE May 6, 2020 85 TIME, t (20s /div) TIME, t (2ms/div) Figure 17. Typical Start-up Using On/Off Voltage (Io = Io,max). 75 Figure 14. Derating Output Current versus Ambient Temperature and Airflow. TIME, t (1s/div) Figure 15. Typical output ripple and noise (CO=10μF ceramic, VIN = 12V, Io = Io,max, ). 1m/s (200LFM) AMBIENT TEMPERATURE, TA OC OUTPUT CURRENT, VO (V) (20mV/div) OUTPUT VOLTAGE NC 55 3 OUTPUT CURRENT, IO (A) Figure 13. Converter Efficiency versus Output Current. 3.0 TIME, t (2ms/div) Figure 18. Typical Start-up Using Input Voltage (VIN = 12V, Io = Io,max). ©2014 General Electric Company. All rights reserved. Page 8 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Characteristic Curves The following figures provide typical characteristics for the 3A Analog PicoDLynxTM at 2.5Vo and 25oC. 100 3.5 1.5m/s (300LFM) 3.0 OUTPUT CURRENT, Io (A) EFFICIENCY,  (%) 95 90 Vin=4.5V 85 80 Vin=14.4 V Vin=12V 75 70 0 0.5 1 1.5 2 2.5 OUTPUT CURRENT, IO (A) 1.5 Ruggedized (D) Part (105°C) 1.0 65 75 85 95 105 IO (A) (1Adiv) OUTPUT VOLTAGE VO (V) (50mV/div) Figure 20. Derating Output Current versus Ambient Temperature and Airflow. TIME, t (20s /div) INPUT VOLTAGE VIN (V) (5V/div) VO (V) (1V/div) Figure 22. Transient Response to Dynamic Load Change from 50% to 100% at 12Vin, Cout-2x47uF, CTune-2700pF & RTune261 OUTPUT VOLTAGE VO (V) (1V/div) VON/OFF (V) (5V/div) Figure 21. Typical output ripple and noise (CO=10μF ceramic, VIN = 12V, Io = Io,max, ). OUTPUT VOLTAGE ON/OFF VOLTAGE 1m/s (200LFM) AMBIENT TEMPERATURE, TA OC OUTPUT CURRENT, VO (V) (20mV/div) OUTPUT VOLTAGE Standard Part (85°C) TIME, t (1s/div) TIME, t (2ms/div) Figure 23. Typical Start-up Using On/Off Voltage (Io = Io,max). May 6, 2020 0.5m/s (100LFM) 2.0 55 3 Figure 19. Converter Efficiency versus Output Current. NC 2.5 TIME, t (2ms/div) Figure 24. Typical Start-up Using Input Voltage (VIN = 12V, Io = Io,max). ©2014 General Electric Company. All rights reserved. Page 9 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Characteristic Curves The following figures provide typical characteristics for the 3A Analog PicoDLynxTM at 3.3Vo and 25oC. 100 3.5 1.5m/s (300LFM) 90 OUTPUT CURRENT, Io (A) EFFICIENCY,  (%) 95 Vin=4.5V 85 Vin=14.4V Vin=12V 80 75 0 0.5 1 1.5 2 2.5 OUTPUT CURRENT, IO (A) 0.5m/s (100LFM) Standard Part (85°C) 2.0 Ruggedized (D) Part (105°C) 1.5 65 95 105 VO (V) (50mV/div) IO (A) (1Adiv) INPUT VOLTAGE VIN (V) (5V/div) VO (V) (1V/div) Figure 28. Transient Response to Dynamic Load Change from 50% to 100% at 12Vin, Cout-2x47uF, CTune-2200pF & RTune261 OUTPUT VOLTAGE VON/OFF (V) (5V/div) VO (V) (1V/div) OUTPUT VOLTAGE ON/OFF VOLTAGE May 6, 2020 85 TIME, t (20s /div) TIME, t (2ms/div) Figure 29. Typical Start-up Using On/Off Voltage (Io = Io,max). 75 Figure 26. Derating Output Current versus Ambient Temperature and Airflow. TIME, t (1s/div) Figure 27. Typical output ripple and noise (CO=10μF ceramic, VIN = 12V, Io = Io,max, ). 1m/s (200LFM) AMBIENT TEMPERATURE, TA OC OUTPUT CURRENT OUTPUTVOLTAGE VO (V) (20mV/div) OUTPUT VOLTAGE NC 2.5 55 3 Figure 25. Converter Efficiency versus Output Current. 3.0 TIME, t (2ms/div) Figure 30. Typical Start-up Using Input Voltage (VIN = 12V, Io = Io,max). ©2014 General Electric Company. All rights reserved. Page 10 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Characteristic Curves The following figures provide typical characteristics for the 3A Analog PicoDLynxTM at 5Vo and 25oC. 100 3.5 95 1m/s (200LFM) 85 OUTPUT CURRENT, Io (A) EFFICIENCY,  (%) 90 Vin=8V Vin=14.4V 80 Vin=12V 75 70 65 60 0 0.5 1 1.5 2 2.5 OUTPUT CURRENT, IO (A) Standard Part (85°C) 2.0 Ruggedized (D) Part (105°C) 1.5 55 65 95 105 VO (V) (50mV/div) IO (A) (1Adiv) TIME, t (20s /div) INPUT VOLTAGE VIN (V) (5V/div) OUTPUT VOLTAGE VO (V) (2V/div) VON/OFF (V) (5V/div) VO (V) (2V/div) OUTPUT VOLTAGE ON/OFF VOLTAGE May 6, 2020 85 Figure 34. Transient Response to Dynamic Load Change from 50% to 100% at 12Vin, Cout-1x47uF, CTune-820pF & RTune261 TIME, t (2ms/div) Figure 35. Typical Start-up Using On/Off Voltage (Io = Io,max). 75 Figure 32. Derating Output Current versus Ambient Temperature and Airflow. TIME, t (1s/div) Figure 33. Typical output ripple and noise (CO=10μF ceramic, VIN = 12V, Io = Io,max, ). 0.5m/s (100LFM) AMBIENT TEMPERATURE, TA OC OUTPUT CURRENT, OUTPUT VOLTAGE VO (V) (20mV/div) OUTPUT VOLTAGE NC 2.5 45 3 Figure 31. Converter Efficiency versus Output Current. 3.0 TIME, t (2ms/div) Figure 36. Typical Start-up Using Input Voltage (VIN = 12V, Io = Io,max). ©2014 General Electric Company. All rights reserved. Page 11 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current 70 Input Filtering 60 The 3A Analog PicoDLynxTM module should be connected to a low ac-impedance source. A highly inductive source can affect the stability of the module. An input capacitance must be placed directly adjacent to the input pin of the module, to minimize input ripple voltage and ensure module stability. To minimize input voltage ripple, ceramic capacitors are recommended at the input of the module. Figure 37 shows the input ripple voltage for various output voltages at 3A of load current with 1x22µF or 2x22µF ceramic capacitors and an input of 12V. 110 1x10uF Ext 1x22uF Ext 1x47uF Ext 2x47uF Ext 50 40 Cap Cap Cap Cap 30 20 10 0 0.5 1.5 2.5 3.5 Output Voltage(Volts) 4.5 5.5 Figure 38. Output ripple voltage for various output voltages with external 1x10uF, 1x22uF, 1x47uF and 2x47uF ceramic capacitors at the output (3A load). Input voltage is 12V. 1x22uF 100 Ripple (mVp-p) Design Considerations 2x22uF Ripple (mVp-p) 90 Safety Considerations 80 70 60 50 40 30 20 0.5 1.5 2.5 3.5 4.5 Output Voltage(Volts) Figure 37. Input ripple voltage for various output voltages with 1x22 µF or 2x22 µF ceramic capacitors at the input (3A load). Input voltage is 12V. For safety agency approval the power module must be installed in compliance with the spacing and separation requirements of the end-use safety agency standards, i.e., UL 60950-1 2nd, CSA C22.2 No. 60950-1-07, DIN EN 60950-1:2006 + A11 (VDE0805 Teil 1 + A11):2009-11; EN 60950-1:2006 + A11:2009-03. For the converter output to be considered meeting the requirements of safety extra-low voltage (SELV), the input must meet SELV requirements. The power module has extra-low voltage (ELV) outputs when all inputs are ELV. The input to these units is to be provided with a fastacting fuse with a maximum rating of 5A, 125VDC in the positive input lead. Output Filtering These modules are designed for low output ripple voltage and will meet the maximum output ripple specification with 0.1 µF ceramic and 10 µF ceramic capacitors at the output of the module. However, additional output filtering may be required by the system designer for a number of reasons. First, there may be a need to further reduce the output ripple and noise of the module. Second, the dynamic response characteristics may need to be customized to a particular load step change. To reduce the output ripple and improve the dynamic response to a step load change, additional capacitance at the output can be used. Low ESR polymer and ceramic capacitors are recommended to improve the dynamic response of the module. Figure 38 provides output ripple information for different external capacitance values at various Vo and a full load current of 3A. For stable operation of the module, limit the capacitance to less than the maximum output capacitance as specified in the electrical specification table. Optimal performance of the module can be achieved by using the Tunable LoopTM feature described later in this data sheet. May 6, 2020 ©2014 General Electric Company. All rights reserved. Page 12 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Feature Descriptions Remote On/Off Monotonic Start-up and Shutdown The 3A Analog PicoDLynxTM power modules feature an On/Off pin for remote On/Off operation. Two On/Off logic options are available. In the Positive Logic On/Off option, (device code suffix “4” – see Ordering Information), the module turns ON during a logic High on the On/Off pin and turns OFF during a logic Low. With the Negative Logic On/Off option, (no device code suffix, see Ordering Information), the module turns OFF during logic High and ON during logic Low. The On/Off signal should be always referenced to ground. For either On/Off logic option, leaving the On/Off pin disconnected will turn the module ON when input voltage is present. The module has monotonic start-up and shutdown behavior for any combination of rated input voltage, output current and operating temperature range. For positive logic modules, the circuit configuration for using the On/Off pin is shown in Figure 39. When the external transistor Q2 is in the OFF state, Q3 is ON, Q4 is OFF and the internal PWM Enable signal is pulled high and the module is ON. When transistor Q2 is turned ON, Q3 is OFF, Q4 turns ON pulling the ENABLE pin low and the module is OFF. A suggested value for Rpullup is 20k. The output voltage of the module is programmable to any voltage from 0.6dc to 5.5Vdc by connecting a resistor between the Trim and GND pins of the module. Certain restrictions apply on the output voltage set point depending on the input voltage. These are shown in the Output Voltage vs. Input Voltage Set Point Area plot in Fig. 41. The Upper Limit curve shows that for output voltages lower than 1V, the input voltage must be lower than the maximum of 12V. The Lower Limit curve shows that for output voltages higher than 0.6V, the input voltage needs to be larger than the minimum of 3V. DLYNX MODULE +VIN VIN 30K Rpullup ON/OFF 22K 22K Q3 + Q2 ENABLE Q4 0.047uF 16 14 Upper Limit V ON/OFF _ Output Voltage Programming 12 22K 22K The modules can start into a prebiased output as long as the prebias voltage is 0.5V less than the set output voltage. 10 GND Figure 39. Circuit configuration for using positive On/Off logic. For negative logic On/Off modules, the circuit configuration is shown in Fig. 40. The On/Off pin should be pulled high with an external pull-up resistor (suggested value for the 3V to 14.4V input range is 20Kohms). When transistor Q1 is in the OFF state, the On/Off pin is pulled high, internal transistor Q4 is turned ON and the module is OFF. To turn the module ON, Q1 is turned ON pulling the On/Off pin low, turning transistor Q4 OFF resulting in the PWM Enable pin going high and the module turning ON. VIN+ MODULE Input Voltage I 30K Startup into Pre-biased Output 8 6 4 2 Lower Limit 0 0.5 1 1.5 2 2.5 3 3.5 4 4.5 5 5.5 6 Output Voltage Figure 41. Output Voltage vs. Input Voltage Set Point Area plot showing limits where the output voltage can be set for different input voltages. VIN(+) Rpullup VO(+) VS+ ON/OFF ON/OFF ON/OFF + VON/OFF Q1 GND Rtrim Q4 22K CSS 22K _ PVX012 NEGATIVE LOGIC FIGURE Figure 40. Circuit configuration for using negative On/Off logic. May 6, 2020 LOAD TRIM PWM Enable I GND Figure 42. Circuit configuration for programming output voltage using an external resistor. ©2014 General Electric Company. All rights reserved. Page 13 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Without an external resistor between Trim and GND pins, the output of the module will be 0.6Vdc. To calculate the value of the trim resistor, Rtrim for a desired output voltage, should be as per the following equation:  12  Rtrim =   k  (Vo − 0.6) Overcurrent Protection To provide protection in a fault (output overload) condition, the unit is equipped with internal current-limiting circuitry and can endure current limiting continuously. At the point of current-limit inception, the unit enters hiccup mode. The unit operates normally once the output current is brought back into its specified range. Rtrim is the external resistor in kΩ Vo is the desired output voltage. Table 1 VO, set (V) 0.6 0.9 1.0 1.2 1.5 1.8 2.5 3.3 5.0 Figure 43. Circuit Configuration for margining Output voltage. Rtrim (KΩ) Open 40 30 20 13.33 10 6.316 4.444 2.727 Remote Sense The power module has a Remote Sense feature to minimize the effects of distribution losses by regulating the voltage at the SENSE pin. The voltage between the SENSE pin and VOUT pin should not exceed 0.5V. Voltage Margining Output voltage margining can be implemented in the module by connecting a resistor, Rmargin-up, from the Trim pin to the ground pin for margining-up the output voltage and by connecting a resistor, Rmargin-down, from the Trim pin to output pin for margining-down. Figure 43 shows the circuit configuration for output voltage margining. The POL Programming Tool, available at www.lineagepower.com under the Downloads section, also calculates the values of Rmargin-up and Rmargin-down for a specific output voltage and % margin. Please consult your local GE technical representative for additional details. Vo Rmar gin-down Overtemperature Protection To provide protection in a fault condition, the unit is equipped with a thermal shutdown circuit. The unit will shutdown if the overtemperature threshold of 135oC (typ) is exceeded at the thermal reference point Tref . Once the unit goes into thermal shutdown it will then wait to cool before attempting to restart. Input Undervoltage Lockout At input voltages below the input undervoltage lockout limit, the module operation is disabled. The module will begin to operate at an input voltage above the undervoltage lockout turn-on threshold. Power Good The module provides a Power Good (PGOOD) signal that is implemented with an open-drain output to indicate that the output voltage is within the regulation limits of the power module. The PGOOD signal will be de-asserted to a low state if any condition such as overtemperature, overcurrent or loss of regulation occurs that would result in the output voltage going ±10% outside the setpoint value. The PGOOD terminal can be connected through a pullup resistor (suggested value 100K) to a source of 5VDC or lower. Dual Layout Identical dimensions and pin layout of Analog and Digital PicoDLynx modules permit migration from one to the other without needing to change the layout. To support this, 2 separate Trim Resistor locations have to be provided in the layout. For the digital modules, the resistor is connected between the TRIM pad and SGND and in the case of the analog module it is connected between TRIM and GND MODULE Q2 MODULE Trim TRIM (PVX003 / PDT003) Rmar gin-up Rtrim1 for Digital Rtrim2 for Analog SIG_GND Rtrim Q1 GND G ND Caution – Do not connect SIG_GND to GND elsewhere in the layout May 6, 2020 ©2014 General Electric Company. All rights reserved. Page 14 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Figure 44. Layout to support either Analog or Digital PicoDLynx on the same pad. Tunable LoopTM The 3A PicoDLynxTM modules have a feature that optimizes transient response of the module called Tunable LoopTM. External capacitors are usually added to the output of the module for two reasons: to reduce output ripple and noise (see Figure 38) and to reduce output voltage deviations from the steady-state value in the presence of dynamic load current changes. Adding external capacitance however affects the voltage control loop of the module, typically causing the loop to slow down with sluggish response. Larger values of external capacitance could also cause the module to become unstable. The Tunable LoopTM allows the user to externally adjust the voltage control loop to match the filter network connected to the output of the module. The Tunable LoopTM is implemented by connecting a series R-C between the SENSE and TRIM pins of the module, as shown in Fig. 45. This R-C allows the user to externally adjust the voltage loop feedback compensation of the module. VOUT SENSE RTUNE MODULE CO CTUNE TRIM GND RTrim Figure. 45. Circuit diagram showing connection of RTUME and CTUNE to tune the control loop of the module. Recommended values of RTUNE and CTUNE for different output capacitor combinations are given in Tables 2 and 3. Table 2 shows the recommended values of RTUNE and CTUNE for different values of ceramic output capacitors up to 1000uF that might be needed for an application to meet output ripple and noise requirements. Selecting RTUNE and CTUNE according to Table 2 will ensure stable operation of the module. In applications with tight output voltage limits in the presence of dynamic current loading, additional output capacitance will be required. Table 3 lists recommended values of RTUNE and CTUNE in order to meet 2% output voltage deviation limits for some common output voltages in the presence of a 1.5A to 3A step change (50% of full load), with an input voltage of 12V. Please contact your GE technical representative to obtain more details of this feature as well as for guidelines on how to select the right value of external R-C to tune the May 6, 2020 ©2014 General Electric Company. All rights reserved. Page 15 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current module for best transient performance and stable operation for other output capacitance values or input voltages other than 12V. Table 2. General recommended values of of RTUNE and CTUNE for Vin=12V and various external ceramic capacitor combinations. Co RTUNE CTUN E 1x47 F 2x47 F 4x47 F 6x47F 10x47F 270 220 180 180 180 1500p F 1800p F 3300p F 4700p F 4700pF Table 3. Recommended values of RTUNE and CTUNE to obtain transient deviation of 2% of Vout for a 1.5A step load with Vin=12V. Vo Co RTUN E CTUN E V 5V 3.3V 2.5V 1.8V 1.2V 0.6V 1x330 1x330 2x330 1x47 F 1x47F 2x47F F F F Polyme Polymer Polymer r 270 220 180 180 1500p 1800pF 3300pF 8200pF F 68mV 60mV 37mV 18mV 180 180 8200pF 33nF 18mV 10mV Note: The capacitors used in the Tunable Loop tables are 47 μF/3 mΩ ESR ceramic and 330 μF/12 mΩ ESR polymer capacitors. May 6, 2020 ©2014 General Electric Company. All rights reserved. Page 16 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Thermal Considerations Power modules operate in a variety of thermal environments; however, sufficient cooling should always be provided to help ensure reliable operation. Considerations include ambient temperature, airflow, module power dissipation, and the need for increased reliability. A reduction in the operating temperature of the module will result in an increase in reliability. The thermal data presented here is based on physical measurements taken in a wind tunnel. The test set-up is shown in Figure 46. The preferred airflow direction for the module is in Figure 47. Figure 47. Preferred airflow direction and location of hot-spot of the module (Tref). 25.4_ (1.0) Wind Tunnel PWBs Power Module 76.2_ (3.0) x 12.7_ (0.50) Probe Location for measuring airflow and ambient temperature Air flow Figure 46. Thermal Test Setup. The thermal reference points, Tref used in the specifications are also shown in Figure 47. For reliable operation the temperatures at these points should not exceed 120oC. The output power of the module should not exceed the rated power of the module (Vo,set x Io,max). Please refer to the Application Note “Thermal Characterization Process For Open-Frame Board-Mounted Power Modules” for a detailed discussion of thermal aspects including maximum device temperatures. May 6, 2020 ©2014 General Electric Company. All rights reserved. Page 17 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Shock and Vibration The ruggedized (-D version) of the modules are designed to withstand elevated levels of shock and vibration to be able to operate in harsh environments. The ruggedized modules have been successfully tested to the following conditions: Non operating random vibration: Random vibration tests conducted at 25C, 10 to 2000Hz, for 30 minutes each level, starting from 30Grms (Z axis) and up to 50Grms (Z axis). The units were then subjected to two more tests of 50Grms at 30 minutes each for a total of 90 minutes. Operating shock to 40G per Mil Std. 810G, Method 516.4 Procedure I: The modules were tested in opposing directions along each of three orthogonal axes, with waveform and amplitude of the shock impulse characteristics as follows: All shocks were half sine pulses, 11 milliseconds (ms) in duration in all 3 axes. Units were tested to the Functional Shock Test of MIL-STD-810, Method 516.4, Procedure I - Figure 516.4-4. A shock magnitude of 40G was utilized. The operational units were subjected to three shocks in each direction along three axes for a total of eighteen shocks. Operating vibration per Mil Std 810G, Method 514.5 Procedure I: The ruggedized (-D version) modules are designed and tested to vibration levels as outlined in MIL-STD-810G, Method 514.5, and Procedure 1, using the Power Spectral Density (PSD) profiles as shown in Table 1 and Table 2 for all axes. Full compliance with performance specifications was required during the performance test. No damage was allowed to the module and full compliance to performance specifications was required when the endurance environment was removed. The module was tested per MIL-STD810, Method 514.5, Procedure I, for functional (performance) and endurance random vibration using the performance and endurance levels shown in Table 4 and Table 5 for all axes. The performance test has been split, with one half accomplished before the endurance test and one half after the endurance test (in each axis). The duration of the performance test was at least 16 minutes total per axis and at least 120 minutes total per axis for the endurance test. The endurance test period was 2 hours minimum per axis. Frequency (Hz) 10 30 40 50 90 110 130 140 Frequency (Hz) 10 30 40 50 90 110 130 140 May 6, 2020 Table 4: Performance Vibration Qualification - All Axes PSD Level Frequency PSD Level Frequency (G2/Hz) (Hz) (G2/Hz) (Hz) 1.14E-03 170 2.54E-03 690 5.96E-03 230 3.70E-03 800 9.53E-04 290 7.99E-04 890 2.08E-03 340 1.12E-02 1070 2.08E-03 370 1.12E-02 1240 7.05E-04 430 8.84E-04 1550 5.00E-03 490 1.54E-03 1780 8.20E-04 560 5.62E-04 2000 Table 5: Endurance Vibration Qualification - All Axes PSD Level Frequency PSD Level Frequency (G2/Hz) (Hz) (G2/Hz) (Hz) 0.00803 170 0.01795 690 0.04216 230 0.02616 800 0.00674 290 0.00565 890 0.01468 340 0.07901 1070 0.01468 370 0.07901 1240 0.00498 430 0.00625 1550 0.03536 490 0.01086 1780 0.0058 560 0.00398 2000 ©2014 General Electric Company. All rights reserved. PSD Level (G2/Hz) 1.03E-03 7.29E-03 1.00E-03 2.67E-03 1.08E-03 2.54E-03 2.88E-03 5.62E-04 PSD Level (G2/Hz) 0.00727 0.05155 0.00709 0.01887 0.00764 0.01795 0.02035 0.00398 Page 18 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Example Application Circuit Requirements: Vin: 12V Vout: 1.8V Iout: 2.25A max., worst case load transient is from 1.5A to 2.25A Vout: 1.5% of Vout (27mV) for worst case load transient Vin, ripple 1.5% of Vin (180mV, p-p) Vout+ Vin+ VIN VOUT SENSE PGOOD CI2 + CI2 RTUNE MODULE CI1 + CTUNE ON/OFF CO1 CO3 TRIM GND RTrim CI1 Decoupling cap - 1x0.047F/16V ceramic capacitor (e.g. Murata LLL185R71C473MA01) CI2 1x22F/16V ceramic capacitor (e.g. Murata GRM32ER61C226KE20 or equivalent) CI3 47F/16V bulk electrolytic CO1 Decoupling cap - 1x0.047F/16V ceramic capacitor (e.g. Murata LLL185R71C473MA01) CO2 2 x 47F/6.3V ceramic capacitor (e.g. Murata GRM31CR60J476ME19 or equivalent) CO3 CTune None 2200pF ceramic capacitor (can be 1206, 0805 or 0603 size) RTune 261 ohms SMT resistor (can be 1206, 0805 or 0603 size) RTrim 10k SMT resistor (can be 1206, 0805 or 0603 size, recommended tolerance of 0.1%) May 6, 2020 CO2 ©2014 General Electric Company. All rights reserved. Page 19 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Mechanical Outline Dimensions are in millimeters and (inches). Tolerances: x.x mm  0.5 mm (x.xx in.  0.02 in.) [unless otherwise indicated] x.xx mm  0.25 mm (x.xxx in  0.010 in.) 17 16 13 14 FUNCTION PIN FUNCTION 1 2 3 4 5 6 7 8 9 ON/OFF VIN GND VOUT VS+ (SENSE) TRIM GND NC NC 10 11 12 13 14 15 16 17 PGOOD NC NC NC NC NC NC NC 11 12 15 PIN 7 8 9 Bottom View May 6, 2020 ©2014 General Electric Company. All rights reserved. Page 20 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Recommended Pad Layout Dimensions are in millimeters and (inches). Tolerances: x.x mm  0.5 mm (x.xx in.  0.02 in.) [unless otherwise indicated] x.xx mm  0.25 mm (x.xxx in  0.010 in.) 16 17 13 12 11 9 May 6, 2020 8 7 14 15 PIN FUNCTION PIN FUNCTION 1 2 3 4 5 6 7 8 9 ON/OFF VIN GND VOUT VS+ (SENSE) TRIM GND NC NC 10 11 12 13 14 15 16 17 PGOOD NC NC NC NC NC NC NC ©2014 General Electric Company. All rights reserved. Page 21 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Packaging Details The 12V Analog PicoDLynxTM 3A modules are supplied in tape & reel as standard. Modules are shipped in quantities of 200 modules per reel. All Dimensions are in millimeters and (in inches). Reel Dimensions: Outside Dimensions: Inside Dimensions: 330.2 mm (13.00) 177.8 mm (7.00”) Tape Width: 24.00 mm (0.945”) May 6, 2020 ©2014 General Electric Company. All rights reserved. Page 22 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Surface Mount Information Pick and Place The 12VAnalog PicoDLynxTM 3A modules use an open frame construction and are designed for a fully automated assembly process. The modules are fitted with a label designed to provide a large surface area for pick and place operations. The label meets all the requirements for surface mount processing, as well as safety standards, and is able to withstand reflow temperatures of up to 300oC. The label also carries product information such as product code, serial number and the location of manufacture. Nozzle Recommendations The module weight has been kept to a minimum by using open frame construction. Variables such as nozzle size, tip style, vacuum pressure and placement speed should be considered to optimize this process. The minimum recommended inside nozzle diameter for reliable operation is 3mm. The maximum nozzle outer diameter, which will safely fit within the allowable component spacing, is 7 mm. Bottom Side / First Side Assembly Only the -D version of this module can be placed at the bottom side of the customer board. No additional glue or adhesive is required is required to hold the module during the top side reflow process thermocouple should be attached to this test pad since this will be the coolest solder joints. The temperature of this point should be: Maximum peak temperature is 260 C. Minimum temperature is 235 C. Dwell time above 217 C: 60 seconds minimum Dwell time above 235 C: 5 to 15 second MSL Rating The 12VAnalog PicoDLynxTM 3A modules have a MSL rating of 2a. Storage and Handling The recommended storage environment and handling procedures for moisture-sensitive surface mount packages is detailed in J-STD-033 Rev. B (Handling, Packing, Shipping and Use of Moisture/Reflow Sensitive Surface Mount Devices). Moisture barrier bags (MBB) with desiccant are required for MSL ratings of 2 or greater. These sealed packages should not be broken until time of use. Once the original package is broken, the floor life of the product at conditions of  30°C and 60% relative humidity varies according to the MSL rating (see J-STD-033A). The shelf life for dry packed SMT packages will be a minimum of 12 months from the bag seal date, when stored at the following conditions: < 40° C, < 90% relative humidity. Lead Free Soldering The 12VAnalog PicoDLynxTM 3A modules are lead-free (Pbfree) and RoHS compliant and are both forward and backward compatible in a Pb-free and a SnPb soldering process. Failure to observe the instructions below may result in the failure of or cause damage to the modules and can adversely affect long-term reliability. Pb-free Reflow Profile Power Systems will comply with J-STD-020 Rev. C (Moisture/Reflow Sensitivity Classification for Nonhermetic Solid State Surface Mount Devices) for both Pb-free solder profiles and MSL classification procedures. This standard provides a recommended forced-air-convection reflow profile based on the volume and thickness of the package (table 52). The suggested Pb-free solder paste is Sn/Ag/Cu (SAC). For questions regarding LGA, solder volume; please contact GE for special manufacturing process instructions. The recommended linear reflow profile using Sn/Ag/Cu solder is shown in Fig. 48. Soldering outside of the recommended profile requires testing to verify results and performance. It is recommended that the pad layout include a test pad where the output pin is in the ground plane. The May 6, 2020 Figure 48. Recommended linear reflow profile using Sn/Ag/Cu solder. Post Solder Cleaning and Drying Considerations Post solder cleaning is usually the final circuit-board assembly process prior to electrical board testing. The result of inadequate cleaning and drying can affect both the reliability of a power module and the testability of the finished circuit-board assembly. For guidance on appropriate soldering, cleaning and drying procedures, refer to Board Mounted Power Modules: Soldering and Cleaning Application Note (AN04-001). ©2014 General Electric Company. All rights reserved. Page 23 GE Data Sheet 3A Analog PicoDLynxTM: Non-Isolated DC-DC Power Modules 3Vdc –14.4Vdc input; 0.6Vdc to 5.5Vdc output; 3A Output Current Ordering Information Please contact your GE Sales Representative for pricing, availability and optional features. Table 6. Device Codes Device Code Input Voltage Range Output Voltage Output Current On/Off Logic Sequencing Comcodes PVX003A0X3-SRZ 3 – 14.4Vdc 0.6 – 5.5Vdc 3A Negative No CC109159562 PVX003A0X3-SRDZ 3 – 14.4Vdc 0.6 – 5.5Vdc 3A Negative No 150021797 PVX003A0X43-SRZ 3 – 14.4Vdc 0.6 – 5.5Vdc 3A Positive No CC109159570* -Z refers to RoHS compliant parts *Please contact GE for more information Table 7. Coding Scheme Package Identifier Family P V X 003A0 P=Pico D=Dlynx Digital T=with EZ Sequence 3A V= DLynx Analog. X=without sequencing U=Micro M=Mega G=Giga Sequencing Option Output Output current voltage X On/Off logic Remote Sense 4 3 -SR -D Z 3= Remote Sense S= Surface Mount D = 105°C operating ambient, 40G operating shock as per MIL Std 810G, placement on bottom side of board Z = ROHS6 X= 4= progra positive mmable No entry output = negative ROHS Compliance Options R= Tape & Reel Contact Us For more information, call us at USA/Canada: +1 888 546 3243, or +1 972 244 9288 Asia-Pacific: +86-21-53899666 Europe, Middle-East and Africa: +49.89.878067-280 www.gecriticalpower.com GE Critical Power reserves the right to make changes to the product(s) or information contained herein without notice, and no liability is assumed as a result of their use or application. No rights under any patent accompany the sale of any such product(s) or information. May 6, 2020 ©2016 General Electric Company. All International rights reserved. Version 1.5
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