河海大学2001年级电气工程及自动化专业(函授)毕业设计 muyu0991
X33?0.32?0.0437?(10.32?10.0437?13.14?10.82?10.8)
=0.4
X35?3.14?0.0437?(10.32?10.0437?1113.14?0.82?0.8)
=3.95
X36?0.82?0.0437?(11110.32?0.0437?3.14?0.82?10.8)
=1.03
X37?0.8?0.0437?(111110.32?0.0437?3.14?0.82?0.8)
=1
4、当d3点短路时,化简等值电抗
再化简:
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河海大学2001年级电气工程及自动化专业(函授)毕业设计 muyu0991
X39?0.32?0.075?(111110.32?0.075?3.14?0.82?0.8)
=0.46
X40?3.14?0.075?(111110.32?0.075?3.14?0.82?0.8)
=4.53
X41?0.82?0.075?(11110.32?0.075?3.14?0.82?10.8)
=1.18
X42?0.8?0.075?(10.32?10.075?13.14?10.82?10.8)
=1.15
六、计算短路点的短路电流 1、当d-1点短路时: ①盐城电厂:
XN6js?X29?SS?0.32?117.B100?0.376 查曲线得:I(0)*=2.83
I(4)*=2.22
I(0)=2.83×[117.6/(115√3)]=1.67 KA I(4)=2.22×[117.6/(115√3)]=1.31 KA ②新海电厂:
XNjs?X30?SS?3.14?117.6100?3.69 B则: I(0)*=0.27 I(4)*=0.27
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河海大学2001年级电气工程及自动化专业(函授)毕业设计 muyu0991
I(0)=0.27×[117.6/(115√3)]=0.16 KA
I(4)=0.27×[117.6/(115√3)]=0.16 KA
③淮阴电厂:
XN250js?X32?SS?0.8?B100?2 查曲线得:I(0)*=0.5 I(4)*=0.5
I(0)=0.5×[250/(115√3)]=0.63 KA
I(4)=0.5×[250/(115√3)]=0.63 KA ④系统:
I*=1/X31=1/0.82=1.22
I(0)= I(4)= 1.22×[100/(115√3)]=0.61
总的短路电流ΣI(0)=1.67+0.16+0.63+0.61=3.07 KA
ΣI(4)=1.31+0.16+0.63+0.61=2.71 KA
ich=2.55Σ
I(0)=2.55×3.07=7.83 KA
2、当d-2点短路时: ①盐城电厂:
X?X33?SNS?0.4?117.6js100?0.47
B查曲线得:I(0)*=2.33 I(4)*=2.05
I(0)=2.33×[117.6/(37√3)]=4.26 KA I(4)=2.05×[117.6/(37√3)]=3.76 KA ②新海电厂:
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河海大学2001年级电气工程及自动化专业(函授)毕业设计 muyu0991
X?X35?SNjsS?3.95?117.6B100?4.65 则: I(0)*=0.22 I(4)*=0.22
I(0)=0.22×[117.6/(37√3)]=0.4 KA
I(4)=0.22×[117.6/(37√3)]=0.4 KA
③淮阴电厂:
X?X36?SNjsS?1.03?250B100?2.58 查曲线得:I(0)*=0.4
I(4)*=0.4
I(0)=0.4×[250/(37√3)]=1.56 KA
I(4)=0.4×[250/(37√3)]=1.56 KA ④系统:
I*=1/X37=1/1=1
I(0)= I(4)= 1×[100/(37√3)]=1.56
总的短路电流ΣI(0)=4.26+0.4+1.56+1.56=7.78 KA
ΣI(4)=3.76+0.4+1.56+1.56=7.28 KA
ich=2.55Σ
I(0)=2.55×7.78=19.84 KA
3、当d-3点短路时: ①盐城电厂:
XS117.6js?X39?NS?0.46?100?0.54
B查曲线得:I(0)*=1.9
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河海大学2001年级电气工程及自动化专业(函授)毕业设计 muyu0991
I(4)*=1.95
I(0)=1.9×[117.6/(10.5√3)]=12.29 KA I(4)=1.95×[117.6/(10.5√3)]=11.97 KA
②新海电厂:
XN.6js?X40?SS?4.53?117B100?5.33 则: I(0)*=0.19 I(4)*=0.19
I(0)=0.19×[117.6/(10.5√3)]=1.23 KA
I(4)=0.19×[117.6/(10.5√3)]=1.23 KA ③淮阴电厂:
Xjs?X41?SNS?1.18?250100?2.95 B查曲线得:I(0)*=0.34 I(4)*=0.32
I(0)=0.34×[250/(10.5√3)]=4.67 KA
I(4)=0.32×[250/(10.5√3)]=4.4 KA ④系统:
I*=1/X42=1/1.13=0.88
I(0)= I(4)= 0.88×[100/(10.5√3)]=4.84
总的短路电流ΣI(0)=12.19+1.23+4.67+4.84=22.93 KA
ΣI(4)=11.97+1.23+4.4+4.84=22.44 KA
ich=2.55Σ
I(0)=2.55×22.93=58.47KA
第八章 变电所电气设备选择 第 页 共 49 页
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