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34716 датащи(PDF) 20 Page - Freescale Semiconductor, Inc |
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34716 датащи(HTML) 20 Page - Freescale Semiconductor, Inc |
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20 / 25 page ![]() Analog Integrated Circuit Device Data 20 Freescale Semiconductor 34716 TYPICAL APPLICATIONS SELECTING INDUCTOR Inductor calculation process is the same for both Channels. The equation is the following: If channel 1 will be serving as power supply for channel 2, it is necessary to locate the LC poles at different frequencies in order to ensure that the input impedance of the second converter is always higher than the output impedance of the first converter, and thus, ensure system stability. This can be achieved by selecting different values for L1 and L2 slightly higher than the calculated value. SELECTING THE OUTPUT FILTER CAPACITOR For the output capacitor, the following considerations are most important and not the actual Farad value: the physical size, the ESR of the capacitor, and the voltage rating. Calculate the minimum output capacitor using the following formula: Transient Response percentage: TR_% Maximum Transient Voltage: TR_V_dip = VOUT*TR_% Maximum Current Step: Inductor Current Rise Time: The following formula will be helpful to find the maximum allowed ESR. The effects of the ESR is often neglected by the design- ers and may present a hidden danger to the ultimate supply stability. Poor quality capacitors have widely disparate ESR value, which can make the closed loop response inconsis- tent. BOOTSTRAP CAPACITOR The bootstrap capacitor is needed to supply the gate voltage for the high side MOSFET. This N-Channel MOSFET needs a voltage difference between its gate and source to be able to turn on. The high side MOSFET source is the SW node, so it is not at ground and it is floating and shifting in voltage. We cannot just apply a voltage directly to the gate of the high side that is referenced to ground. We need a voltage referenced to the SW node. This is why the bootstrap capacitor is needed. This capacitor charges during the high- side off time. Since the low side will be on during that time, the SW node and the bottom of the bootstrap capacitor will be connected to ground, and the top of the capacitor will be connected to a voltage source. The capacitor will charge up to that voltage source (for example 5V). Now when the low side MOSFET switches off and the high side MOSFET switches on, the SW nodes rise to VIN, and the voltage on the boot pin will be VCAP + VIN. The gate of the high side will have VCAP across it and it will be able to stay enhanced. A 0.1µF capacitor is a good value for this bootstrap element. TYPE III COMPENSATION NETWORK Power supplies are desired to offer accurate and tight regulation output voltages. A high DC gain is required to accomplish this, but with high gain comes the possibility of instability. The purpose of adding compensation to the internal error amplifier is to counteract some of the gains and phases contained in the control-to-output transfer function that could jeopardized the stability of the power supply. The Type III compensation network used for 34716 is comprised of two poles (one integrator and one high frequency, to cancel the zero generated from the ESR of the output capacitor) and two zeros to cancel the two poles generated from the LC filter as shown in Figure 10. Maximum Off Time Percentage T Switching Period Drain – to – Source Resistance of FET Winding Resistance of Inductor Output Current Ripple ls on Rds _ ) ( out out out MAX I w r ls on Rds I V T D L ∆ + + ∗ ∗ = )) _ _ ) ( ( * ( ' max _ 1 ' Vin V D out MAX − = w r _ OUT OUT I I * 4 . 0 = ∆ dip V TR rise I dt I Co OUT _ _ _ _ * = L Fsw D Vout Vin step Iout * max _ * ) min _ ( _ − = ∆ step I I T rise I dt OUT OUT _ * _ _ ∆ = min) 1 ( * * max D V L Fsw V ESR OUT OUT − ∆ = |
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