发布时间 : 星期二 文章冶金传输原理 吴铿编(动量传输部分)习题参考答案更新完毕开始阅读
?max?5?x?0.128m ???CfL?1.328?0.068 ReL2???Ff?2CfL2bl?1.70N
第七章习题参考答案(仅限参考)
1.解:由于
p?0.5?0.528,所以应为超声速流动,但收缩喷管出口喷速最大只能达到p0声速,即Ma=1。直接根据书中公式(7-39),
Gmaxp0?d2?0.0404?0.0404?0.242kg/s
T0T04p0A*(本题根据查附录得到数据也能计算)
2.解:a?kRT?340m/s
sin??a500??0.45 v1118v?756m/s
vMa??2.22
a
3.解:T?T298?0.0065z?233K
a?kRT?306m/s,v?250m/s
Ma?v?0.82 a
4.解:a?kRT1?374m/s
Ma?v1?0.374 a查附录得,
T0?T1?0.976 T0T1?357K 0.976
5.解:由Ma?0.8,查附录5可知:
peT?0.656,e?0.887 p0T0pe?0.656p0?3.22?105Pa
a0?kRT0?343m/s Te?0.887T0?260K
ae?kRTe?323m/s
ve?aeMae?258m/s
6.解:
pe?0.866?0.528,故为亚声速流动,所以: p01.4?1??1.41?0.866?158m/s ??????2?1.41.17?105?e??1.4?11.32pe?0.433?0.528 p0(也可根据查附录得到数据计算)
若为收缩喷管,取Ma=1 直接根据书中公式(7-36)
?e?2kp0?321.6m/s
k?1?0Te?0.791 T0若为拉瓦尔喷管,查表得Ma=1.15,
p0?244K ?0RTe?0.791T0?0.791ve?aeMa?MakRTe?360m/s 7.解:
pe?0.0909?0.528,超声速流,且为拉瓦尔喷管,查附录5可知: p0Mae?2.20,
?eTA?0.184,e?0.508,?2.00
T0?0A*Te?0.508T0?159K
?e?0.184?0?2.43kg/m3
ae?kRTe?240.6m/s
ve?aeMae?529.3m/s
Ae?A*??4de2?de2?G?e?e?2.13?10?3m2
?4Ae?1.07?10?3m2 2.00de?52mm,d*?37mm
8.解:由Mae?2,查附录5可知:
peTA?0.128,e?0.556,?1.69
T0p0A*p0?7.93?105Pa Te?0.556T0?167K
ae?kRTe?246.3m/s ve?aeMae?492.6m/s
Ae?UV?0.020m2,A*?Ae?0.118m2 1.69?e 9.解:
pB?0.103?0.528,查附录5可知: p0Ma?2.15,
?eT?0.195,e?0.520
T0?0Te?0.520T0?156K
ve?aeMa?MakRTe?512m/s
?e?0.195?0?0.195Ae?p0?2.45kg/m3 RT0?4De2?0.00196m2
G??e?eAe?2.46kg/s