P10.25?10612.Q=mRrTln=1.5×0.287×328×ln?72.1KJ 6P20.15?10W=mRrTln
P1=Q=72.1KJ P2△U=mCv(T2-T1)=0 △H=mCp(T2-T1)=0
13.(1)P°=P1=1.5×106Pa,V°=V1=0.065m3/kg
P?V?1.5?106?0.065??339.7K 则T°=Rr2871P?K=V°()V2
P2?1.5?10??0.065???0.8?106???61?1.4?0.102m3/kg
P2V20.8?106?0.102??284.3K T2=Rr2872K2?1.4Rr(T??T2)??287?(339.7?284.3)?333.6m/s K?11.4?1(2)VC2=
14.每小时排气的放热量Qp:
Qp=mCp(T0-T1)=3600×1.2×1.021×(-576+283)=-1292341KJ/h 此热量中的有效能Qa:
T0T0TTTQa=m(1?0)?Q?mCp(1?0)dT?mCp[(T0?T1)?T0ln0]
T1T1TTT283=3600×1.2×1.021×[(283-576)-283ln]=-405345.2KJ/h
576此热量中的无效能Qu:
Qu=Qp-Qa=-1292341-(-405345.2)=-886995.8KJ/h
??
15.ΔSg=
10001000 ?500?2731500?273 =0.73kJ/K Ex1=T0·ΔSg
=(273+25)×0.73 =217.5kJ
P10.25?106?72.1KJ 16.Q=mRrTln=1.5×0.287×328×ln6P20.15?10W=mRrTln
P1=Q=72.1KJ P2△U=mCv(T2-T1)=0 △H=mCp(T2-T1)=0 17.解:
6(1)p1?9000?98.66?9098.66kPa p2?98.6?95.?06kP3.a 6(2)取汽轮机汽缸内壁和蒸汽进、出口为系统,则系统为稳定流动系统,能量方程为
1q??h??c2?g?z?wsh
2q?6.3?103/40000?0.1575kJ/kg
进、出口的动能差和位能差忽略不计,则
wsh?q??h??0.1575?(2240?3440)?1200(kJ/kg)
(3)汽轮机功率
40?103?1200?1.33?104(kW) P?qmwsh?3600(4)?wsh? 18. 19. 20.
121?c??(1402?602)?10?3?8kJ/kg 22?k??wsh8 ??0.67%wsh1200