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CMD4D11-100MC

CMD4D11-100MC

  • 厂商:

    DIODES

  • 封装:

  • 描述:

    CMD4D11-100MC - ADJUSTABLE DC - DC BOOST CONVERTER WITH INTERNAL SWITCH - Diodes Incorporated

  • 数据手册
  • 价格&库存
CMD4D11-100MC 数据手册
ZXLD1601 ADJUSTABLE DC - DC BOOST CONVERTER WITH INTERNAL SWITCH IN SC70 DESCRIPTION The ZXLD1601 is a PFM inductive boost converter designed to provide output voltages of up to 28V from a 2.5V to 5.5V input supply. The ZXLD1601 includes the output switch and peak current sense resistor, and can provide up to 10mA output current at maximum output voltage. Higher current is available at lower output voltages. Quiescent current is typically 60 A and a shutdown function is provided to reduce this current to less than 100nA in the ‘off’ state. Output voltage is set to a nominal value between 26V and 28V, by an internal resistor network, but can be adjusted to lower values by external resistors, an external PWM control signal applied to the ‘Enable’ pin, or a combination of the two. Depending upon the control frequency, the PWM signal will provide either continuous (low ripple) or gated control. The PWM filter components are contained within the chip. Minimum output voltage is determined by the input supply. The device is assembled in a low profile SC70-6 pin package. ADVANCED FEATURES • Internal 30V NDMOS switch, current sense and output setting resistors. APPLICATIONS • LCD and OLED bias • Cellular / mobile phones • Digital cameras • PDAs • LCD modules • Varactor and PIN diode bias • Palmtop computers • True analogue output voltage control via PWM with internal filter FEATURES • Low profile SC70-6 pin package • Internal PWM filter for adjustable output • High efficiency (85% typ) • Wide input voltage range: 2.5V to 5.5V • Up to 250mA output current at 5V • Low quiescent current: (60 A typ) • 100nA maximum shutdown current • Up to 1MHz switching frequency • Low external component count TYPICAL APPLICATION CIRCUIT PINOUT TOP VIEW ISSUE 3 - AUGUST 2004 1 SEMICONDUCTORS ZXLD1601 ABSOLUTE MAXIMUM RATINGS (Voltages to GND unless otherwise stated) Input voltage (VIN) 7V LX output voltage (VLX) Switch output current (ILX) Power dissipation (PD) Operating temperature (TOP) Storage temperature (TST) Junction temperature (Tj MAX) 30V 500mA 300mW -40 to 85°C -55 to 150°C 125°C ELECTRICAL CHARACTERISTICS: (Test conditions: VIN=VEN=3V, TAMB=25°C unless otherwise stated(1)) Symbol V IN I IN Parameter Input voltage Supply current Quiescent Shutdown V FB R1 R2 f LX T OFF T ON (2) Conditions Min 2.5 Typ Max 5.5 Units V V EN = VIN, ILX = 0, Output not switching V EN = 0V 0.98 60 10kHz), the control loop will see a voltage, that has an average value equal to the duty cycle multiplied by VREF. This provides a means of adjusting the output voltage to a lower value. It also allows the device to be both turned on and adjusted with a single signal at the ‘EN’ pin. The output during this mode of operation will be a dc voltage equal to VREF*(R1+R2)/R1 x duty cycle. Gated PWM operation The internal circuitry of the ZXLD1601 is turned off when no signal is present on the ‘EN’ pin for more than 120µs (nominal). A low frequency signal applied to the EN pin will therefore gate the device ‘on’ and ‘off’ at the gating frequency and the duty cycle of this signal can be varied to provide an average output equal to VREF *(R1+R2)/R1 x duty cycle. For best accuracy, the gating frequency should be made as low as possible (e.g. below 1kHz), such that the turn off delay of the chip is only a small proportion of the gating period Further details of setting output current are given in the application notes. ISSUE 3 - AUGUST 2004 5 SEMICONDUCTORS ZXLD1601 TYPICAL CHARACTERISTICS ISSUE 3 - AUGUST 2004 SEMICONDUCTORS 6 ZXLD1601 TYPICAL PERFORMANCE GRAPHS (For typical applications circuit at VIN=3V, L=22µH Murata LQH32CN series, TA=25°C unless otherwise stated) ISSUE 3 - AUGUST 2004 7 SEMICONDUCTORS ZXLD1601 APPLICATIONS Setting output voltage When connected as shown in the typical application circuit, the ZXLD1601 will produce a nominal default output of between 26V and 28V. This is set by the internal potential divider comprising of resistors R1 and R2. (See device block diagram). The internal potential divider network R1/R2 is accessible at the FB pin and can be shunted by means of external resistors to set different nominal output voltages. The potential divider defines output voltage according to the relationship: R2 ⎞ ⎛ ⎟ V OUT = V FB ⎜1 + ⎝ R1⎠ where VFB = 1.025V. When using external resistors, these should be chosen with lower values than the internal resistors to minimize errors caused by the device to device variation in absolute value of the internal resistors (±30% max). The internal resistors have high values in order to minimize these errors. Required External output voltage resistor across R1 5V 1 2V 1 8V 2 1V 2 5V 2 8V 43K 56K 43K 34.8K 27K 40.2K External resistor across R2 1 30K 4 87K 6 49K 6 49K 6 20K 1 .07M 1) PWM output voltage adjustment (analogue mode) During this mode of operation the device operation is continuous, providing a low ripple output voltage (VOUT) directly proportional to the duty cycle (D) of the logic signal applied to the EN pin according to the relationship: VOUT = D x VOUT(nom) Square wave signals applied to the EN pin, for example, will turn the device on and produce a nominal regulated output of 13.5V. The ZXLD1601 contains a timing circuit that switches the device on a few microseconds after the application of a rising edge to EN and turns it back off again nominally 120µs after the falling edge of EN. For continuous PWM mode operation, the frequency of the control signal must therefore be maintained above 10kHz at all times, to prevent the internal delay circuit from timing out and switching the device into standby mode. The maximum frequency applied to EN should be limited to 100kHz to minimize errors due to internal switching delays 2) PWM output voltage adjustment (gated mode) This method of adjustment can be used in applications where the output ripple is less important than the supply current. The method of adjustment is the same as in 1) above, however, during this mode of operation, the device is gated on and off, providing an average output voltage (VOUT) directly proportional to the duty cycle (D) of the logic signal applied to the EN pin according to the relationship: VOUT(AVG) = D x VOUT(nom) The ripple on this voltage will be determined by the size of the output capacitor. The output voltage can be adjusted all the way down to the input voltage by either method of PWM control, but for best results, the duty cycle range should be kept within the specified range. Lower duty cycles will result in increased output ripple and non-linearity in the relationship between duty cycle and output voltage. If a greater control range is required, the nominal output can be reduced by the use of external resistors before the PWM signal is applied. Minimizing output voltage ripple For applications requiring lower output ripple it may be necessary to add a small ceramic capacitor in parallel with R2. A value of 4.7pF is suitable for most output ranges. The following table gives suggested values for various output voltages. Once the nominal output voltage has been set, it can be adjusted to a lower value by applying a pulse width modulated (PWM) control signal to the EN pin, using one of the two methods described below. PWM adjustment permits the device to be turned on and the output voltage set by a single logic signal applied to the EN pin. No external resistors are required and the amplitude of the control signal is not critical, providing it conforms to the limits defined in the electrical characteristics. ISSUE 3 - AUGUST 2004 SEMICONDUCTORS 8 ZXLD1601 Capacitor selection A ceramic capacitor grounded close to the GND pin of the package is recommended at the output of the device. Surface mount types offer the best performance due to their lower inductance. A minimum value of 0.22µF is advised, although higher values will lower switching frequency and improve efficiency especially at lower load currents. A higher value will also minimize ripple when using the device to provide an adjustable dc output current. A good quality, low ESR capacitor should also be used for input decoupling, as the ESR of this capacitor is effectively in series with the source impedance and lowers overall efficiency. This capacitor has to supply the relatively high peak current to the coil and smooth the current ripple on the input supply. A minimum value of 4.7µF is acceptable if the input source is close to the device, but higher values will improve performance at lower input voltages, when the source impedance is high. The input capacitor should be mounted as close as possible to the IC For maximum stability over temperature, capacitors with X7R dielectric are recommended, as these have a much smaller temperature coefficient than other types. A table of recommended manufacturers is provided below: Manufacturer Murata Taiyo Yuden Kemet AVX Website www.murata.com www.t-yuden.com www.kement.com www.avxcorp.com Inductor selection The choice of inductor will depend on available board space as well as required performance. Small value inductors have the advantage of smaller physical size and may offer lower series resistance and higher saturation current compared to larger values. A disadvantage of lower inductor values is that they result in higher frequency switching, which in turn causes reduced efficiency due to switch losses. Higher inductor values can provide better performance at lower supply voltages. However, if the inductance is too high, the output power will be limited by the internal oscillator, which will prevent the coil current from reaching its peak value. This condition will arise whenever the ramp time (ILX(peak) x L/VIN) exceeds the nominal 5µs maximum ‘on’ time limit for the LX output. Part No. L ( H) CMD4D11-100MC DO1608-103 LQH31CN100 LB2012Y100MR 10 10 10 10 DCR () 0.457 0.16 1.3 0.5 I SAT (A) 0.5 1.1 0.23 0.1 Sumida www.sumida.com Coilcraft www.coilcraft.com Murata www.murata.com Taiyo Yuden www.t-yuden.com Recommended inductor values for the ZXLD1601 are in the range 6.8µH to 22µH. The inductor should be mounted as close to the device as possible with low resistance connections to the LX and VIN pins. Suitable coils for use with the ZXLD1601 are shown in the table below: Manufacturer ISSUE 3 - AUGUST 2004 9 SEMICONDUCTORS ZXLD1601 Diode selection The rectifier diode (D1) should be a fast low capacitance Schottky diode with low reverse leakage at the working voltage. It should also have a peak current rating above the peak coil current and a continuous current rating higher than the maximum output load current. The table below gives some typical characteristics for diodes that can be used with the ZXLD1601: Diode V F @ 100mA (mV) I FSM (mA) Ic (mA) I R at 30V ( A) Package ZHCS400 ZHCS500 300 300 1000 1000 400 500 15 15 SOD323 SOT23 Layout considerations PCB tracks should be kept as short as possible to minimize ground bounce, and the ground pin of the device should be soldered directly to the ground plane. It is particularly important to mount the coil and the input/output capacitors close to the device to minimize parasitic resistance and inductance, which will degrade efficiency. The FB pin is a high impedance input, so PCB track lengths to this should also be kept as short as possible to reduce noise pickup. Excess capacitance from the FB pin to ground should be avoided. ISSUE 3 - AUGUST 2004 SEMICONDUCTORS 10 ZXLD1601 NOTES: ISSUE 3 - AUGUST 2004 11 SEMICONDUCTORS ZXLD1601 PACKAGE OUTLINE PACKAGE DIMENSIONS Millimeters DIM Min A A1 A2 b C D E E1 e e1 L a° 0.80 0.80 0.15 0.08 Max 1.10 0.10 1.00 0.30 0.25 Min 0.0315 0.0315 0.006 0.0031 Max 0.0433 0.0039 0.0394 0.0118 0.0098 Inches 2.00 BSC 2.10 BSC 1.25 1.35 0.0787 BSC 0.0826 BSC 0.0492 0.0531 0.65 BSC 1.30 BSC 0.26 0° 0.46 8° 0.0255 BSC 0.0511 BSC 0.0102 0° 0.0181 8° ORDERING INFORMATION DEVICE DEVICE DESCRIPTION TEMPERATURE RANGE PART MARK 601 TAPING OPTIONS TA, TC ZXLD1601H6 Boost converter in SC70-6 -40°C to +85°C TA reels 3000 devices, TC reels 10000 devices © Zetex Semiconductors plc 2004 Europe Zetex GmbH Streitfeldstraße 19 D-81673 München Germany Telefon: (49) 89 45 49 49 0 Fax: (49) 89 45 49 49 49 europe.sales@zetex.com Americas Zetex Inc 700 Veterans Memorial Hwy Hauppauge, NY 11788 USA Telephone: (1) 631 360 2222 Fax: (1) 631 360 8222 usa.sales@zetex.com Asia Pacific Zetex (Asia) Ltd 3701-04 Metroplaza Tower 1 Hing Fong Road, Kwai Fong Hong Kong Telephone: (852) 26100 611 Fax: (852) 24250 494 asia.sales@zetex.com Corporate Headquaters Zetex Semiconductors plc Lansdowne Road, Chadderton Oldham, OL9 9TY United Kingdom Telephone (44) 161 622 4444 Fax: (44) 161 622 4446 hq@zetex.com These offices are supported by agents and distributors in major countries world-wide. This publication is issued to provide outline information only which (unless agreed by the Company in writing) may not be used, applied or reproduced for any purpose or form part of any order or contract or be regarded as a representation relating to the products or services concerned. The Company reserves the right to alter without notice the specification, design, price or conditions of supply of any product or service. For the latest product information, log on to www.zetex.com ISSUE 3 - AUGUST 2004 SEMICONDUCTORS 12
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