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液体火箭贮箱增压排液过程温度场数值研究

王磊 厉彦忠 李翠 程向华

王磊, 厉彦忠, 李翠, 程向华. 液体火箭贮箱增压排液过程温度场数值研究[J]. 航空动力学报, 2011, 26(8): 1893-1899.
引用本文: 王磊, 厉彦忠, 李翠, 程向华. 液体火箭贮箱增压排液过程温度场数值研究[J]. 航空动力学报, 2011, 26(8): 1893-1899.
WANG Lei, LI Yan-zhong, LI Cui, CHENG Xiang-hua. Numerical study on temperature distribution of tank pressurization process of liquid rocket during outflow[J]. Journal of Aerospace Power, 2011, 26(8): 1893-1899.
Citation: WANG Lei, LI Yan-zhong, LI Cui, CHENG Xiang-hua. Numerical study on temperature distribution of tank pressurization process of liquid rocket during outflow[J]. Journal of Aerospace Power, 2011, 26(8): 1893-1899.

液体火箭贮箱增压排液过程温度场数值研究

基金项目: 教育部高等学校博士学科点专项科研基金(20100201110012)

Numerical study on temperature distribution of tank pressurization process of liquid rocket during outflow

  • 摘要: 针对某液体火箭贮箱增压排液过程,采用二维数值模拟方法对其温度场进行计算.选用低雷诺数k-ε模型分析流体与固壁间的耦合换热,考虑到气液之间发生热质转移现象,编写了控制相变的用户自定义程序(UDF)并植入Fluent软件.采用文献实验数据对相同工况下的计算结果进行验证,对比结果表明所建立的二维模型能够有效预测气枕温度、壁面温度沿轴向分布规律.数值模拟结果发现:气体扩散器入口方向、入口面积对气枕温度、壁面温度的轴向分布影响较弱,而对靠近增压口附近的温度场影响明显.当增压气体竖直向下进入气枕时,贮箱上封头附近气枕温度较低,有利于保障安全阀的可靠运行.当增压气体水平进入气枕时,扩散器直径变大,贮箱顶端高温区范围相应扩大.

     

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出版历程
  • 收稿日期:  2010-08-20
  • 修回日期:  2010-11-26
  • 刊出日期:  2011-08-28

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