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ADP2302ARDZ-3.3-R7 数据表(PDF) 17 Page - Analog Devices |
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ADP2302ARDZ-3.3-R7 数据表(HTML) 17 Page - Analog Devices |
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17 / 28 page ![]() ADP2302/ADP2303 Rev. 0 | Page 17 of 28 2 4 6 8 10 12 14 16 18 20 22 0 2468 10 12 14 16 VOUT (V) MAXIMUM INPUT VOLTAGE MINIMUM INPUT VOLTAGE Figure 47. Voltage Conversion Limitations LOW INPUT VOLTAGE CONSIDERATIONS For low input voltage between 3 V and 5 V, the internal boot regulator cannot provide enough bootstrap voltage due to the internal dropout voltage. As a result, the increased MOSFET RDS(ON) reduces the available load current. To prevent this, add an external small-signal Schottky diode from a 5.0 V external bootstrap bias voltage. Because the absolute maximum rating between the BST and SW pins is 6.0 V, the bias voltage should be less than 5.5 V. Figure 48 shows the application diagram for the external bootstrap circuit. VIN 3.0V ~ 5.0V ADP2302/ ADP2303 EN GND OFF ON BST SW SCHOTTKY DIODE 5V BIAS VOLTAGE FB Figure 48. External Bootstrap Circuit for Low Input Voltage Application PROGRAMMING THE PRECISION ENABLE Generally, the EN pin can connect to the VIN pin so that the device automatically starts up when the input power is applied. However, the precision enabling feature allows the ADP2302/ ADP2303 to be used as a programmable UVLO by connecting a resistive voltage divider to VIN, as shown in Figure 49. This configuration prevents the start-up problems that can occur when VIN ramps up slowly in soft start with a relatively high load current. VIN VIN REN1 REN2 ADP2302/ ADP2303 EN Figure 49. Precision Enable Used as a Programmable UVLO The precision enable feature also allows the ADP2302/ADP2303 to be sequenced precisely by using a resistive voltage divider from another dc-to-dc power supply, as shown in Figure 50. REN1 REN2 ADP2302/ ADP2303 EN ANOTHER DC/DC SUPPLIER Figure 50. Precision Enable Used as a Sequencing Control from Another DC-to-DC Power Supply With a 1.2 μA pull-down current on the EN pin, the equation for the start-up voltage in Figure 49 and Figure 50 is V 2 . 1 μA 2 . 1 V 2 . 1 + × ⎟⎟ ⎠ ⎞ ⎜⎜ ⎝ ⎛ + = EN1 EN2 STARTUP R R V where: VSTARTUP is the start-up voltage to enable the chip. REN1 is the resistor from the dc source to EN. REN2 is the resistor from EN to GND. INDUCTOR The high switching frequency of the ADP2302/ADP2303 allows the use of small inductors. For best performance, use inductor values between 1 μH and 15 μH. The peak-to-peak inductor ripple current is calculated using the following equation: ⎟⎟ ⎠ ⎞ ⎜⎜ ⎝ ⎛ + + × × − = Δ D IN D OUT sw OUT IN RIPPLE V V V V f L V V I ) ( where: fSW is the switching frequency. L is the inductor value. VD is the diode forward drop. VIN is the input voltage. VOUT is the output voltage. Inductors of smaller values are usually smaller in size but increase the ripple current and the output ripple voltage. As a guideline, the inductor peak-to-peak ripple current is typically set to 30% of the maximum load current for optimal transient |
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