请问这道题怎么做呀?
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既然无源网络 N 是由电阻(R')与电容(C)串联组成的,那么,整个电路就是由这 4 个负载串联而成的:
R、R'、L 和 C
它们的总组抗 z :
z = (R + R') + zL + zC
= (R + R') + (jωL) + 1/(jωC)
= (3 + R')Ω + j[ωL - 1/(ωC)]
= (3 + R')Ω + j[2000rad/s * 2H - 1/(2000rad/s * C)]
因为 z = u/i = 30cos(ωt)/[5cos(ωt)] = 6Ω
说明整个电路为阻性负载,感性负载与容性负载刚好抵消。那么:
z = R + R' = 3Ω + R' = 6Ω
ωL - 1/(ωC) = 0
所以:
R' = 3Ω
C = 1/(ω²L) = 1/(2000² * 2) F = 1/(8000000) F = 0.125 μF
R、R'、L 和 C
它们的总组抗 z :
z = (R + R') + zL + zC
= (R + R') + (jωL) + 1/(jωC)
= (3 + R')Ω + j[ωL - 1/(ωC)]
= (3 + R')Ω + j[2000rad/s * 2H - 1/(2000rad/s * C)]
因为 z = u/i = 30cos(ωt)/[5cos(ωt)] = 6Ω
说明整个电路为阻性负载,感性负载与容性负载刚好抵消。那么:
z = R + R' = 3Ω + R' = 6Ω
ωL - 1/(ωC) = 0
所以:
R' = 3Ω
C = 1/(ω²L) = 1/(2000² * 2) F = 1/(8000000) F = 0.125 μF
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