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LTM8063 Datasheet(PDF) 12 Page - Analog Devices |
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LTM8063 Datasheet(HTML) 12 Page - Analog Devices |
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12 / 26 page ![]() LTM4709 12 Rev. 0 For more information www.analog.com APPLICATIONS INFORMATION Bias Undervoltage Lockout An internal undervoltage lockout (UVLO) comparator monitors the BIAS1,2,3 pin. If BIAS drops below the UVLO threshold, all functions shut down, the pass transistors are off, and output currents fall to zero. The typical BIAS pin UVLO threshold is 2.21V on the rising edge of BIAS. The UVLO circuit incorporates about 150mV of hysteresis on the falling edge of BIAS. High-Efficiency Linear Regulator: Input-to-Output Voltage Control (VIOC) The VIOC1 pin is used to control an upstream switch- ing converter to maintain a constant voltage across the LTM4709. This maximizes efficiency while maintaining high PSRR performance. The VIOC1 pin voltage equals to (VIN – VOUT) + 800mV, where VIN and VOUT are input voltage and output voltage of LTM4709. The basic operation of VIOC is shown in Figure 2. In the case that the internal reference voltage of the upstream switching regulator VREFSW ≥ 1V, just tie the VIOC1 pin to the feed- back pin VFB of the switching regulator. This will regulate the LTM4709’s input-to-output difference to the switch- ing regulator’s internal reference voltage VREFSW minus 800mV. When paralleling multiple channels of a single or multiple LTM4709, just connect the VIOC1 pin to the upstream switching regulator’s feedback pin to achieve the VIOC function for all paralleled channels. When the LTM4709 is used for separate outputs, only channel 1 has a VIOC function. Channel 2 and Channel 3 do not have a VIOC function when the module is operating in separate outputs. While the VIOC buffer is inside the switching converter’s feedback loop, given the VIOC buffer’s high bandwidth, the switching converter’s frequency compensation doesn’t need to be adjusted. Phase delay through the VIOC buffer is typically less than 2° for frequencies as high as 100kHz. Hence, the VIOC buffer will be transparent and just act like an ideal wire within the switching converter’s bandwidth (which is usually less than 100kHz). For example, for a switching converter with less than 100kHz bandwidth and a phase margin of 50°, using the VIOC buffer, the phase margin will degrade by at most 2°. The phase margin for the switching converter (using the VIOC pin) will be at least 48°. Given the VIOC buffer is inside the switching converter’s feedback loop, the total capacitance on the VIOC pin is required to be below 20pF. As shown in Figure 3, the input-to-output differential voltage is easily programmable to support different applica- tion needs (PSRR vs power dissipation) using Equation 1. VIN1 – VOUT1 + 0.8V = VREFSW • R1 + R2 R1 (1) IMONR1 PGR1 VO11 VIOC1 VO10 PG1 VO12 EN1 BIAS1 VOUTS1 VIN1 GND VREF1 VOUT1 3.3VBIAS 100 F 4.7 F 4709 F02 22 F 0.8VOUT1 SW VFB VIN R1 VIN IMON1 UPSTREAM SWITCHING REGULATOR VREFSW ≥ 1V 0.8V – + ×1 LTM4709 Figure 2. Input-to-Output Voltage Control (VIOC) Basic Operation |
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