Configurational assessment of solidification performance in a triplex-tube heat exchanger filled with composite phase change material

被引:11
作者
Alam, Md Tabrez [1 ]
Raj, Aashna [1 ]
Singh, Lalan K. [1 ]
Gupta, Anoop K. [1 ]
机构
[1] Indian Inst Technol Patna, Dept Chem & Biochem Engn, Energy & Thermofluids Lab, Amhara Rd, Patna 801106, Bihar, India
关键词
Triplex; -tube; Phase change material; Solidification; Metal foam; Configurational optimization; THERMAL-ENERGY STORAGE; METAL FOAM; PHOTOVOLTAIC CELLS; FORCED-CONVECTION; ENHANCEMENT; PCM; CONDUCTIVITY; SIMULATION; PARAFFIN; FLUID;
D O I
10.1016/j.applthermaleng.2023.120814
中图分类号
O414.1 [热力学];
学科分类号
摘要
The melting/solidification performance of a latent heat based thermal energy storage (TES) system is impeded due to the poor thermal conductivity of phase change materials (PCMs). To circumvent this limitation, several approaches have been adopted such as incorporation of nanoparticles including carbon nanotubes, fins/extended surfaces, heat pipes, metal foam, etc. This work presents an innovative design optimization technique for the solidification (discharging) enhancement by embedding the porous copper metal foam in PCM (referred as composite PCM) inside a triplex-tube heat exchanger unit. Equal volume ratio (0.5 v/v) of PCM and composite PCM was considered inside the annular space. Fifteen different configurations (M-1 to M-15) of composite PCM under the four broad classes based on the relative positioning and arrangement of metal foam were investigated and compared. Transient drop in melt fraction during solidification, temperature contours, instantaneous solidification contours, and total energy change in the solid PCM have been discussed. Numerical experiments demonstrated that the segmentation of porous metal foam zone in TES units significantly improves the discharging performance. The results suggest that upon maintaining a direct contact of the composite PCM zone with the flowing heat transfer fluid further improves heat dissipation and leads to an enhancement of -3.2 times (M-15) as compared to the pure PCM case (M-1). The overall performance is improved when the metal foam is placed above the pure PCM in TES unit. Typical results predict -97.5% and - 91.1% reduction in solidification time for model M-2 (fully filled with metal foam of porosity 0.95) and M-11 (uniform segmentation of metal foam of porosity 0.95 into 4 zones), respectively, when compared with pure PCM (M-1). An evaluation of the rate of the total energy released per unit cost of material used during discharging reports that model M-11 outperforms (the maximum value of -8.9) all other models having identical mass of PCM and/or composite PCM.
引用
收藏
页数:21
相关论文
共 50 条
  • [41] Numerical investigation of innovative segmentation and fin design for accelerated melting of phase change materials in triplex-tube systems
    Li, Yu
    Jiang, Yanlong
    JOURNAL OF ENERGY STORAGE, 2024, 98
  • [42] Investigation of numerical and experimental assessment of melting behavior of phase change material in U tube heat exchanger
    Erdogan, Abdulhamit
    Cakmak, Gulsah
    CASE STUDIES IN THERMAL ENGINEERING, 2023, 49
  • [43] Investigation of the impact of triangular shape fins to enhancing the melting rate of phase change materials in triplex tube heat exchanger
    Waqas, Hassan
    Hussain, Mohib
    Khalid, Shamila
    Al-Mdallal, Qasem M.
    Muhammad, Taseer
    INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2025, 162
  • [44] Sensitivity analysis and optimization of structural parameters of a phase change material based multi-tube heat exchanger under charging condition
    Ma, Xiaowei
    Zhang, Quan
    Wang, Jiaqiang
    Yue, Chang
    JOURNAL OF ENERGY STORAGE, 2022, 56
  • [45] The potential of machine learning to predict melting response time of phase change materials in triplex-tube latent thermal energy storage systems
    Yan, Peiliang
    Wen, Chuang
    Ding, Hongbing
    Wang, Xuehui
    Yang, Yan
    APPLIED ENERGY, 2025, 390
  • [46] Experimental and computational study of melting phase-change material in a triplex tube heat exchanger with longitudinal/triangular fins
    Abdulateef, Ammar M.
    Mat, Sohif
    Sopian, Kamaruzzaman
    Abdulateef, Jasim
    Gitan, Ali A.
    SOLAR ENERGY, 2017, 155 : 142 - 153
  • [47] Heat transfer characteristics of phase change emulsions with solidification of phase change material particles in a circular tube
    Morimoto, Takashi
    Suzuki, Kai
    Kumano, Hiroyuki
    INTERNATIONAL JOURNAL OF REFRIGERATION, 2020, 114 : 1 - 9
  • [48] Optimizing diverse triplex-tube heat storage systems with composite phase change materials in simultaneous charging and discharging environment
    Alam, Md Tabrez
    Kumar, Rajesh
    Gupta, Anoop K.
    INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2024, 155
  • [49] Numerical simulation of heat transfer performance in an enclosure filled with a metal foam and nano-enhanced phase change material
    Bondareva, Nadezhda S.
    Sheremet, Mikhail A.
    ENERGY, 2024, 296
  • [50] Solidification acceleration in a triplex-tube latent heat thermal energy storage system using V-shaped fin and nano-enhanced phase change material
    Alizadeh, M.
    Hosseinzadeh, Kh
    Shahavi, M. H.
    Ganji, D. D.
    APPLIED THERMAL ENGINEERING, 2019, 163