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HCF1305-2R2-R 数据表(PDF) 17 Page - Microchip Technology |
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HCF1305-2R2-R 数据表(HTML) 17 Page - Microchip Technology |
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17 / 39 page ![]() 2025-2026 Microchip Technology Inc. and its subsidiaries DS20007043B-page 17 MIC24054 Figure 4-2 shows the operation of the MIC24054 during a load transient. The output voltage drops due to the sudden load increase, which causes the VFB to be less than VREF. This will cause the error comparator to trigger an ON-time period. At the end of the ON-time period, a minimum OFF-time, tOFF(MIN), is generated to charge CBST because the feedback voltage is still below VREF. Then, the next ON-time period is triggered due to the low feedback voltage. Therefore, the switching frequency changes during the load transient, but returns to the nominal fixed frequency once the output has stabilized at the new load current level. With the varying duty cycle and switching frequency, the output recovery time is fast and the output voltage deviation is small in MIC24054 converter. FIGURE 4-2: Load Transient Response. Unlike true current-mode control, the MIC24054 uses the output voltage ripple to trigger an ON-time period. The output voltage ripple is proportional to the inductor current ripple if the ESR of the output capacitor is large enough. The MIC24054 control loop has the advantage of eliminating the need for slope compensation. In order to meet stability requirements, the MIC24054 feedback voltage ripple should be in phase with the inductor current ripple and large enough to be sensed by the gm amplifier and the error comparator. The recommended feedback voltage ripple is 20 mV~100 mV. If a low-ESR output capacitor is selected, then the feedback voltage ripple may be too small to be sensed by the gm amplifier and the error comparator. Also, the output voltage ripple and the feedback voltage ripple are not necessarily in phase with the inductor current ripple if the ESR of the output capacitor is very low. In these cases, ripple injection is required to ensure proper operation. Please refer to the Ripple Injection section for more details about the ripple injection technique. 4.3 Discontinuous Mode In continuous mode, the inductor current is always greater than zero; however, at light loads, the MIC24054 is able to force the inductor current to operate in discontinuous mode. Discontinuous mode is where the inductor current falls to zero, as indicated by trace (IL) shown in Figure 4-3. During this period, the efficiency is optimized by shutting down all the non-essential circuits and minimizing the supply current. The MIC24054 wakes up and turns on the high-side MOSFET when the feedback voltage (VFB) drops below 0.8V. The MIC24054 has a zero crossing comparator that monitors the inductor current by sensing the voltage drop across the low-side MOSFET during its ON-time. If the VFB > 0.8V and the inductor current goes slightly negative, then the MIC24054 automatically powers down most of the IC circuitry and goes into a low-power mode. Once the MIC24054 goes into discontinuous mode, both LSD and HSD are low, which turns off the high-side and low-side MOSFETs. The load current is supplied by the output capacitors and VOUT drops. If the drop of VOUT causes VFB to go below VREF, then all the circuits will wake up into normal continuous mode. First, the bias currents of most circuits reduced during the discontinuous mode are restored, then a tON pulse is triggered before the drivers are turned on to avoid any possible glitches. Finally, the high-side driver is turned on. Figure 4-3 shows the control loop timing in discontinuous mode. FIGURE 4-3: Control Loop Timing (Discontinuous Mode). During discontinuous mode, the bias current of most circuits are reduced. As a result, the total power supply current during discontinuous mode is only about 450 µA, allowing the MIC24054 to achieve high efficiency in light load applications. |
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