发布时间 : 星期日 文章华北电力大学电力系统分析14年真题及答案更新完毕开始阅读3c6c71fff11dc281e53a580216fc700aba685232
j0.125j0.105j0.0452)I(dkj0.105j0.125j0.105U(2)
负序网:
X(2)?[1/2?(XG(2)?XT1(2))?XL(2)]//XT3(2)?[1/2?(0.125?0.105)?0.045]//0.105?0.063j0.105j0.1351,1)I(dk
j0.105U(0)
零序网:X(0)?(XT1(0)?XL(0))//XT3(0)?(j0.105?j0.135)//j0.105?0.073
Ifa(1)?Uf0jX(1)?jX(2)?X(0)X(2)?X(0)X(0)X(2)?X(0)X(2)X(2)?X(0)1aa2?1??j10.31
0.063?0.073j0.063?j0.063?0.0730.063?j4.770.073?0.0630.073?j5.540.073?0.063Ifa(2)??Ifa(1)Ifa(0)??Ifa(1)?Ifa??1?I???a2?fb????Ifc????a??j10.31???j10.31?
1??Ifa(1)???21??Ifa(2)??Ifb?a?Ifa(1)?a?Ifa(2)?Ifa(0)???1????Ifa(0)??
1313Ifb?(??j)?(?j10.31)?(??j)?(j4.77)?j5.54??13.06?j8.312222?Ifb?Ifc?15.48
(2) 变压器T2中性点三相对称,因此正序、负序电压为0,只有零序电压;因此在
零序网中求得:
UT2(0)?Ifa(0)?5.54?XT3(0)XT3(0)?XT1(0)?XL:(0)?XT1(0)?U'B
0.105115?0.105??11.75(kV)0.105?0.135?0.0153(3) 由于中性线上只流过零序电流,因此在零序网中求得:
IT3?3?Ifa(0)??5.54?
XT3(0)XT3(0)?XT1(0)?XL:(0)?IB
0.10515??0.13(kA)0.105?0.135?0.0151153