例1:如图所示系统,电抗为归算到统一基准值下的标么值(SB=100MVA,UB=平均额定电
压),用正序等效定则计算以下各种情况短路时,短路点的各序电流有名值,(1)A相接地短路;(2)BC相接地短路。
10.5KV 110KV X L (1) = 0.1 K XG=XG=0.1 (1)(2)X L (0) = 0.3 X T (1)=Xn=0.1 j0.1j0.1jXT(1)j0.1jXL(1)Uf1 XG(0)=0.2 解:正序网络:
EG*=1.0jXG(1)
∴E1??1.0,X1??0.3(1分) 负序网络:
j0.1jXG(2)j0.1jXT(2)j0.1jXL(2)Uf2
∴X2??0.3(1分) 零序网络:
j0.2jXG(0)3×j0.1j3XT(0)j0.1jXT(0)j0.3jXL(0)Uf0
∴X0??0.9(1分)
(1)当发生A相接地短路时,三序网串联:
j0.3E1Σ=1.0jX1Σ?f2j0.3jX2Σ?f0j0.9jX0Σ?f1 If1*?If2*?If0*?X1?E1?1.0??0.67(3分)
?X2??X0?0.3?0.3?0.9SB3Uav?0.67?1003?115?0.31kA(1分)
∴If1?If2?If0?If1*?IB?0.67?(2)当发生BC相接地短路时,三序网并联:
?f1j0.3jX1ΣE1Σ=1.0jX2Σ?f2j0.3?f0jX0Σj0.9
例2:已知某系统接线如图所示,各元件电抗均已知,当k点发生AB两相短路时,求短路点各序电流及各相电流,并绘出短路点的电流相量图。
G1T1~ 10.5kV 50MW cos?=0.85 Xd 〞 =0.125 X2=0.16 E1 〞 =j1 115kV l k T2 G2~ 10.5kV 31.5MVA 25MW cos?=0.85 10.5/121kV Xd 〞 =0.125 Uk%=10.5 X2=0.16 E2 〞 =j1 60MVA 10.5/121kV Uk%=10.5 x1=x2=0.4Ω/km x0=2x1 l=50km ··
解:(1)计算各元件电抗(取SB?100MVA,UB?Uav)此时有 发电机G1:
''Xd%SB100X1??0.125??0.25100SN50X2?X2%SB100?0.16??0.32100SN50
发电机G1:
''Xd%SB100X1??0.125??0.5100SN25X2?X2%SB100?0.16??0.64100SN25
变压器T1:
X1?X2?X0?变压器T2:
Uk%SB10.5100??0.175
100SN10060X1?X2?X0?线路:
Uk%SB10.5100??0.333
100SN10031.5X1?X2?xllSB100?0.4?50??0.152 UB1152X0?2X1?2?0.15?0.3例3:如图所示系统,电抗为归算到统一基准值下的标幺值(SB=100MVA,UB=平均额定电
压),变压器接线形式为Y0/Δ-11,如果短路点发生两相接地短路,计算: (1) 发电机G各相的短路电流(标幺值);(2)变压器中性点上的电压(有名值)。
10.5KV 115KV X1=X2= 0.1 X0 = 0.2 K X1=X2=0.1 X0=0.2 Xn X1=Xn=0.1
解: (1)
复合序网为正、负、零序网并联
Z?1?j0.1?j0.1?j0.1?j0.3Z?0?j0.1?j3?0.1?j0.2?j0.6
短路点处各序电流为
;
Z?2?j0.1?j0.1?j0.1?j0.3;
?If1??U1.0f|0|???j2.0
z2z0j0.3?j0.6??j0.3?z1?j0.3?j0.6?z?z02??z0j0.6???If2??If1?j2.0??j1.333
z2?z0j0.3?j0.6???If0???If1j0.3?2?j2.0??j0.667
z2?z0j0.3?j0.6??z经过变压器后的各序电流
?IG1??If1ej30?2.0??60?; ?IG2??If2e-j30?1.333?60?
发电机各相短路电流为
?IA??IG1??IG2?1.667
?IB?a2?IG1?a?IG2?2.0?180??1.333?180??-3.333 ?IC?a?IG1?a2?IG2?2.0?60??1.333??60??1.667
(2)变压器中性点上的电压
U0?3If0xn?3?0.667?0.1?0.2
中性点电压有名值
U0?0.2?115/3?13.279(kV)
例3:如图所示电力系统,各元件参数标幺值已标于图中(SB=100MVA, UB=平均额定电压),
系统处于空载运行状态,发电机的电势为1.05,如果在母线3处发生A相接地短路,计算计算:(1)输电线路上流过的各序电流有名值?(2)发电机送出的各相短路电流有名值? (3)各变压器中性点电压有名值?
10.5kV T 115f(1) k V G 1 2 L 3 xd” =0.1 x L1 =x L2 = 0 .2 . x 2=0.1 x T1 =0.1 x n= 0 1 x L0 = 0 . 6 xT2 = 0 . 2 x 0=0.05 0/Δ – 11 Y Y 0/ Δ –11
解:(1) 画出复合序网(略)
'' Z?1?Z?2?xd?xT1?xL?j0.1?j0.1?j0.2?j0.4
Z?0?(xT1?3xn?xL0)//xT2?(j0.1?j0.3?j0.6)//j0.2?j0.167
If1?If2?If0?Uf01.05???j1.086
Z?1?Z?2?Z?0j0.4?j0.4?j0.167输电线各序电流:I'f1?I'f2??j1.086
I'f0??j1.086xT2j0.2??j1.086??j0.181
xT1?3xn?xL0?xT2j0.1?j0.3?j0.6?j0.2j30'f1(2)发电机的各序电流标幺值IG1?eI?1.086??60;IG2?e?j30I'f2?1.086??120
发电机各相电流IA?IG1?IG2?1.086??60?1.086??120?1.881?-90 IB?a2IG1?aIG2?1.086?180?1.086?0?0
IC?aIG1?a2IG2?1.086?120?1.086?180?1.881?150
发电机三相电流有名值分别为
IA?IC?1.881?SB3UB?1.881?1003?10.5?10.343(kA); IB?0
中性点电压UT1n?3IL0XnUB/3?3?1.181?0.1?115/3?23.52kV;UT2n?0
例4:试分析比较几种不对称短路时,(1)故障点负序电流分量的大小(2)零序
电流分量的大小。(假定Z∑1 =Z∑2)
解:(1)单相接地短路时,三序网串联:
ZΣ1éΣ1?f2ZΣ2?f1?f0ZΣ0 ??I??I??If1*f2*f0*??EE?1?1?(1分)
Z?1?Z?2?Z?02Z?1?Z?0(2)两相接地短路时,三序网并联:
?f1ZΣ1?f2ZΣ2?f0ZΣ0
?If1*?E?1??Z?1?Z?2//Z?0??E(Z?1?Z?0)E?1?1 ?2Z?2?Z?0Z?1?2Z?1Z?0Z?1?Z?2?Z?0???I??If2*f1*??Z?0(Z?1?Z?0)EZ?0Z?0E?1?1??2???2(1分)
Z?2?Z?0Z?1?2Z?1Z?0Z?1?Z?0Z?1?2Z?1Z?0