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  • 博士生导师
  • 硕士生导师
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  • 入职时间:1984-11-01
  • 学历:博士研究生毕业
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  • 学位:博士
  • 在职信息:在职
  • 毕业院校:西安交通大学
  • 所属院系:能源与动力工程学院
  • 学科:动力工程及工程热物理
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马原的论文被低温物理接收
  • 发布时间:2020-04-19
  • 文章标题:马原的论文被低温物理接收
  • 内容:

     Journal of Low Temperature Physics

    2020

    Investigation on Wicking Performance of Cryogenic Propellants Within Woven Screens Under Different Thermal and Gravity Conditions

    Y. Ma, Y.Z. Li, F.S. Xie, J. Li, L. Wang
    Xi’an Jiaotong University, Institute of Refrigeration and Cryogenic Engineering, Xi’an, 710049, China

    摘要:

    In order to investigate the wicking performance of cryogenic propellants within metallic screens for space liquid acquisition devices, a modified one-dimensional macroscopic model is introduced. The model is successfully verified by the experimental data of both isothermal and superheated wicking. Dutch twill weave 200 × 1400 in the warp direction is chosen as the screen object. Three cryogenic propellants such as hydrogen, oxygen and methane are selected as the working fluids. The wicking performances at different thermal conditions (isothermal and superheated) and gravity levels (Earth, Mars, Moon and space) are investigated. Results show that the wicking velocity and maximal wicking height both have a negative correlation with the gravity and superheated degree. The wicking performance deviation between different fluids or different superheated conditions increases as the gravity decreases. LH2 always has the fastest initial wicking velocity, but its wicking performance rapidly deteriorates to the worst at superheated conditions due to its strongest ability of heat transfer. The wicking performance of LO2 is the worst at isothermal condition, but becomes better than that of LH2 at superheated condition. Wicking of LCH4 always has the largest maximum wicking height and performs the best among the three propellants under the same condition.