电力系统短路电流计算(19)
时间:2025-04-08
电力系统短路电流计算。
= 2(4.738 0.451×0.6)e 10/16.957
= 3.503 kA ipG=
2IacG+idcG
=2×2.727+3.503
= 7.36 kA
3 t = 80 ms时的短路电流计算
G1、G2:
′′ IKde′) e t/Te′′+(IKd′ IKd) e t/Te′+IKd IacG=(IKde
=(7.445 4.618) e 80/3.062+(4.618 2.4) e 80/81.49+2.4
= 3.231 kA
′′ Ir sin r) e t/Tdce idcG=2(IKde
=2(7.445 0.79×0.6)e 80/18.191 = 0.1213 kA
iKG=2IacG+idcG
= 2×3.231+0.1213 = 4.691 kA
G3:
′′ IKde′) e t/Te′′+(IKd′ IKd) e t/Te′+IKd IacG=(IKde
=(4.738 2.936) e 80/3.068+(2.936 1.4) e 80/50.03+1.4
= 1.711 kA
′′ Ir sin r) e t/Tdce idcG=2(IKde
=2(4.738 0.451×0.6)e 80/16.957
= 0.0564 kA
iKG=2IacG+idcG
=2×1.7106+0.0564 = 2.467 kA
A.4 主汇流排处短路电动机馈送的短路电流计算
A.4.1 阻抗计算
A.4.1.1 大电动机M1阻抗
1 X″M、RS和RR的计算
2
UrM ηM cos M XM′′=x′′M
PrM
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