Experimental and numerical investigations on the effect of porosity and PPI gradients of metal foams on the thermal performance of a composite phase change material heat sink

被引:0
|
作者
Marri, Girish Kumar [1 ]
Balaji, C. [1 ]
机构
[1] Heat Transfer and Thermal Power Laboratory, Department of Mechanical Engineering, Indian Institute of Technology Madras, Chennai,600036, India
关键词
Porosity - Solidification - Melting - Metal foams - Numerical models - Heat sinks - Metals;
D O I
暂无
中图分类号
学科分类号
摘要
This paper reports the results of an experimental and numerical study on the thermal performance of a metal foam based composite phase change material (PCM) heat sink cylindrical in shape with porosity and PPI (pores per inch) density gradients. Studies are conducted on different configurations of composite PCM made of an open-cell aluminum metal foams with porosities of 0.9, 0.94 and 0.97 and PPI of 8, 14 and 20 encapsulated with n-eicosane as the PCM. Experiments are carried out on the PCM heat sink heated from the bottom for different configurations of metal foams with a uniform porosity and non-uniform porosity created with layer wise arrangement of metal foams from the bottom to the top. Complementary three-dimensional numerical simulations have been conducted using the enthalpy porosity methodology with a non-thermal equilibrium model to understand the melting and solidification dynamics of PCM while melting (charging) and solidification (discharging) respectively. Heat sink configurations with uniform porosity, and porosity gradient created with bi-layer arrangement of metal foams have been simulated numerically. Further, the numerical simulations have been extended to study heat sink configurations containing metal foams with uniform PPI density and PPI density gradient. From the results, it is seen that the case of non-uniform variation in porosity (decreasing from the bottom to the top) with constant PPI density and the case of non-uniform PPI density (increasing from the bottom to the top) with constant porosity show superior performance up to 28 and 45% over the heat sink configurations with uniform porosity and PPI density respectively in the charging cycle in terms of the time to reach a setpoint temperature. From the numerical simulations, it is seen that the melt fraction of PCM significantly changes the convection velocity cells, which affects the melting dynamics of PCM. Additional numerical simulations have been conducted on PCM heat sink with non-uniform porosity (i.e. decreasing porosity from the bottom to the top) and non-uniform PPI density (i.e increasing PPI density from the bottom to the top) gradients created with three layers (tri-layer) of metal foams. The results show that the PCM heat sink with non-uniform porosity and non-uniform PPI density gradients created with tri-layer metal foams have almost the same performance as a bi-layer metal foam with enhancement ratio up to 4 and 4.4 times respectively over the base line case (i.e. PCM heat sink without metal foams). In the discharging cycle, it is seen that the porosity and PPI gradients do not have any effect on the thermal performance of the heat sink. © 2020
引用
收藏
相关论文
共 50 条
  • [21] Lattice Boltzmann simulation on phase change heat transfer in metal foams/paraffin composite phase change material
    Tao, Y. B.
    You, Y.
    He, Y. L.
    APPLIED THERMAL ENGINEERING, 2016, 93 : 476 - 485
  • [22] Experimental investigation of the effect of inclination angle on the performance of phase change material based finned heat sink
    Kothari, R.
    Sahu, S. K.
    Kundalwal, S. I.
    Sahoo, S. P.
    JOURNAL OF ENERGY STORAGE, 2021, 37
  • [23] Experimental Investigations of the Effect of Ultrasonic Waves on the Thermal Performance of Nanoparticles Embedded Phase Change Material
    Selvaraj Jegadheeswaran
    Athimoolam Sundaramahalingam
    International Journal of Thermophysics, 2023, 44
  • [24] Experimental Investigations of the Effect of Ultrasonic Waves on the Thermal Performance of Nanoparticles Embedded Phase Change Material
    Jegadheeswaran, Selvaraj
    Sundaramahalingam, Athimoolam
    INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2023, 44 (01)
  • [25] Transient thermal behavior of a passive heat sink integrated with phase change material: A numerical simulation
    Safari V.
    Kamkari B.
    Zandimagham M.
    Hewitt N.
    International Journal of Thermofluids, 2023, 20
  • [26] Numerical analysis and comparison of the thermal performance enhancement methods for metal foam/phase change material composite
    Zhu, Feng
    Zhang, Chuan
    Gong, Xiaolu
    APPLIED THERMAL ENGINEERING, 2016, 109 : 373 - 383
  • [27] Theoretical analysis of phase change material storage with high porosity metal foams
    Cheng, Wenlong
    Wei, Wenjing
    Taiyangneng Xuebao/Acta Energiae Solaris Sinica, 2007, 28 (07): : 739 - 744
  • [28] Effect of thermal parameters on heat storage and release performance of phase change material composite wall
    Zhang, Feng
    Jiang, Fengqi
    Xu, Zhanyang
    Yu, Wei
    Bai, Yikui
    Liu, Wenhe
    ENERGY EXPLORATION & EXPLOITATION, 2023, 41 (02) : 619 - 635
  • [29] Numerical and experimental investigation of a phase change material radial fin heat sink for electronics cooling
    Arqam, Mohammad
    Raffa, Laryssa Sueza
    Clemon, Lee
    Islam, Mohammad Saidul
    Ryall, Matt
    Bennett, Nick S.
    JOURNAL OF ENERGY STORAGE, 2024, 98
  • [30] Thermal Performance of a Phase Change Material-Based Heat Sink Subject to Constant and Power Surge Heat Loads: A Numerical Study
    Akula, Rajesh
    Balaji, C.
    JOURNAL OF THERMAL SCIENCE AND ENGINEERING APPLICATIONS, 2021, 13 (03)