② 无限大容量电源:
查电力工程电气设计手册电气一次部分P141表4-15不同短路点的冲击系数,当短路发生在高压母线上,取Ksh=1.85
由此可知ishC2=
2×1.85×4.736=12.391(kA)
②火电厂:取Ksh=1.90 由此可知ishG2=
2×1.90×Iz·0=
2×1.90×2.336=6.112(kA)
所以短路冲击电流ish2= ishC2+ ishG2=12.391+6.112=18.167(kA)
短路全电流最大有效值: Ish=I〞·
1?2(Ksh?1)2
2IshC2= I2〞·IshG2= Iz·0·
1?2(1.85?1)=4.736×=2.336×
1?2?0.851?2?0.902=7.405 (kA) =3.527 (kA)
1?2(1.90?1)22Ish2= IshC2+ IshG2=7.405 + 3.527=10.932(kA)
四、发电机-双绕组变压器发电机出口短路时(即d3点)的短路计算: 对电抗图进行化简并计算:
X28=X1+X15=0.12+(-0.004)=0.116 X29=X16+X28+
X16X1428XX=0.063+0.116+
0.063?0.1160.1120.063?0.1160.112=0.244
X30=X16+X14+
16X2814X=0.063+0.116+=0.236
X31=X29∥X2=
0.244?0.0680.244?0.068XX30=0.053
0.053?0.10.2360.1?0.2360.053X32=X31+X11+
3111XX=0.1+0.053+=0.175
X33=X11+X30+
30X3111XX=0.1+0.236+=0.781
X34=X31+X30+
31X1130X=0.053+0.236+
=0.130
0.053?0.2360.1=0.414
X35= X12∥X33=
0.156?0.7810.156?0.781220KV系统 20.068110KV系统 C1 10.12220KV系统 20.068110KV系统 C1 280.116C2 C2 110.1160.06315?0.004110.1 160.063 d3 120.156140.112d3 120.156 140.112 图11 图12
110KV系统 220KV系统 C1 290.244C2 20.068320.17532 C d3 0.175C 12110.156 d3 340.414330.781300.2360.1d3 120.156 350.130 G
图13 图14 图15
火电厂的总容量:Se?=3×计算电抗:Xj3=X35
Se?j1000.85=352.941(MVA)
352.941100S=0.130×=0.459
查汽轮机运算曲线得(0s、2s、4s时):
I*·0=2.35; I*·2=1.90; I*·4=2.20 Iz·0=2.35×
352.9413?10.5=45.607 (kA)
同理可得Iz·2=36.874 (kA) Iz·4=42.696 (kA) 短路容量:Sd·t=
3Uav3 Iz·t
Sd·0=
3×10.5×45.607=829.433 (MVA)
同理可得:Sd·2670.610 (MVA) Sd·4 =776.492 (MVA)
短路电流为:
I3·0〞= I3〞+ Iz·0=31.421+45.607=77.028 (kA)
同理可得:I3·2〞= 68.295 (kA) I3·4〞= 74.117 (kA) 短路功率: Sd3=
3U av3·I3·0〞=
3×10.5×77.028=1400.872 (MVA)
t(s)时刻短路瞬间短路电流的最大值: Im3·0〞=
2 I3·0〞=
2×77.028=108.934 (kA)
同理可得:Im3·2〞=96.584 (kA) Im3·4〞=104.817 (kA) 短路冲击电流:ish=
2Ksh·I3〞
① 无限大容量电源:查电力工程电气设计手册电气一次部分P141表4-15不同短
路点的冲击系数,当短路发生在高压母线上,取Ksh=1.85 由此可知 ishC3=
2×1.85×31.421=82.207 (kA)
② 火电厂:取Ksh=1.90 由此可知 ishG3=
2×1.90×Iz·0s =
2×1.90×45.607=122.546 (kA)
所以短路冲击电流ish3= ishC3+ ishG3=82.207+122.546=204.753 (kA)
短路全电流最大有效值: Ish=I〞·
1?2(Ksh?1)2
2IshC3= I3〞·IshG3= Iz·0·
1?2(1.85?1)1?2(1.90?1)2=31.421×
1?2?0.852=49.131(kA) =73.821(kA)
=45.607×1?2?0.902Ish3= IshC3+ IshG3=49.131+ 73.821=122.952(kA)
五、发电机-三绕组变压器发电机出口短路时(即d4点)的短路计算: 由电抗图可作化简如图所示
d4 14?0.0080.1280.156 G
C1
73?0.00820.068G
0.156C2
G
90.125100.125 130.256
80.156图16
d4 80.156d4 G1
G1
360.232360.232C1
70.156C1 G2 C2 G3
G2
380.11637?0.017 130.25620.068 90.1251020.068130.256 C2
G3
390.094100.125 0.125
图17 图18
d4 400.068360.232410.055 G d4 400.067360.232 G C1
20.068C1
420.138 C2
G C2
G 130.256 430.518
图19 图20
44 d4 0.087 G 450.060 C
图 21
X6=X5≈0 X36=X1+X4+
X1XXX34=0.12+(-0.008)+
0.00064?0.12?0.12?0.008?0.008=0.232
X37=X4+X3+
3X14XX=-0.016+=-0.015
?0.017?0.1560.125X38=X37+X7+
37X97XX=-0.017+0.154+=0.116
X39=X37+X9+
37X79X=-0.017+0.125+
?0.017?0.1250.156 =0.094
X40=X8∥X38=
0.156?0.1160.156?0.116=0.067
X41=X39∥X10=
X0.097?0.1250.097?0.125X13=0.055
0.055?0.0680.256X42=X41+X2+
412X=0.055+0.068+=0.138
X43=X41+X13+
X41X213X=0.055+0.256+
0.055?0.2560.068=0.518
X44=X36∥X42=
0.232?0.1380.232?0.1380.068?0.5180.068?0.518=0.087
X45=X40∥X43==0.060
计算短路点的短路电流
对于无限大系统提供的短路电流: I4〞=Iz=I?=
1X44Ij4(=I*zIj)=
1X1000.8544Sj3U=
j210.087×1003?10.5=63.204KA
火电厂的总容量:Se?=3×计算电抗:Xj4=X45
Se?j=352.941(MVA)
352.941100S=0.060×=0.212
查汽轮机运算曲线得(0s、2s、4s时):
I*·0=5.15; I*·2=2.58; I*·4=2.44