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LTM4643 датащи(PDF) 11 Page - Analog Devices |
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LTM4643 датащи(HTML) 11 Page - Analog Devices |
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11 / 30 page ![]() LTM4638 11 Rev. C For more information www.analog.com APPLICATIONS INFORMATION The typical LTM4638 application circuit is shown in Figure 23. External component selection is primarily determined by the input voltage, the output voltage and the maximum load current. Refer to Table 7 for specific externalcapacitorrequirementsforaparticularapplication. VIN to VOUT Step-Down Ratios There are restrictions in the maximum VIN and VOUT step- down ratios that can be achieved for a given input voltage due to the minimum off-time and minimum on-time limits of the regulator. The minimum off-time limit imposes a maximum duty cycle which can be calculated as: DMAX = 1 – (tOFF(MIN) • fSW) where tOFF(MIN) is the minimum off-time, typically 50ns for LTM4638, and fSW (Hz) is the switching frequency. Converselytheminimumon-timelimitimposesaminimum duty cycle of the converter which can be calculated as: DMIN = tON(MIN) • fSW where tON(MIN) is the minimum on-time, typically 25ns for LTM4638. In the rare cases where the minimum duty cycle is surpassed, the output voltage will still remain in regulation, but the switching frequency will decrease from its programmed value. Note that additional thermal derating may be applied. See the Thermal Considerations and Output Current Derating section in this data sheet. Output Voltage Programming ThePWMcontrollerhasaninternal0.6Vreferencevoltage. As shown in the Block Diagram, a 60.4k internal feedback resistor connects the VOUT and FB pins together. Adding a resistor, RFB, from FB pin to VOSNS– programs the output voltage: RFB = 0.6V VOUT – 0.6V • 60.4k Table 1. RFB Resistor Table vs Various Output Voltages VOUT (V) 0.6 1.0 1.2 1.5 1.8 2.5 3.3 5.0 RFB (kΩ) OPEN 90.9 60.4 40.2 30.1 19.1 13.3 8.25 For parallel operation of multiple channels the same feed- back setting resistor can be used for the parallel design. This is done by connecting the VOSNS+totheoutputshown in Figure 2, thus tying one of the internal 60.4k resistors to the output. All of the VFB pins tie together with one programming resistor as shown in Figure 2. See Figure 25 for an example of parallel operation. Input Decoupling Capacitors The LTM4638 module should be connected to a low AC impedance DC source. For the regulator, a 22µF input ceramic capacitor is required for RMS ripple current de- coupling. Bulk input capacitance is only needed when the inputsourceimpedanceiscompromisedbylonginductive leads, traces or not enough source capacitance. The bulk capacitor can be an aluminum electrolytic capacitor or polymer capacitor. Without considering the inductor ripple current, the RMS current of the input capacitor can be estimated as: ICIN(RMS) = IOUT(MAX) η% • D• 1–D ( ) where η%istheestimatedefficiencyofthepowermodule. Output Decoupling Capacitors With an optimized high frequency, high bandwidth de- sign, only a single low ESR output ceramic capacitor is required for the LTM4638 to achieve low output ripple voltage and very good transient response. In extreme 4638 F02 COMPa COMPb 1.2V/30A VOUT VOSNS+ VOSNS– VFB LTM4638 TRACK/SS COMPa VOUT VOSNS+ VOSNS– VFB LTM4638 TRACK/SS 0.1µF RFB 60.4k COMPb Figure 2. 2-Phase Parallel Configurations |
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