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AS2845D-8 Folha de dados(PDF) 15 Page - List of Unclassifed Manufacturers |
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AS2845D-8 Folha de dados(HTML) 15 Page - List of Unclassifed Manufacturers |
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15 / 20 page ![]() ASTEC Semiconductor Current Mode Controller AS2842/3/4/5 51 In most typical power supply designs, the converter’s output voltage is divided down and monitored at the error amplifier’s inverting input, VFB. A simple resistor divider network is used and is scaled such that the voltage at VFB is 2.5 V when the converter’s output is at the desired voltage. The voltage at VFB is then compared to the internal 2.5 V reference and any slight differ- ence is amplified by the high gain of the error amplifier. The resulting error amplifier output is level shifted by two diode drops and is then divided by three to provide a 0 to 1 V reference (VE) to one input of the current sense compara- tor. The level shifting reduces the input voltage range of the current sense input and prevents the output from going high when the error amplifier output is forced to its low state. An internal clamp limits VE to 1.0 V. The purpose of the clamp is discussed in Section 1.5. 1.4.1 Loop compensation Loop compensation of a power supply is neces- sary to ensure stability and provide good line/load regulation and dynamic response. It is normally provided by a compensation network connected between the error amplifier’s output (COMP) and inverting input as shown in Figure 17. The type of network used depends on the converter topology and in particular, the characteristics of the major functional blocks within the supply - i.e. the error amplifier, the modulator/switching circuit, and the output filter. In general, the network is designed such that the converters overall gain/phase response approaches that of a single pole with a –20 dB/ decade rolloff, crossing unity gain at the highest possible frequency (up to fSW/4) for good dynamic response, with adequate phase margin (> 45 °) to ensure stability. Figure 18 shows the Gain/Phase response of the error amplifier. The unity gain crossing is at 1.2 MHz with approximately 57 ° C of phase margin. This information is useful in determining the configuration and characteristics required for the compensation network. One of the simplest types of compensation net- works is shown in Figure 19. An RC network provides a single pole which is normally set to compensate for the zero introduced by the the output capacitor’s ESR. The frequency of the pole (fP) is determined by the formula; ƒ= ƒƒ P 1 2 (5) π RC Figure 19. A Typical Compensation Network Frequency (Hz) 102 210 180 150 120 90 60 30 0 –30 –60 240 101 103 104 105 106 107 –20 0 20 40 60 80 Gain Phase Figure 18. Gain/Phase Response of the AS2842 – + 2.50 V To PWM E/A VOUT RI RF CF RBIAS |
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