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简答题
某10kV变电站两台并列运行,变压器I容量为500kVA,电压比10000/400V,阻抗电压百分比为3.5%;变压器Ⅱ容量为800kVA,电压比为10000/390V,阻抗电压百分比为4%。并联运行时,求变压器循环电流值为多大?
答案解析
正确答案:变压器I的电流I1=S1/(√3×UI2)=500×103/(√3×400)=721.7(A)变压器Ⅱ的电流I2=S2/(√3×UⅡ2)=800×103/(√3×390)=1184.3(A)则变压器I、变压器Ⅱ的阻抗值为:ZK1=(UK1%×UI2)/I1=3.5%×400/721.7=0.01939(Ω)ZK2=(UK2%×UⅡ2)/I2=4%×390/1184.3=0.01317(Ω)变压器循环电流IX=(UI2-UⅡ2)/(ZK1+ZK2)=(400-390)/(0.01939+0.01317)=307.125(A)
