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MAX16929BGUI Datasheet(PDF) 22 Page - Maxim Integrated Products |
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MAX16929BGUI Datasheet(HTML) 22 Page - Maxim Integrated Products |
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22 / 25 page ![]() ���������������������������������������������������������������� Maxim Integrated Products 22 MAX16929 Automotive TFT-LCD Power Supply with Boost Converter and Gate Voltage Regulators Boost Converter Power dissipation in the boost converter is primarily due to conduction and switching losses in the low-side FET. Conduction loss is produced by the inductor current flowing through the on-resistance of the FET during the on-time. Switching loss occurs during switching transi- tions and is a result of the finite time needed to fully turn on and off the FET. Power dissipation in the boost con- verter can be estimated with the following formula: PLXP ≈ [(IIN(DC,MAX) × √D)2 × RDS_ON(LXP)] + VSH × IIN(DC,MAX) × fSW × [(tR-V + tF-I) + (tR-I + tF-V)] where IIN(DC,MAX) is the maximum expected average input (i.e., inductor) current, D is the duty cycle of the boost converter, RDS_ON(LXP) is the on-resistance of the internal low-side FET, VSH is the output voltage, and fSW is the switching frequency of the boost converter. RDS_ON(LXP) is 110mI (typ) and fSW is 2.2MHz. The voltage and current rise and fall times at the LXP node are equal to tR-V (voltage rise time), tF-V (voltage fall time), tR-I (current rise time), and tF-I (current fall time), and are determined as follows: SH SCHOTTKY R-V R-V V V t = K + SH SCHOTTKY F-V F-V V V t = K + IN(DC,MAX) R-I R-I I t = K IN(DC,MAX) F-I F-I I t = K KR-V, KF-V, KR-I, and KF-I are the voltage and current slew rates of the LXP node and are supply dependent. Use Table 5 to determine their values. Positive-Gate Voltage Regulator Use the lowest number of charge-pump stages possible in supplying power to the positive-gate voltage regulator. Doing so minimizes the drain-source voltage of the inte- grated pMOS switch and power dissipation. The power dissipated in the switch is given as: PGH = (VCP - VGH) × ILOAD(MAX)_GH Ensure that the voltage on CP does not exceed the CP overvoltage threshold as given in the Electrical Characteristics table. Negative-Gate Voltage Regulator Use the lowest number of charge-pump stages possible to provide the negative voltage to the negative-gate voltage regulator. Estimate the power dissipated in the negative-gate voltage regulator using the following: PGL = (VINA + |VCN| - VBE) × IDRVN where VBE is the base-emitter voltage of the external npn bipolar transistor, and IDRVN is the current sourced from DRVN to the RBE bias resistor and to the base of the transistor, which is given by: GL BE DRVN BE FE I V I = R h +1 + 1.8V/3.3V Regulator Controller The power dissipated in the 1.8V/3.3V regulator controller is given by: PREG = (VINA - VOUT_REG - VBE) × IDR where VOUT_REG = 1.8V or 3.3V, VBE is the base-emitter voltage of the external npn bipolar transistor, and IDR is the current sourced from DR to the base of the transistor. IDR is given by: LOAD DR FE I I = h 1 + where ILOAD is load current of the 1.8V/3.3V regulator controller, and hFE is the current gain of the transistor. Table 5. LXP Voltage and Current Slew Rates vs. Supply Voltage VINA (V) LXP VOLTAGE AND CURRENT SLEW RATES RISING VOLTAGE SLEW RATE KR-V (V/ns) FALLING VOLTAGE SLEW RATE KF-V (V/ns) RISING CURRENT SLEW RATE KR-I (A/ns) FALLING CURRENT SLEW RATE KF-I (A/ns) 3.3 0.52 1.7 0.13 0.38 5 1.35 2 0.3 0.44 |
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