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HIP6302VCB Datasheet(PDF) 14 Page - Renesas Technology Corp |
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HIP6302VCB Datasheet(HTML) 14 Page - Renesas Technology Corp |
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14 / 20 page ![]() HIP6301V, HIP6302V FN9034 Rev 3.00 Page 14 of 20 May 5, 2008 Droop, Selection of RIN The average of the currents detected through the RISEN resistors is also steered to the FB pin. There is no DC return path connected to the FB pin except for RIN, so the average current creates a voltage drop across RIN. This drop increases the apparent VCORE voltage with increasing load current, causing the system to decrease VCORE to maintain balance at the FB pin. This is the desired “droop” voltage used to maintain VCORE within limits under transient conditions. With a high dv/dt load transient, typical of high performance microprocessors, the largest deviations in output voltage occur at the leading and trailing edges of the load transient. In order to fully utilize the output-voltage tolerance range, the output voltage is positioned in the upper half of the range when the output is unloaded and in the lower half of the range when the controller is under full load. This droop compensation allows larger transient voltage deviations and thus reduces the size and cost of the output filter components. RIN should be selected to give the desired “droop” voltage at the normal full load current 50µA applied through the RISEN resistor (or at a different full load current if adjusted as in “Overcurrent, Selecting RISEN” on page 13). For a Vdroop of 80mV, RIN = 1.6k The AC feedback components, RFB and Cc, are scaled in relation to RIN. Current Balancing The detected currents are also used to balance the phase currents. Each phase’s current is compared to the average of all phase currents, and the difference is used to create an offset in that phase’s PWM comparator. The offset is in a direction to reduce the imbalance. The balancing circuit can not make up for a difference in rDS(ON) between synchronous rectifiers. If a FET has a higher rDS(ON), the current through that phase will be reduced. Figures 10 and 11 show the inductor current of a 2-phase system without and with current balancing. Inductor Current The inductor current in each phase of a multiphase buck converter has two components. There is a current equal to the load current divided by the number of phases (ILT/n), and a sawtooth current, (IP-P) resulting from switching. The sawtooth component is dependent on the size of the inductors, the switching frequency of each phase, and the values of the input and output voltage. Ignoring secondary effects, such as series resistance, the peak-to-peak value of the sawtooth current can be described by Equation 4. Where: VCORE = DC value of the output or VID voltage VIN = DC value of the input or supply voltage L = value of the inductor FSW = switching frequency Example: For VCORE = 1.6V, VIN = 12V, L= 1.3µH, FSW = 250kHz, Then IP-P = 4.3A The inductor, or load current, flows alternately from VIN through Q1 and from ground through Q2. The controller samples the on-state voltage drop across each Q2 transistor to indicate the inductor current in that phase. The voltage drop is sampled 1/3 of a switching period, 1/FSW, after Q1 is RIN Vdroop = 50 A (EQ. 3) IPP – VIN VCORE V 2 CORE – L F SW V IN ----------------------------------------------------------------- = (EQ. 4) 0 5 10 15 20 25 FIGURE 10. TWO CHANNEL MULTIPHASE SYSTEM WITH CURRENT BALANCING DISABLED 0 5 10 15 20 25 FIGURE 11. TWO CHANNEL MULTIPHASE SYSTEM WITH CURRENT BALANCING ENABLED |
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