A coupled lattice Boltzmann-finite volume method for phase change material analysis

被引:12
作者
Chiappini, Daniele [1 ]
机构
[1] Univ Rome Niccolo Cusano, Dept Mech Engn, Via Don Carlo Gnocchi 3, I-00166 Rome, Italy
关键词
Phase change materials; Coupled LB-FV solver; Conjugate heat transfer; Enthalpy equation; Conduction (convection) driven solidification (melting);
D O I
10.1016/j.ijthermalsci.2021.106893
中图分类号
O414.1 [热力学];
学科分类号
摘要
The aim of this work is to present results obtained through a multi-physics solver used to numerically determine the thermal behaviour of a phase change material both for solidification and melting processes. Particular attention is addressed to the right implementation of PCM properties, which are not constant with respect to the considered phase. Thus, the energy equation is specifically rewritten for the PCM material in terms of enthalpy, in order to consider both sensible and latent heat. Liquid and solid enthalpy thresholds are fixed with respect to solid/liquid properties, to correctly determine the amount of PCM which undergoes the phase change. The implemented model allows varying the temperature (enthalpy) range where the phase change takes place. The influence of mushy area thickness (the intermediate zone between solid and liquid) has analysed both for charging and discharging processes in a heat exchanger-like geometry. Additionally, the LB equation itself is rewritten in order to deal with the solidification/melting front advance. Results show how the under-analysis phenomena are sensitive to solidification/melting front thickness, with predominant effects whenever conduction is the thermal driver. Effects are definitely tamed while convection plays a role. Results also show how, for the implemented heat exchanger operating conditions, the considered PCM (PureTemp37) can be completely melted in 5 h, independently from the mushy zone thickness (Delta T = [0.01,1.00,3.00]K). On the contrary, for the same duration of the discharging process, the solidified fraction ranges from 23% up to 35% whereas the mushy zone Delta T ranges from 0.01 K up to 3.00 K.Numerical results are compared with a set of literature/analytical data available for a range of non-dimensional numbers and both for conduction and convection driven phenomena. The agreement between numerical and literature data is satisfactory with positive outcomes for future model developments.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Thermal, microstructural and numerical analysis of hemperete-microencapsulated phase change material composites
    Abdellatef, Yaser
    Kavgic, Miroslava
    [J]. APPLIED THERMAL ENGINEERING, 2020, 178
  • [42] Experimental thermal performance analysis of building components containing phase change material (PCM)
    Zastawna-Rumin, Anna
    Nowak, Katarzyna
    [J]. 7TH SCIENTIFIC-TECHNICAL CONFERENCE ON MATERIAL PROBLEMS IN CIVIL ENGINEERING (MATBUD'2015), 2015, 108 : 428 - 435
  • [43] An analysis into the various aspects of phase change material, its properties and applications in different fields
    Tamboli A.I.
    Sohoni V.S.
    [J]. Asian Journal of Civil Engineering, 2022, 23 (8) : 1223 - 1230
  • [44] Performance study and analysis of an inclined concentrated photovoltaic-phase change material system
    Emam, M.
    Ookawara, Shinichi
    Ahmed, Mahmoud
    [J]. SOLAR ENERGY, 2017, 150 : 229 - 245
  • [45] Investigating convective and conductive heat transfer in square and circular heated bodies: A novel approach using coupled Runge-Kutta and lattice Boltzmann method
    Channouf, Salaheddine
    Benhamou, Jaouad
    Jami, Mohammed
    [J]. THERMAL SCIENCE AND ENGINEERING PROGRESS, 2024, 49
  • [46] Experimental study of phase change material heat sinks coupled with Cantor fractal fins for thermal management of photovoltaic systems
    Hong, Yuxiang
    Bai, Dandan
    Shi, Yuan
    Zhao, Lei
    Jiao, Feng
    Du, Juan
    [J]. APPLIED THERMAL ENGINEERING, 2024, 243
  • [47] USING PHASE CHANGE MATERIALS IN PHOTOVOLTAIC SYSTEMS FOR CELL TEMPERATURE REDUCTION: A FINITE DIFFERENCE SIMULATION METHOD
    Kladisios, Panagiotis
    Stegou-Sagia, Athina
    [J]. JOURNAL OF THERMAL ENGINEERING, 2016, 2 (04): : 897 - 906
  • [48] Performance analysis of a new concentrator photovoltaic system integrated with phase change material and water jacket
    Emam, Mohamed
    Ahmed, Mahmoud
    [J]. SOLAR ENERGY, 2018, 173 : 1158 - 1172
  • [49] Design and analysis of phase change material based floor heating system for thermal energy storage
    Yun, Beom Yeol
    Yang, Sungwoong
    Cho, Hyun Mi
    Chang, Seong Jin
    Kim, Sumin
    [J]. ENVIRONMENTAL RESEARCH, 2019, 173 : 480 - 488
  • [50] Optimization of filler distribution for organic phase change material composites: Numerical investigation and entropy analysis
    Zhu, Yejun
    Huang, Baoling
    Wu, Jingshen
    [J]. APPLIED ENERGY, 2014, 132 : 543 - 550