Thermo-fluid performance enhancement in a long double-tube latent heat thermal energy storage system

被引:2
作者
Knysh, Lyudmila [1 ]
机构
[1] Oles Honchar Dnipro Natl Univ, Dept Comp Technol, Gagarin Ave 72, UA-49000 Dnipro, Ukraine
关键词
Latent heat thermal energy storage system; 3D coupled model; Thermo-fluid analysis; Non-equilibrium thermodynamics; Optimal heat transfer; Fluid mechanics parameters; DESIGN;
D O I
10.1016/j.est.2023.108020
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Thermodynamic analysis and flow rate optimization for the long double-tube latent heat thermal energy storage systems (LHTESS) are performed. Computer modeling is carried out using created software and is based on a developed 3D non-steady non-linear coupled thermo-fluid mathematical model that combines the apparent heat capacity method and finite volume method for the sodium nitrate (NaNO3) phase change materials (PCM) and for the Syltherm800 heat transfer fluid (HTF). The mathematical model and numerical algorithm are verified through comparison with experimental data. It is found that the laminar flow of HTF ensures the uniform temperature in PCM and in HTF and this temperature is equal to the PCM melting temperature. It is proved that the PCM and HTF average temperatures along the LHTESS can be equalized using spatial and temporal velocity variations of the HTF. Mutual impact of the heat transfer and fluid mechanics parameters in the long double-tube LHTESS was studied by correlation between Nusselt numbers and Reynolds numbers. The optimal HTF flow rate parameters were analyzed based on the non-equilibrium thermodynamics method. It is discovered that the laminar regime 0 < Re < 2000 and the turbulent regime 12000 < Re < 15000 are the most optimal for long double-tube LHTESS of the described geometry.
引用
收藏
页数:10
相关论文
共 51 条
  • [1] An overview of thermal energy storage systems
    Alva, Guruprasad
    Lin, Yaxue
    Fang, Guiyin
    [J]. ENERGY, 2018, 144 : 341 - 378
  • [2] Commercial parabolic trough CSP plants: Research trends and technological advancements
    Awan, Ahmed Bilal
    Khan, M. N.
    Zubair, Muhammad
    Bellos, Evangelos
    [J]. SOLAR ENERGY, 2020, 211 : 1422 - 1458
  • [3] Analysis of the experimental behaviour of a 100 kWth latent heat storage system for direct steam generation in solar thermal power plants
    Bayon, Rocio
    Rojas, Esther
    Valenzuela, Loreto
    Zarza, Eduardo
    Leon, Javier
    [J]. APPLIED THERMAL ENGINEERING, 2010, 30 (17-18) : 2643 - 2651
  • [4] BEJAN A, 1980, ENERGY, V5, P721, DOI 10.1016/0360-5442(80)90091-2
  • [5] Bejan A., 1995, ENTROPY GENERATION M
  • [6] Predictive approach of heat transfer for the modelling of large-scale latent heat storages
    Beust, Clement
    Franquet, Erwin
    Bedecarrats, Jean-Pierre
    Garcia, Pierre
    [J]. RENEWABLE ENERGY, 2020, 157 : 502 - 514
  • [7] Cengel Y.-A., 2015, Heat and Mass Transfer: Fundamentals and Applications
  • [8] NanoPCM based thermal energy storage system for a residential building
    Daneshazarian, Reza
    Bayomy, Ayman M.
    Dworkin, Seth B.
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2022, 254
  • [9] Advanced/hybrid thermal energy storage technology: material, cycle, system and perspective
    Ding, Zhixiong
    Wu, Wei
    Leung, Michael
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2021, 145
  • [10] dow, about us