R = 1KΩ;设i1 = 0
则 i2 = 9/(R+RL) = 4.5mA;Uo = i2 * RL =4.5V > (3 - 0.7),则二极管不导通;
∴i1 = 0;io = i2;
R = 5KΩ;设i1 = 0
i2 = 9/(R+RL);Uo = i2 * RL =1.5V < (3 - 0.7)),则二极管导通;
∴i1 ≠ 0; Uo =3 - 0.7 = 2.3V(被钳位)
io = Uo / RL = 2.3mA;
i2 = (9 - 2.3) / R = 1.34mA;
i1 = io - i2 = 0.96mA;您好, 您解答的很好,请问您的思路是怎样的,求指教,不胜感激。记住二极管的特性;1)导通与截止;2)单向电流,稳定的导通压降;截止时就相当于开路,则3V电源没有贡献;导通时则3V电源对电路有贡献,因导通压降是固定的,则3V电源与二极管串联输出,就可视为一个新的电压源,其电压为2.3V,同时其电流是流出的。谢谢您。