单选题
一台Y接法三相四极绕线式感应电动机,f
1
=50Hz,P
N
=150kW,U
N
=380V,额定负载时测得P
cu2
=2210W,P
Ω
+P
Cu
=3640W.已知电机参数R
1
=R
2
=0.012Ω,X
1σ
=X
2σ
=0.06Ω,当负载转矩不变,电动机转子回路每相串入电阻R=0.1Ω(已折算到定子边),此时转速为______
【正确答案】
A
【答案解析】[解析] 转子串联R",负载转矩不变,I
2
不变.(R
2
"+R")/S"=R"/S
N
,现在先求出S
N
;P
mes
=3640+P
N
=153640W,根据P
Cu2
=[S
N
/(1-S
N
)]P
mec
,求出S
N
=P
Cu2
/(P
Cu2
+P
mec
)=0.0142,代入上式可以得到S"=0.1323.则转速n=1500-1500×0.1323≈1301r/min.