u2cmax (u . u′ 2 max ) ×K2 X 2c max K 105 . 11 10725
= 10 5 . . × )( .) = 257 var (. 9936 × .M 120 107 25 . 11 验算:(1)最小负荷时: 11
u2min=108.17×= . 1109 107 25
偏移量:1109 11
. 11 × 100 =. 0 86%
(2)最大负荷时:
u2max=[118 . 10 × 20 + (15 . 2 57 ) × 120 ]× . 11
118 107 25 .11
=101.97×= . 10 46 107 25 10 46 . 10 5
偏移量:. 105 .
. × 100 =. . 0 4%
40.解:设SB=100MVA,UB=Uav 100 x′′ d* = x2* = 012 . ×= 024 50 = uk% ,
SB = 10 5 . × 100 = 021 xT* .
100 SN 100 50
x ∑ ()1 = xd* + xT = . ′′ 045
x ∑ ()2 = x () = 045 ∑ 1.
x ∑ () = . + 3 × 01 = . 021 . 051
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0 11 1 If() =
x ∑ ()1 + x ∑ ( ) 2 + x ∑ ( ) 0 = + 0 45 + . 045 . 051 =0.71
If=3If(1)=2.13 SB 100 If 有名值=If. 3U B = 213 × 3 × 115 = 1068 KA 考试大-自考
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