单选题
对于简单林德双压空气液化系统来说,气流的流量比为q
mi
/q
m
=0.8,液化器操作压力为0.101 MPa和20.2 MPa,两台压缩机的进口温度保持在293 K,中压为3.03 MPa,由空气的压焓图查得:h
1
(0.101 MPa,293 K)=295 kJ/kg,h
2
(3.03 MPa,293 K)=286 kJ/kg,h
3
(20.2 MPa,293 K)=259 kJ/kg,h
f
(0.101 MPa,饱和液体)=-126 kJ/kg,则液化率y为
____
。
【正确答案】
B
【答案解析】[解析] y=(h
1
-h
3
)/(h
1
-h
f
)-i[(h
1
-h
2
)/(h
1
-h
f
)]
=(295-259)/(295+126)-0.8×[(295-286)/(295+126)]
=0.068 4