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L6919E Fiches technique(PDF) 8 Page - STMicroelectronics |
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L6919E Fiches technique(HTML) 8 Page - STMicroelectronics |
8 / 33 page L6919E 8/33 DEVICE DESCRIPTION The device is an integrated circuit realized in BCD technology. It provides complete control logic and protections for a high performance dual-phase step-down DC-DC converter optimized for microprocessor power supply. It is de- signed to drive N Channel MOSFETs in a dual-phase synchronous-rectified buck topology. A 180 deg phase shift is provided between the two phases allowing reduction in the input capacitor current ripple, reducing also the size and the losses. The output voltage of the converter can be precisely regulated, programming the VID pins, from 0.825V to 1.575V with 25mV binary steps, with a maximum tolerance of ±0.6% over temperature and line voltage variations. The device automatically regulates 25mV higher than the HAMMER DAC avoiding the use of any external set-up resistor. The device manages On-The-Fly VID Code changes stepping to the new configuration following the VID table with no need for external components. The device provides an average current-mode control with fast transient response. It includes a 150kHz free-running oscillator. The error amplifier features a 15V/ µs slew rate that permits high converter bandwidth for fast transient performances. Current information is read across the lower mosfets RdsON or across a sense resistor in fully differential mode. The current information corrects the PWM output in order to equalize the av- erage current carried by each phase. Current sharing between the two phases is then limited at ±10% over static and dynamic conditions. The device protects against Over-Current, with an OC threshold for each phase, entering in con- stant current mode. Since the current is read across the low side mosfets, the constant current keeps constant the bottom of the inductors current triangular waveform. When an under voltage is detected the device latches and the FAULT pin is driven high. The device performs also Over-Voltage protection that disables immediately the device turn- ing ON the lower driver and driving high the FAULT pin. OSCILLATOR The switching frequency is internally fixed at 150kHz. Each phase works at the frequency fixed by the oscillator so that the resulting switching frequency at the load side results in being doubled. The internal oscillator generates the triangular waveform for the PWM charging and discharging with a constant cur- rent an internal capacitor. The current delivered to the oscillator is typically 25 A (Fsw=150kHz) and may be varied using an external resistor (ROSC) connected between OSC pin and GND or Vcc. Since the OSC pin is maintained at fixed voltage (Typ. 1.237V), the frequency is varied proportionally to the current sunk (forced) from (into) the pin con- sidering the internal gain of 6KHz/ µA. In particular connecting it to GND the frequency is increased (current is sunk from the pin), while connecting ROSC to Vcc=12V the frequency is reduced (current is forced into the pin), according to the following relationships: Note that forcing a 25 µA into this pin, the device stops switching because no current is delivered to the oscillator. Figure 1. ROSC vs. Switching Frequency R OSC vs. GND: fS 150 kHz 1.237 R OSC --------------- 6 kH z µA ----------- ⋅ + 150kHz 7.422 10 6 ⋅ R OSC K Ω () ------------------------------ + == R OSC vs. 12V: fS 150kHz 12 1.237 – R OSC --------------------------- 6 kHz µA ----------- ⋅ – 150 kHz 6.457 10 7 ⋅ R OSC K Ω () ------------------------------ – == 0 2000 4000 6000 8000 10000 12000 14000 25 50 75 100 125 150 Frequency (KHz) 0 100 200 300 400 500 600 700 800 150 250 350 450 550 650 Frequency (KHz) |
Numéro de pièce similaire - L6919E |
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Description similaire - L6919E |
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