Accelerated charging of PCM in coil heat exchangers via central return tube and inlet positioning: A 3D analysis

被引:6
作者
Ben Khedher, Nidhal [1 ,2 ]
Hosseinzadeh, Khashayar [3 ]
Abed, Azher M. [4 ]
Khosravi, Koorosh [5 ]
Mahdi, Jasim M. [6 ]
Sultan, Hakim S. [7 ]
Mohammed, Hayder I. [8 ]
Talebizadehsardari, Pouyan [9 ]
机构
[1] Univ Hail, Coll Engn, Dept Mech Engn, Hail, Saudi Arabia
[2] Univ Monastir, Lab Thermal & Energet Syst Studies LESTE, Natl Sch Engn Monastir, Monastir, Tunisia
[3] Babol Noshirvani Univ Technol, Dept Mech Engn, Babol, Iran
[4] Al Mustaqbal Univ, Air Conditioning & Refrigerat Tech Engn Dept, Babylon 51001, Iraq
[5] Rensselaer Polytech Inst, Dept Mech Aerosp & Nucl Engn, 110 8 th St, Troy, NY 12180 USA
[6] Univ Baghdad, Dept Energy Engn, Baghdad 10071, Iraq
[7] Univ Warith Al Anbiyaa, Coll Engn, Karbalaa 56001, Iraq
[8] Imam Jaafar Al Sadiq Univ, Dept Cooling & Air Conditioning Engn, Baghdad, Iraq
[9] Univ Nottingham, Power Elect Machines & Control PEMC Res Grp, Nottingham, England
关键词
Phase change materials; Coiled tube; Numerical simulation; Melting; Central return tube; THERMAL-ENERGY STORAGE; PHASE-CHANGE MATERIAL; TRIPLEX-TUBE; TRANSFER ENHANCEMENT; METAL FOAM; SYSTEM; PERFORMANCE; FINS; NANOPARTICLES; UNIT;
D O I
10.1016/j.icheatmasstransfer.2024.107275
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper presents a 3D numerical analysis of the melting behaviour of a phase changing material (PCM) in a helix-shaped coil-tube heat exchanger, a critical component in latent heat storage (LHS) systems. The analysis explores the impact of the heat transfer fluid's flow route on the system's performance. Specifically, three unique designs of coiled-tube heat exchangers were assessed: a conventional central return tube with an inlet at the bottom, a central return tube with an inlet at the top, and a conventional coiled-tube. The key performance measures under investigation were the melting time of the PCM, average temperature, and average charge rate. Results revealed the central return tube configurations enhance initial melting rates and charging capacity compared to the conventional coil, with the top inlet design outperforming the bottom inlet by 16.5% in melting rate after 5000 s from the melting initiation. Meanwhile, the configuration with the central return tube at the top demonstrated incremental energy storage increases of 18.8%, 13.1% and 1.9% at operating time intervals of 1000, 5000 and 10,000, respectively, compared to the conventional system. These results underline the benefits of a central return tube with optimized inlet positioning in improving the melting effectiveness in LHS systems.
引用
收藏
页数:11
相关论文
共 51 条
  • [41] Design and experimental analysis of a helical coil phase change heat exchanger for thermal energy storage
    Saydam, Vahit
    Parsazadeh, Mohammad
    Radeef, Musaab
    Duan, Xili
    [J]. JOURNAL OF ENERGY STORAGE, 2019, 21 : 9 - 17
  • [42] Wavy channels triple-tube LHS unit with sinusoidal variable wavelength in charging/discharging mechanism
    Shahsavar, Amin
    Shaham, Aidin
    Talebizadehsardari, Pouyan
    [J]. INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2019, 107 : 93 - 105
  • [43] Numerical study of a latent heat thermal energy storage system enhanced by varying fin configurations
    Tiari, Saeed
    Hockins, Addison
    Mahdavi, Mahboobe
    [J]. CASE STUDIES IN THERMAL ENGINEERING, 2021, 25
  • [44] Solar energy: Markets, economics and policies
    Timilsina, Govinda R.
    Kurdgelashvili, Lado
    Narbel, Patrick A.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2012, 16 (01) : 449 - 465
  • [45] Thermal energy charging behaviour of a heat exchange device with a zigzag plate configuration containing multi-phase-change-materials (m-PCMs)
    Wang, Peilun
    Wang, Xiang
    Huang, Yun
    Li, Chuan
    Peng, Zhijian
    Ding, Yulong
    [J]. APPLIED ENERGY, 2015, 142 : 328 - 336
  • [46] Review on thermal conductivity improvement of phase change materials with enhanced additives for thermal energy storage
    Xu, Changlu
    Zhang, Huan
    Fang, Guiyin
    [J]. JOURNAL OF ENERGY STORAGE, 2022, 51
  • [47] Role of porous metal foam on the heat transfer enhancement for a thermal energy storage tube
    Yang, Xiaohu
    Yu, Jiabang
    Guo, Zengxu
    Jin, Liwen
    He, Ya-Ling
    [J]. APPLIED ENERGY, 2019, 239 : 142 - 156
  • [48] Numerical simulation on phase-change thermal storage/release in a plate-fin unit
    Ye, Wei-Biao
    Zhu, Dong-Sheng
    Wang, Nan
    [J]. APPLIED THERMAL ENGINEERING, 2011, 31 (17-18) : 3871 - 3884
  • [49] Melting performance analysis of phase change materials in different finned thermal energy storage
    Zhang, Shengqi
    Pu, Liang
    Xu, Lingling
    Liu, Ran
    Li, Yanzhong
    [J]. APPLIED THERMAL ENGINEERING, 2020, 176 (176)
  • [50] Heat transfer enhancement of high temperature thermal energy storage using metal foams and expanded graphite
    Zhao, C. Y.
    Wu, Z. G.
    [J]. SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2011, 95 (02) : 636 - 643