X44
X49==0.5581/0.4741=1.1772 C5
火电火电火电F2-F4F1455.3663465.3663474.6625d6482.8215491.1772
图3.12 d6短路点等值网络图(c)
因为d6、d7、d8、d9各点的短路电流都相同,所以只化简一点。 3. 3.4 各短路点短路电流计算 1) d1短路点
Scε
(1)计算电抗:Xjs=X*ε× ,将图3.4的等值阻抗化为计算阻
Sj抗
470.59
Xjs27=0.0526× =0.2475
100705.88
Xjs28=0.0521× =0.3678
100823.53
Xjs29=0.0444× =0.3656
1001647.06
Xjs34=0.021× =0.3459
100
查曲线得出各电源供给的短路电流标么值:
2×200MW火电厂:I*”=4.4 I*0.1=3.6 I*4=2.4 2×300MW火电厂:I*”=2.8 I*0.1=2.5 I*4=2.5 2×350MW火电厂:I*”=2.8 I*0.1=2.5 I*4=2.5 发 电 机F1~F4:I*”=3.1 I*0.1=2.7 I*4=2.5
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Sn
(2)各电源点供给的基准电流:Ij= √3USn470.59
2×200MW火电厂:Ij= ==1.12 √3U √3*242Sn705.88
2×300MW火电厂:Ij= = =1.68 √3U √3*242Sn823.53
2×350MW火电厂:Ij= = =1.96 √3U √3*242Sn1647.06
发 电 机F1~F4:Ij= = =3.93
√3U √3*242
(3) 各电源点供给的短路电流周期分量有效值:I”= I*”× Ij 2×200MW火电厂:I”=4.928 I”0.1=4.032 I”4=2.688 2×300MW火电厂:I”=4.704 I”0.1=4.2 I”4=4.2 2×350MW火电厂:I”=5.488 I”0.1=4.9 I”4=4.9 发 电 机F1~F4:I*”=12.183 I*0.1=10.611 I*4=9.825 总的短路电流:
I”总=4.928+4.704+5.488+12.183=27.303 I”总0.1=4.032+4.2+4.9+10.611=23.743 I”总4=2.688+4.2+4.9+9.825=21.613 (3) 短路容量和短路电流最大值:
短路容量:S”d=√3U I”总
S”d=√3U I”总=√3×242×27.303=11443.89 S”d0.1=√3U I”总0.1=√3×242×23.743=9951.74 S”d4=√3U I”总4=√3×242×21.613=9058.96 冲击电流:
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Ich=2.62 I”总=2.62×27.303=71.53KA 全电流:
Ich=1.56I”总=1.56×27.303=42.59KA
2)d2短路点:
Scε
(1)计算电抗:Xjs=X*ε× ,将图3.9的等值阻抗化为计算
Sj阻抗
470.59
Xjs38=0.22× =1.0353
100705.88
Xjs39=0.22× =1.5529
100823.53
Xjs40=0.1913× =1.5754
1001235.29
Xjs41=0.1158× =1.4305 100411.76
Xjs8=0.0483× =0.1989
100
查曲线得出各电源供给的短路电流标么值:
2×200MW火电厂:I*”=1.05 I*0.1=1.0 I*4=1.15 2×300MW火电厂:I*”=0.7 I*0.1=0.65 I*4=0.68 2×350MW火电厂:I*”=0.7 I*0.1=0.65 I*4=0.67 发 电 机F2~F4:I*”=0.75 I*0.1=0.7 I*4=0.75 发 电 机F1:I*”=5.4 I*0.1=5.3 I*4=2.45 Sn
(2)各电源点供给的基准电流:Ij= √3U
33
Sn470.59
2×200MW火电厂:Ij= ==15.06
√3U √3*18Sn705.88
2×300MW火电厂:Ij= = =20.33
√3U √3*20Sn823.53
2×350MW火电厂:Ij= = =23.72
√3U √3*20Sn1235.29
发 电 机F2~F4:Ij= = =35.7 √3U √3*20Sn411.76
发 电 机 F1 :Ij= = =11.86 √3U √3*20
(3) 各电源点供给的短路电流周期分量有效值:I”= I*”× Ij 2×200MW火电厂:I”=15.81 I”0.1=15.06 I”4=17.32 2×300MW火电厂:I”=14.23 I”0.1=13.21 I”4=13.62 2×350MW火电厂:I”=16.6 I”0.1=15.42 I”4=15.89 发 电 机F2~F4:I*”=26.775 I*0.1=24.99 I*4=26.775 发 电 机F1:I*”=64.03 I*0.1=62.85 I*4=29.05 总的短路电流:
I”总=15.81+14.23+16.6+26.775+64.03=137.45 I”总0.1=15.06+13.21+15.42+24.99+62.85=131.53 I”总4=17.32+13.62+15.89+26.775+29.05=102.66 (4)短路容量和短路电流最大值:
短路容量:S”d=√3U I”总
S”d=√3U I”总=√3×20×137.45=4761.268MVA S”d0.1=√3U I”总0.1=√3×20×131.53=4556.2MVA S”d4=√3U I”总4=√3×20×102.66=3556.14MVA
34
冲击电流:
Ich=2.62 I”总=2.62×137.45=360.12KA 全电流:
Ich=1.56I”总=1.56×137.45=214.42KA
3)d6短路点:
Scε
(1)计算电抗:Xjs=X*ε× ,将图3.9的等值阻抗化为计算
Sj阻抗
470.59
Xjs45=5.3663× =25.25
100705.88
Xjs46=5.3663× =37.88
100823.53
Xjs47=4.6625× =38.4
1001235.29
Xjs48=2.8215× =34.85 100411.76
Xjs49=1.1772× =4.85
100
1
由于计算电抗大于3,所以采用I”= X*ε1
X*ε==0.5583 11111 + + + + X45X46X47X48X4911
I”*= I*0.1= I*4= I*∞= = =1.79 X*ε0.5583(2)基准电流:Ij=
Sn
√3U
35