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LTM4633 Fiches technique(PDF) 11 Page - Linear Technology |
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LTM4633 Fiches technique(HTML) 11 Page - Linear Technology |
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11 / 32 page ![]() LTM4633 11 4633f For more information www.linear.com/LTM4633 applicaTions inForMaTion The typical LTM4633 application circuit is shown in Fig- ure 16. External component selection is primarily deter- mined by the maximum load current and output voltage. RefertoTable5forspecificexternalcapacitorrequirements for particular applications. VIN to VOUT Step-Down Ratios There are restrictions in the VIN to VOUT step-down ratio that can be achieved for a given input voltage. The VIN to VOUT minimum dropout is a function of load current and at very low input voltage and high duty cycle applications output power may be limited as the internal top power MOSFET is not rated for 10A operation at higher ambient temperatures. At very low duty cycles the minimum 90ns on-time must be maintained. See the Frequency Adjust- ment section and temperature derating curves. Output Voltage Programming The PWM controller has an internal 0.8V ±1% reference voltage. As shown in the Block Diagram, a 60.4k preci- sion internal feedback resistor connects the VOUT and VFB pins together. The output voltage will default to 0.8V with no feedback resistor. Adding a resistor RFB from VFB to ground pro- grams the output voltage: VOUT = 0.8V • 60.4k +RFB RFB , RFB = 48.32k VOUT –0.8V Table 1. VFB Resistor Table vs Various Output Voltages VOUT(V) 0.8 1.0 1.2 1.5 1.8 2.5 3.3 5.0 RFB (kΩ) Open 242 121 69.8 48.7 28.7 19.1 11.5 For parallel operation of VOUT1 and VOUT2, the following equation can be used to solve for RFB: RFB = 60.4k 2 VOUT 0.8V –1 In the parallel operation the following pins should be tied together, VFB1 and VFB2 pins, COMP1 and COMP2 pins, TK/SS1 and TK/SS2, and RUN1 and RUN2. Input Capacitors The LTM4633 module should be connected to a low AC impedance DC source. Additional input capacitors are neededfortheRMSinputripplecurrentrating.TheICIN(RMS) equation which follows can be used to calculate the input capacitor requirement for each channel. Typically 22µF X7R ceramics are a good choice with RMS ripple current ratings of ~2A each. A 47µF to 100µF surface mount alu- minum electrolytic capacitor can be used for more input bulk capacitance. This bulk input capacitor is only needed if the input source impedance is compromised by long inductive leads, traces or not enough source capacitance. If low impedance power planes are used, then this bulk capacitor is not needed. For a buck converter, the switching duty cycle can be estimated as: D = VOUT VIN Without considering the inductor ripple current, for each output, the RMS current of the input capacitor can be estimated as: ICIN(RMS) = IOUT(MAX) η% • D• 1–D ( ) (1) In the previous equation, η% is the estimated efficiency of the power module in decimal form (0.nn) for a given VOUT-to-VIN ratio. The selection of CIN is simplified by the 3-phase architec- ture and its impact on the worst-case RMS current draw occurs when only one channel is operating. This is true when the three channels are powered from a common VIN. The channel with the highest duty cycle D peaking at 0.5 and maximum load current needs to be used in the |
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