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TPS65281RGVT Datasheet(PDF) 21 Page - Texas Instruments |
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TPS65281RGVT Datasheet(HTML) 21 Page - Texas Instruments |
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21 / 31 page ![]() 8 clock cycles 10ms Vout IL VLX Current limit threshold TPS65281, TPS65281-1 www.ti.com SLVSBH7B – JULY 2012 – REVISED DECEMBER 2012 Internal V7V Regulator The TPS65281/TPS65281-1 features an internal P-channel low dropout linear regulator (LDO) that supplies power at the V7V pin from the VIN supply. V7V powers the gate drivers and much of the TPS65281/ TPS65281-1’s internal circuitry. The LDO regulates V7V to 6.3 V of over drive voltage on the power MOSFET for the best efficiency performance. The LDO can supply a peak current of 50 mA and must be bypassed to ground with a minimum 1-µF ceramic capacitor. The capacitor placed directly adjacent to the V7V and PGND pins is highly recommended to supply the high transient currents required by the MOSFET gate drivers. Short Circuit Protection During the PWM on-time, the current through the internal high side switching MOSFET is sampled. The sampled current is compared to a nominal 5-A over-current limit. If the sampled current exceeds the over-current limit reference level, an internal over-current fault counter is set to 1 and an internal flag is set. Both internal high side and low side power MOSFETs are immediately turned off and will not be turned on again until the next switching cycle. If the over-current condition persists for eight sequential clock cycles, the over-current fault counter overflows indicating an over-current fault condition exists. The buck regulator is shut down and stays turned off for 10 ms. If the over-current condition clears prior to the counter reaching eight consecutive cycles, the internal flag and counter are reset. The protection circuitry attempts to recover from the over-current condition after 10-ms power down time. The internal over-current flag and counter are reset. A normal soft-start cycle is attempted and normal operation continues if the over-current fault condition has cleared. If the over-current fault counter overflows during soft-start, the converter shuts down and this hiccup mode operation repeats. Figure 30. DC/DC Over-Current Protection Inductor Selection The higher operating frequency allows the use of smaller inductor and capacitor values. A higher frequency generally results in lower efficiency because of MOSFET gate charge losses. In addition to this basic trade-off, the effect of the inductor value on ripple current and low current operation must also be considered. The ripple current depends on the inductor value. The inductor ripple current, iL, decreases with higher inductance or higher frequency and increases with higher input voltage, VIN. Accepting larger values of iL allows the use of low inductances, but results in higher output voltage ripple and greater core losses. Use Equation 7 to calculate the value of the output inductor. LIR is a coefficient that represents inductor peak-to- peak ripple to DC load current. It is suggested to use 0.1 ~ 0.3 for most LIR applications. Copyright © 2012, Texas Instruments Incorporated Submit Documentation Feedback 21 Product Folder Links: TPS65281 TPS65281-1 |
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