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AS2842 数据表(PDF) 16 Page - List of Unclassifed Manufacturers |
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AS2842 数据表(HTML) 16 Page - List of Unclassifed Manufacturers |
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16 / 20 page ![]() AS2842/3/4/5 Current Mode Controller ASTEC Semiconductor 52 Resistors R1 and RF set the low frequency gain and should be chosen to provide the highest possible gain, without exceeding the unity gain crossing frequency limit of fSW /4. RBIAS, in con- junction with R1, sets the converter’s output volt- age; but has no effect on the loop gain/phase response. There are a few converter design considerations associated with the error amplifier. First, the values of the divider network (R1 and RBIAS) should be kept low in order to minimize errors caused by the error amplifier’s input bias current ( –1.0 µA). An output voltage error equal to the product of the input bias current and the equiva- lent divider resistance, can be quite significant with divider values greater than 5 k Ω. Low divider resistor values also help to improve the noise immunity of the sensitive VFB input. The second consideration is that the error ampli- fier will typically source only 0.8 mA; thus, the value of feedback resistance (RF) should be no lower than 5 k Ω in order to maintain the error amplifier’s full output range. In practice, how- ever, the feedback resistance required is usually much greater than 5 k Ω, hence this limitation is normally not a problem. Some power supply topologies may require a more elaborate compensation network. For ex- ample, flyback and boost converters operating with continuous current have transfer functions that include a right half plane (RHP) zero. These types of systems require an additional pole element within the compensation network. A detailed discussion of loop compensation, how- ever, is beyond the scope of this application note. 1.5 ISENSE current comparator/PWM latch The current sense comparator (sometimes called the PWM comparator) and accompanying latch circuitry make up the pulse width modulator (PWM). It provides pulse-by-pulse current sensing/limiting and generates a variable duty ratio pulse train which controls the output voltage of the power supply. Included is a high speed comparator followed by ECL type logic circuitry which has very low propagation delays and switch- ing noise. This is essential for high frequency power supply designs. The comparator has been designed to provide guaranteed performance with the current sense input below ground. The PWM latch ensures that only one pulse is al- lowed at the output for each oscillator period. The inverting input to the current sense compara- tor is internally connected to the level shifted output of the error amplifier (VE) as discussed in the previous section. The non-inverting input is the ISENSE input (pin 3). It monitors the switched inductor current of the converter. Figure 20 shows the current sense/PWM cir- cuitry of the AS2842, and associated waveforms. The output is set high by an internal clock pulse and remains high until one of two conditions occur; 1) the oscillator times out (Section 1.3 )or 2) the PWM latch is set by the current sense comparator. During the time when the output is high, the converter’s switching device is turned on and current flows through resistor RS. This produces a stepped ramp waveform at pin 3 as shown in Figure 20. The current will continue to ramp up until it reaches the level of VE at the inverting input. At that point, the comparator’s output goes high, setting the PWM latch and the output pulse is then terminated. Thus, VE is a variable reference for the current sense com- parator, and it controls the peak current sensed by RS on a cycle-by-cycle basis. VS varies in proportion to changes in the input voltage/cur- rent (inner control loop) while VE varies in propor- tion to changes in the converters output voltage/ current (outer control loop). The two control loops merge at the current sense comparator, produc- ing a variable duty ratio pulse train that controls the output of the converter. |
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