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STEF512SRI Datasheet(PDF) 11 Page - STMicroelectronics |
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STEF512SRI Datasheet(HTML) 11 Page - STMicroelectronics |
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11 / 28 page ![]() Figure 9. Current monitor simplified circuit IMON_5 = IOUT_5 x AI_5 IMON_12 = IOUT_12 x AI_12 IMON_SEL IMON_5/12 STEF512SRI CMON RMON The current monitoring circuit is also equipped with an internal clamp that limits the voltage on the pin at a static value of 1.8 V. Bypassing the pin to GND with a minimum CMON of 1 nF is recommended as it avoids voltage spikes during fast output current transition. 6.6 Thermal shutdown If the device temperature exceeds the thermal threshold, typically 165 °C, the thermal shutdown circuitry turns the power MOSFET off, thus disconnecting the load. The power MOSFET remains in an off-state until the die temperature drops below the hysteresis value. Once this happens, the internal auto-retry circuit attempts to reset the device. The device is also equipped with a differential thermal protection that avoids damage in case of fast thermal gradients inside the chip. When the differential thermal protection is activated, both channels are switched off. This protection works in auto-retry mode without soft-start phase. 6.7 Reverse current blocking feature on the 5 V channel The 5 V eFuse contains a second power transistor (ISOFET) connected in a back-to-back configuration with the main one, to prevent significant current flowing back from the 5 V output into the 5 V input, in case of input short to ground, brown-out, or a deep input voltage glitch. The simplified structure is shown in Figure 10. The ISOFET is controlled by the UVLO circuit and by a reverse comparator, which continuously monitors the voltage difference between the VIN_5 and VOUT_5. As soon as the reverse comparator detects a significant negative voltage across the 5 V eFuse (typically 50 mV), the M2 transistor is immediately turned off. M2 can be turned back on only if the voltage drop across the eFuse has become zero (no negative current). However, in case of slow VIN_5 decay, the VOUT_5 voltage follows the VIN_5 because of the output capacitor being discharged through the eFuse into the VIN_5, hence no significant negative voltage is generated across the eFuse. In that case the UVLO circuit serves as a “stop loss” feature, that is, the information from the reverse comparator is overridden by the VIN_5 undervoltage lockout and the M2 is forced to turn off. As soon as the UVLO threshold has been reached again, the eFuse restarts with normal soft-start cycle. Figure 10. 5 V reverse current protection block diagram STEF512SRI Thermal shutdown DS14138 - Rev 1 page 11/28 |
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