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VIPER53SP 数据表(PDF) 15 Page - STMicroelectronics |
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VIPER53SP 数据表(HTML) 15 Page - STMicroelectronics |
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15 / 24 page ![]() VIPer53DIP / VIPer53SP 15/24 actually an equivalent number of switching pulses per second, rather than a fixed switching frequency, as the device is working in burst mode. As long as the power remains below PRST the output of the regulation loop remains stuck at VCOMPsd and the converter works in burst mode. Its “density” increases (i.e. the number of missing cycles decreases) as the power approaches PRST and resumes finally normal operation at point 1. The hysteresis cannot be seen on the switching frequency, but the COMP pin voltage which passes brutally at that power level from point 3 to point 1. The power points value PRST and PSTBY are defined by the following formulas: Where Ip(VCOMPbl) is the peak Power MOSFET current corresponding to a compensation voltage of VCOMPbl (1V), that is to say about 250 mA. Note that the power point PSTBY where the converter is going into burst mode doesn’t depend on the input voltage. The standby frequency FSWstb y is given by: The ratio between the nominal switching frequency and the standby one can be as high as 4, depending on the Lp value and input voltage. HIGH VOLTAGE START-UP CURRENT SOURCE An integrated high voltage current source provides a bias current from the DRAIN pin during the start- up phase. This current is partially absorbed by internal control circuits in standby mode with reduced consumption and also supplies the external capacitor connected to the VDD pin. As soon as the voltage on this pin reaches the high voltage threshold VDDon of the UVLO logic, the device turns into active mode and starts switching. The start-up current generator is switched off, and the converter should normally provide the needed current on the VDD pin through the auxiliary winding of the transformer, as shown on figure 14 or 15. The external capacitor CVDD on the VDD pin must be sized according to the time needed by the converter to start-up, when the device starts switching. This time tss depends on many parameters, among which transformer design, output capacitors, soft start feature and compensation network implemented on the COMP pin and possible secondary feedback circuit. The following formula can be used for defining the minimum capacitor needed: Figure 17 shows a typical start-up event. VDD starts from 0 V with a charging current IDDch1 at about 9 mA. When about VDDoff is reached, the Figure 16: Standby Mode Implementation VCOMP VCOMPsd VCOMPbl VCOMPoff 600ns 350ns FSW PIN FSWnom FSWstby PSTBY PRST Minimum 1 3 2 1 2 3 ton turn on P RST 1 2 --- F SWnom tb 1 td + () 2 V IN 2 1 Lp ------ ⋅⋅ ⋅ ⋅ = P STBY 1 2 --- F SW nom Ip 2 V COMP bl () Lp ⋅⋅ ⋅ = F SWs tby P STBY P RST -------------- F SWnom ⋅ = C VDD I DD1 tss ⋅ V DDhyst ----------------------- > Figure 17: Startup Waveforms IDD IDD1 tss IDDch2 IDDch1 t t VDDsd VDDst VDDreg VDD tsu |
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