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FDMF6706C датащи(PDF) 13 Page - ON Semiconductor |
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FDMF6706C датащи(HTML) 13 Page - ON Semiconductor |
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13 / 19 page ![]() © 2011 Fairchild Semiconductor Corporation www.fairchildsemi.com FDMF6706C • Rev. 1.0.3 12 Adaptive Gate Drive Circuit The driver IC advanced design ensures minimum MOSFET dead-time while eliminating potential shoot through (cross-conduction) currents. It senses the state of the MOSFETs and adjusts the gate drive adaptively to ensure they do not conduct simultaneously. Figure 21 provides the relevant timing waveforms. To prevent overlap during the LOW-to-HIGH switching transition (Q2 off to Q1 on), the adaptive circuitry monitors the voltage at the GL pin. When the PWM signal goes HIGH, Q2 begins to turn off after some propagation delay (tPD_PHGLL). Once the GL pin is discharged below ~2 V, Q1 begins to turn on after adaptive delay tD_DEADON. To preclude overlap during the HIGH-to-LOW transition (Q1 off to Q2 on), the adaptive circuitry monitors the voltage at the VSWH pin. When the PWM signal goes LOW, Q1 begins to turn off after some propagation delay (tPD_PLGHL). Once the VSWH pin falls below ~2.2 V, Q2 begins to turn on after adaptive delay tD_DEADOFF. Additionally, VGS(Q1) is monitored. When VGS(Q1) is discharged below ~1.2 V, a secondary adaptive delay is initiated, which results in Q2 being driven on after tD_TIMEOUT, regardless of SW state. This function is implemented to ensure CBOOT is recharged each switching cycle in the event that the SW voltage does not fall below the 2.2 V adaptive threshold. Secondary delay tD_TIMEOUT is longer than tD_DEADOFF. Figure 21. PWM and 3-StateTiming Diagram Notes: tPD_xxx = propagation delay from external signal (PWM, SMOD#, etc.) to IC generated signal. Example (tPD_PHGLL – PWM going HIGH to LS VGS (GL) going LOW) tD_xxx = delay from IC generated signal to IC generated signal. Example (tD_DEADON – LS VGS (GL) LOW to HS VGS (GH) HIGH) PWM Exiting 3-state tPD_PHGLL = PWM rise to LS VGS fall, VIH_PWM to 90% LS VGS tPD_TSGHH = PWM 3-state to HIGH to HS VGS rise, VIH_PWM to 10% HS VGS tPD_PLGHL = PWM fall to HS VGS fall, VIL_PWM to 90% HS VGS tPD_TSGLH = PWM 3-state to LOW to LS VGS rise, VIL_PWM to 10% LS VGS tPD_PHGHH = PWM rise to HS VGS rise, VIH_PWM to 10% HS VGS (SMOD# held LOW) SMOD# Dead Times tPD_SLGLL = SMOD# fall to LS VGS fall, VIL_SMOD to 90% LS VGS tD_DEADON = LS VGS fall to HS VGS rise, LS-comp trip value (~2.0V GL) to 10% HS VGS tPD_SHGLH = SMOD# rise to LS VGS rise, VIH_SMOD to 10% LS VGS tD_DEADOFF = VSWH fall to LS VGS rise, SW-comp trip value (~2.2V VSWH) to 10% LS VGS tPD_TSGHH VSWH GH to VSWH GL tPD_PHGLL tD_HOLD -OFF 90% less than tD_HOLD -OFF Exit 3 State 2.0V PWM VIL_PWM VIH_PWM VTRI_HI VIH_PWM VIH_PWM 10% tR_GL tD_HOLD -OFF tPD_TSGLH less than tD_HOLD -OFF Exit 3-State VIH PWM VTRI_HI VTRI_LO VIL_PWM t PD_PLGHL tPD_TSGHH DCM tF_GH tR_GH tD_HOLD-OFF 10% CCM DCM Exit 3-State 90% 10% 90% Enter 3 -State Enter 3 -State tD_DEADOFF tD_DEADON Enter 3-State tF_GL VIN VOUT 2.2V |
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