Pg电子游戏:多功能开关电源原理图
多功能表开关电源原理图原理图如下电源设计要求输入电压: 4 2 V A C~4 5 6 V A C 5 0 H Z输出电压: 12 V D C×2 A 5 V D C×2 A ( M A IN ) 5 V D C×1A ( S U B )输出纹波 < = 5 0 M v脉冲电压隔离6 0 0 0 V变压器设计流程V D C m in = V A C m in * 1.2 = 4 9 .2 VV D C m a x = V A C m a x * 1.4 = 6 3 8 .4 V输出功率(输出二极管为 U F 5 4 0 4和U F 5 4 0 1 , 它们的导通压降分别为 1.3 V和1V 。 )(12+1.3) ×2 A = 2 6 .6 W(5+1) ×2 A = 12 W(5+1) ×1A = 6 W- - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -2 6 .6 + 12 + 6 = 4 4 .6 W输入功率P o / n = 4 4 .6 / 0 .8 = 5 5 .7 5 W 考虑输入整流损耗5 5 .7 5 W×1.2 = 6 7 W输入平均电流 Ia v = 6 7 W / V D C m in = 6 7 / 4 9 .2 = 1.3 6 2 A假设D m a x = 0 .4 5初级峰值电流Ip = 2×Ia v / D m a x = 2 ×1.3 6 2 / 0 .4 5 = 6 .0 5 3 AA B C A m b e r T e x t C o n v e r te r T r ia l v e r sio ...
多功能表开关电源原理图原理图如下电源设计要求输入电压: 4 2 V A C~4 5 6 V A C 5 0 H Z输出电压: 12 V D C×2 A 5 V D C×2 A ( M A IN ) 5 V D C×1A ( S U B )输出纹波 < = 5 0 M v脉冲电压隔离6 0 0 0 V变压器设计流程V D C m in = V A C m in * 1.2 = 4 9 .2 VV D C m a x = V A C m a x * 1.4 = 6 3 8 .4 V输出功率(输出二极管为 U F 5 4 0 4和U F 5 4 0 1 , 它们的导通压降分别为 1.3 V和1V 。 )(12+1.3) ×2 A = 2 6 .6 W(5+1) ×2 A = 12 W(5+1) ×1A = 6 W- - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -2 6 .6 + 12 + 6 = 4 4 .6 W输入功率P o / n = 4 4 .6 / 0 .8 = 5 5 .7 5 W 考虑输入整流损耗5 5 .7 5 W×1.2 = 6 7 W输入平均电流 Ia v = 6 7 W / V D C m in = 6 7 / 4 9 .2 = 1.3 6 2 A假设D m a x = 0 .4 5初级峰值电流Ip = 2×Ia v / D m a x = 2 ×1.3 6 2 / 0 .4 5 = 6 .0 5 3 AA B C A m b e r T e x t C o n v e r te r T r ia l v e r sio n , h ttp :/ / w w w .th e b e a tle sf o r e v e r .c o m / p r o c e sste x t/ a b c tx t.h tm l
