Numerical investigation of the minimum coolant injection rate for transpiration cooling

被引:0
|
作者
Shi, Jun-Xiang [1 ]
Wang, Jian-Hua [1 ]
机构
[1] Department of Thermal Science and Energy Engineering, University of Science and Technology of China, Hefei 230027, China
来源
关键词
Ablation - Coolants - Flow rate - Melting point - Porosity - Propulsion - Temperature - Thermal conductivity - Transpiration;
D O I
暂无
中图分类号
学科分类号
摘要
An advanced design of transpiration cooling system is not only to ensure thermal protection of propulsion system from ablation, but it also should utilize the full temperature potential of porous matrix. A numerical investigation of transient processes of transpiration cooling and the control parameters of the lowest limit of the coolant mass flow rate is conducted with the help of a compressible, unsteady and local non-thermal equilibrium model. The numerical investigation presents that it is important to study transient cooling process, because the porous matrix could be ablated before the cooling process reaches a steady state, though the steady temperature may be lower than the melting point. A higher initial temperature and a larger characteristic size of the porous matrix will result in an increase in the minimum coolant injection rate to prevent ablation of the porous matrix. From the view point of cooling effect, a higher porosity corresponds to a larger coolant mass flow rate. Contrarily, a higher thermal conductivity of the porous matrix corresponds to a lower demand for the minimum coolant flow rate.
引用
收藏
页码:222 / 227
相关论文
共 50 条
  • [21] Transpiration cooling using air as a coolant
    Kikkawa, Shinzo
    Senda, Mamoru
    Sakagushi, Katsuji
    Shibutani, Hideki
    Heat Transfer - Japanese Research, 1992, 21 (04): : 424 - 435
  • [22] An experimental investigation on transpiration cooling of wedge shaped nose cone with liquid coolant
    Wang, Jianhua
    Zhao, Lianjin
    Wang, Xiaochun
    Ma, Jie
    Lin, Jia
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2014, 75 : 442 - 449
  • [23] Numerical investigation on the optimization of local transpiration cooling effectiveness
    Shen, Lin
    Wang, Jianhua
    APPLIED THERMAL ENGINEERING, 2017, 127 : 58 - 69
  • [24] Numerical investigation on directional transpiration cooling performance coupled with regenerative cooling
    Zheng, Jiayue
    Liu, Xue
    Zhou, Weixing
    Bian, Yuyang
    INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2024, 159
  • [25] Numerical investigation on the transient transport and heat transfer characteristics of transpiration cooling with liquid phase change during coolant adjustment
    Liu, Taolue
    Su, Hao
    Chen, Zhengwei
    He, Fei
    Wang, Jianhua
    APPLIED THERMAL ENGINEERING, 2022, 209
  • [26] Numerical & Experimental Investigation on the Cooling Performance Affected by the Flow Rate of Coolant of the Inverter Integrated WFSM
    Yang, Sungjin
    Lee, Myungsung
    Kim, Joo Han
    Jung, Insoung
    Rhyu, Sehyun
    Kim, Daekwang
    2018 21ST INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES AND SYSTEMS (ICEMS), 2018, : 2510 - 2513
  • [27] Experimental investigation on cooling characteristic of transpiration-film combined cooling structure using liquid coolant
    Lv, Yumei
    Liu, Luguang
    Ma, Yulong
    Dou, Yibin
    He, Fei
    Wang, Jianhua
    INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2024, 158
  • [28] Numerical investigation on the performances of porous matrix with transpiration and film cooling
    Ding, Rui
    Wang, Jianhua
    He, Fei
    Dong, Guangqi
    Tang, Longsheng
    APPLIED THERMAL ENGINEERING, 2019, 146 : 422 - 431
  • [29] A Numerical Investigation on the Laminar Boundary Flow Layer with Transpiration Cooling
    Junxiang Shi
    Jianhua Wang
    Transport in Porous Media, 2009, 78 : 37 - 46
  • [30] Experimental and numerical investigation of convection heat transfer in transpiration cooling
    Jiang, PX
    Yu, L
    Sun, JG
    Wang, J
    APPLIED THERMAL ENGINEERING, 2004, 24 (8-9) : 1271 - 1289