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MPX2003 Datenblatt(PDF) 23 Page - Monolithic Power Systems |
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MPX2003 Datenblatt(HTML) 23 Page - Monolithic Power Systems |
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23 / 37 page ![]() MPX2003 – UP TO 140kHz ALL-IN-ONE FLYBACK CONTROLLER MPX2003 Rev. 1.0 MonolithicPower.com 23 8/5/2022 MPS Proprietary Information. Patent Protected. Unauthorized Photocopy and Duplication Prohibited. © 2022 MPS. All Rights Reserved. VDD VOUT SGND SDRV SRD + MPX2003 Figure 9: VDD Supply from Both the Output and SRD By allowing VDD to be powered by VOUT and SRD, the SR driver has an expedited start-up, which limits the voltage spike caused by the body diode’s reverse recovery. Otherwise, the current supply for VDD comes from VOUT for optimized efficiency. Synchronous Rectification Turn On After the primary-side MOSFET turns off, the inductor current is transferred from the primary side to the secondary side, which makes the SR MOSFET’s drain voltage drop. When the voltage on the SRD pin crosses the turn-on threshold (VSR-ON), the secondary IC starts to set the SR driver, and the SR MOSFET turns on after the turn-on delay (tSR-OND). When the SR MOSFET is on, there is a minimum on time (tON-MIN) that prevents the MOSFET from being falsely turned off due to parasitic oscillation. During the minimum on time, the turn- off action is not completely blanked, and the turn- off threshold rises to VSR-OFFM. This ensures that the SR MOSFET can always be turned off under severe situations, even during the minimum on time. Synchronous Rectification Conduction During the SR conduction period, the gate voltage is regulated based on the forward voltage drop across the MOSFET (VSRD). When VSRD is below the internal reference voltage, the gate driver fully turns on to reach the minimum turn-on resistance. VSRD rises as the current decreases. When VSRD exceeds the reference voltage, the gate voltage is pulled down to increase the turn-on resistance, and the regulation voltage quickly switches to -VFWD. This means that the rising of VSRD is regulated to a certain level, which effectively prevents a premature turn-off while maximizing the SR conduction period. Synchronous Rectification Turn Off As the inductor current reaches zero during discontinuous conduction mode (DCM), VSRD rises to zero. Once VSRD exceeds VSR-OFF, the gate immediately pulls down to turn off the SR MOSFET (see Figure 10). -VFWD VTH VSRD VSDRV Turn-On Delay Turn-Off Delay Minimum On Time Driver begins to pull down Driver turns off Sync Signal VSR-ON VSR-OFF Figure 10: SR Operation during DCM During continuous conduction mode (CCM), the secondary IC generates a signal based on a dead time to determine when the SR MOSFET turns off and the primary MOSFET turns on. This feature reduces the chances of shoot-through (see Figure 11). -VFWD VTH VSRD VSDRV Turn-On Delay Turn-Off Delay Minimum On Time Driver turns off Sync Signal Dead Time VSR-ON Figure 11: SR Operation during CCM In burst mode, the SR gate block turns off to reduce power loss. When the IC exits burst mode, the SR gate block turns on after one switching operation. Output Voltage (VOUT) Regulation The internal error amplifier regulates VOUT. VOUT is fed back through the FB pin and external dividing resistors, and is then compared to the internal precise reference voltage (VREF). The |
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