A Numerical Model of a Reciprocating-Mechanism Driven Heat Loop for Two-Phase High Heat Flux Cooling

被引:3
|
作者
Popoola, Olubunmi [1 ]
Bamgbade, Ayobami [1 ]
Cao, Yiding [1 ]
机构
[1] Florida Int Univ, Dept Mech & Mat Engn, Miami, FL 33174 USA
关键词
heat loop; reciprocating flow; high heat flux; two-phase flow; FLOW; COEFFICIENT; DYNAMICS; VELOCITY;
D O I
10.1115/1.4034059
中图分类号
O414.1 [热力学];
学科分类号
摘要
An effective design option for a cooling system is to use a two-phase pumped cooling loop to simultaneously satisfy the temperature uniformity and high heat flux requirements. A reciprocating-mechanism driven heat loop (RMDHL) is a novel heat transfer device that could attain a high heat transfer rate through a reciprocating flow of the two-phase working fluid inside the heat transfer device. Although the device has been tested and validated experimentally, analytical or numerical study has not been undertaken to understand its working mechanism and provide guidance for the device design. The objective of this paper is to develop a numerical model for the RMDHL to predict its operational performance under different working conditions. The developed numerical model has been successfully validated by the existing experimental data and will provide a powerful tool for the design and performance optimization of future RMDHLs. The study also reveals that the maximum velocity in the flow occurs near the wall rather than at the center of the pipe, as in the case of unidirectional steady flow. This higher velocity near the wall may help to explain the enhanced heat transfer of an RMDHL.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] Numerical Simulation of the Mechanically Pumped Two-Phase cooling loop
    Liu Jie
    Zhou Enze
    Zhao Wenjun
    Cheng Cheng
    GREEN POWER, MATERIALS AND MANUFACTURING TECHNOLOGY AND APPLICATIONS, PTS 1 AND 2, 2011, 84-85 : 244 - 248
  • [42] Embedded Micro-Pin Fin Heat Sink of Two-Phase Liquid Cooling for High Heat Flux 3D ICs
    Feng, Huicheng
    Tang, Gongyue
    Zhang, Xiaowu
    Lau, Boon Long
    Jong, Ming Chinq
    Au, Keng Yuen Jason
    Chui, King Jien
    Lou, Jing
    Li, Hongying
    Le, Duc Vinh
    2023 IEEE 73RD ELECTRONIC COMPONENTS AND TECHNOLOGY CONFERENCE, ECTC, 2023, : 1964 - 1968
  • [43] Single-Phase and Two-Phase Hybrid Cooling Schemes for High-Heat-Flux Thermal Management of Defense Electronics
    Sung, Myung Ki
    Mudawar, Issam
    JOURNAL OF ELECTRONIC PACKAGING, 2009, 131 (02) : 0210131 - 02101310
  • [44] Single-phase and two-phase hybrid cooling schemes for high-heat-flux thermal management of defense electronics
    Sung, Myung Ki
    Mudawar, Issam
    2008 11TH IEEE INTERSOCIETY CONFERENCE ON THERMAL AND THERMOMECHANICAL PHENOMENA IN ELECTRONIC SYSTEMS, VOLS 1-3, 2008, : 121 - +
  • [45] Relative Performance of Two-Phase vs Solid Conductive Heat Spreaders for High Heat Flux Applications
    Boswell, Joe
    Wilson, Corey
    Schorp, Josh
    Pounds, Dan
    Drolen, Bruce
    2019 35TH SEMICONDUCTOR THERMAL MEASUREMENT, MODELING AND MANAGEMENT SYMPOSIUM (SEMI-THERM), 2019, : 70 - 75
  • [46] On the numerical solution of two-phase Stefan problems with heat-flux boundary conditions
    Mitchell, S. L.
    Vynnycky, M.
    JOURNAL OF COMPUTATIONAL AND APPLIED MATHEMATICS, 2014, 264 : 49 - 64
  • [47] High heat flux, gravity-independent, two-phase heat exchangers for spacecraft thermal management
    Bower, Jason
    Klausner, James F.
    Sathyanarayan, Siddartha
    SAE Technical Papers, 2002,
  • [48] Numerical simulation of two-phase steam ejector applied in novel loop heat pipe
    Zhou Y.
    Yang X.
    Ni Y.
    Liu J.
    Wei J.
    Yan J.
    Huagong Xuebao/CIESC Journal, 2024, 75 (01): : 268 - 278
  • [49] Critical heat flux prediction method based on two-phase tarbulence model
    Kodama, S
    Kataoka, I
    JOURNAL OF NUCLEAR SCIENCE AND TECHNOLOGY, 2003, 40 (10) : 725 - 733
  • [50] Experimental Study on the Dynamic Heat Transfer Characteristics of a Mechanically Pumped Two-phase Cooling Loop
    Li, Lei
    Tao, Jianyun
    Gao, Wei
    FRONTIERS IN ENERGY RESEARCH, 2021, 9 (09):