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充電電路的控制吸收電容充放電電路圖

 下面給大家介紹一種控制吸收電容充放電的電路圖。
 (a)原理電(dian)路;

(b)實用電路控制吸收電容充放電的電路圖 
  來自PWM集成控制器的脈沖使其通/斷工作。為使VF2的通/斷時間與VF1相反,增設雙向延時電路S1。現假設VF1為截止狀態,VF2為導通狀態,吸收電容Cr充電到VF1的漏極-源極間電壓,由此,也吸收加在VF1上的浪涌電壓。在由延時電路確定的延時時間后VF2截止,但這時,Cr兩端電壓等于加在VF1上的電壓,因此,為零電壓和零電流開關器件斷開方式。  
   二次側二極管VD2的電流降為零,變壓器無勵磁能量。此時一次主繞組N1感應的回掃電壓變為零,以高于C1上電壓進行充電的吸收電容C1對一次主繞組N1反向放電,這樣,放電電流經VF2的寄生二極管(虛線所示)流通。Cr放電開始時,VF2必須截止。由于Cr放電,電容Cr與一次主繞組的電感Lp產生諧振。
  若VF2為導通狀態,諧振繼續衰減振蕩,但VF2截止狀態時,電容Cr兩端電壓為零時振蕩停止。若Cr停止諧振,則以VF1和VF2的輸入較小容量電容繼續產生較短周期的諧振。VF1再度導通時,軔小電容放電電流流經VF1本身而消耗掉。VF1導通時,其小容量電容充電的電壓隨導通時間而改變,但Cr兩端電壓降到最低電壓,因此,可以減小Cr產生的損耗。也就是說,即使采用較大容量的電容Cr損耗也不會增大。  
    一般(ban)的(de)M0S-FET寄生(sheng)二極(ji)(ji)管(guan)恢復特性不(bu)適宜(yi)高(gao)頻,因(yin)此(ci),增(zeng)(zeng)設(she)(she)低耗二極(ji)(ji)管(guan)作為(wei)電(dian)(dian)(dian)容放(fang)電(dian)(dian)(dian)二極(ji)(ji)管(guan),為(wei)使(shi)放(fang)電(dian)(dian)(dian)電(dian)(dian)(dian)流(liu)全部流(liu)經二極(ji)(ji)管(guan)VD1,在VF2回路中增(zeng)(zeng)加了逆阻斷(duan)二極(ji)(ji)管(guan)VD2.逆阻斷(duan)二極(ji)(ji)管(guan)VD2的(de)耐(nai)壓大于VD1的(de)正向壓降即可(ke),因(yin)此(ci),選(xuan)用肖特基二極(ji)(ji)管(guan)(SBD)。另外(wai),雙(shuang)向延(yan)(yan)時(shi)(shi)(shi)(shi)元件宜(yi)采用可(ke)飽和(he)電(dian)(dian)(dian)抗器,延(yan)(yan)時(shi)(shi)(shi)(shi)元件和(he)YF2的(de)輸(shu)入電(dian)(dian)(dian)容共同決定(ding)延(yan)(yan)時(shi)(shi)(shi)(shi)時(shi)(shi)(shi)(shi)間,需要較長延(yan)(yan)時(shi)(shi)(shi)(shi)時(shi)(shi)(shi)(shi)間時(shi)(shi)(shi)(shi),可(ke)在柵極(ji)(ji)增(zeng)(zeng)接電(dian)(dian)(dian)容。輸(shu)出(chu)電(dian)(dian)(dian)流(liu)一減小(xiao),VF1的(de)導(dao)通(tong)時(shi)(shi)(shi)(shi)間就(jiu)變(bian)短。這導(dao)通(tong)時(shi)(shi)(shi)(shi)間若短于延(yan)(yan)時(shi)(shi)(shi)(shi)時(shi)(shi)(shi)(shi)間,則VF1截止后,VF2導(dao)通(tong),因(yin)此(ci),VF1漏極(ji)(ji)-源極(ji)(ji)間電(dian)(dian)(dian)壓UDS的(de)波形(xing)偏離正常波形(xing),功耗也稍增(zeng)(zeng)大。為(wei)降低最小(xiao)輸(shu)出(chu)電(dian)(dian)(dian)流(liu),延(yan)(yan)時(shi)(shi)(shi)(shi)時(shi)(shi)(shi)(shi)間要非常短,這樣(yang),就(jiu)不(bu)能充分有(you)效利用電(dian)(dian)(dian)容Cr。這里,作為(wei)大致目標,最小(xiao)輸(shu)出(chu)電(dian)(dian)(dian)流(liu)設(she)(she)定(ding)為(wei)最大輸(shu)出(chu)電(dian)(dian)(dian)流(liu)的(de)2%~3%。

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