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ADP1764ACPZ-R7 数据表(PDF) 16 Page - Analog Devices |
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ADP1764ACPZ-R7 数据表(HTML) 16 Page - Analog Devices |
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16 / 20 page ![]() ADP1764 Data Sheet Rev. A | Page 16 of 20 Therefore, the capacitor chosen in this example meets the minimum capacitance requirement of the LDO over temperature and tolerance at the chosen output voltage. To guarantee the performance of the ADP1764, it is imperative to evaluate the effects of dc bias, temperature, and tolerances on the behavior of the capacitors for each application. UNDERVOLTAGE LOCKOUT The ADP1764 has an internal undervoltage lockout (UVLO) circuit that disables all inputs and the output when the input voltage is less than approximately 1.06 V. The UVLO ensures that the ADP1764 inputs and output behave in a predictable manner during power-up. CURRENT-LIMIT AND THERMAL OVERLOAD PROTECTION The ADP1764 is protected against damage due to excessive power dissipation by current-limit and thermal overload protection circuits. The ADP1764 is designed to reach the current limit when the output load reaches 6.5 A (typical). When the output load exceeds 6.5 A, the output voltage is reduced to maintain a constant current limit. Thermal overload protection is included that limits the junction temperature to a maximum of 152°C (typical). Under extreme conditions (that is, high ambient temperature and power dissipa- tion) when the junction temperature begins to rise above 152°C, the output turns off, reducing the output current to zero. When the junction temperature drops below 136°C (typical), the output turns on again, and the output current is restored to its nominal value. Consider the case where a hard short from VOUT to ground occurs. At first, the ADP1764 reaches the current limit so that only 6.5 A is conducted into the short. If self-heating of the junction becomes great enough to cause its temperature to rise above 152°C, thermal shutdown activates, turning off the output and reducing the output current to zero. As the junction temperature cools and drops below 136°C, the output turns on and conducts 6.5 A into the short, again causing the junction temperature to rise above 152°C. This thermal oscillation between 136°C and 152°C causes a current oscillation between 6.5 A and 0 A that continues as long as the short remains at the output. Current-limit and thermal overload protections are intended to protect the device against accidental overload conditions. For reliable operation, device power dissipation must be externally limited so that junction temperatures do not exceed 125°C. PARALLELING ADP1764 DEVICES FOR HIGH CURRENT APPLICATIONS In applications where high output current is required while maintaining low noise and high PSRR performance, connect two ADP1764 devices in parallel to handle loads up to 7 A. When paralleling the ADP1764, the two outputs must be of the same voltage setting to maintain good current sharing between the two LDOs. To improve current sharing accuracy, add identical ballast resistors (RBALLAST) at the output of each regulator, as shown in Figure 49. Note that large ballast resistors improve current sharing accuracy, but degrade the load regulation performance and increase the losses along the power line. Therefore, it is best to keep the ballast resistors at a minimum. In addition, tie the VADJ, SS, and REFCAP pins of the LDO regulators together to minimize error between the two outputs. Use Equation 5 to calculate the output of the two paralleled ADP1764 LDOs. VOUT = 2 × AD × (RADJ × IADJ) (5) where: AD is the gain factor with a typical value of 2.99 between the VADJ pin and VOUT pin. IADJ is the 50 μA constant current out of the VADJ pin. VIN EN ENABLE SS VREG VOUT SENSE COUT 22µF PG VADJ GND REFCAP CIN 22µF RBALLAST = 5mΩ VOUT = 1.2V/7A ADP1764 VIN = 1.5V VIN EN SS VREG VOUT SENSE COUT 22µF PG VADJ GND REFCAP CIN 22µF ADP1764 CREG 1µF CREF 1µF RADJ 4.02kΩ RPULLUP 100kΩ CSS 1nF CREG 1µF CREF 1µF RBALLAST = 5mΩ Figure 49. Two ADP1764 Devices Connected in Parallel to Achieve Higher Current Output |
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