Solidification heat transfer characteristics of nanoparticle-enhanced phase change material inside rectangular slabs

被引:2
|
作者
Elbahjaoui, Radouane [1 ]
El Qarnia, Hamid [1 ]
El Ganaoui, Mohammed [2 ]
机构
[1] Cadi Ayyad Univ, Fac Sci Semlalia, Fluids Mech & Energet Laborator, CNRST,URAC 27,Dept Phys, PO 2390, Marrakech, Morocco
[2] Univ Lorraine, LERMAB, IUT Longwy, Inst Carnot, Nancy, France
关键词
solidification; Phase change material (PCM); heat transfer fluid (HTF); nanoparticles; latent heat storage unit (LHSU); THERMAL-ENERGY STORAGE; PCM; PERFORMANCE; SYSTEMS; UNIT;
D O I
10.1016/j.egypro.2017.11.258
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This paper presents a numerical investigation on the heat transfer enhancement during solidification of a phase change material in a rectangular latent heat storage unit (LHSU) through the dispersion of high conductive nanoparticles. The storage unit consists of a number of vertically oriented slabs of nanoparticle-enhanced phase change material (NEPCM) placed in a laminar heat transfer fluid (HTF) flow. A two dimensional numerical model has been developed using the enthalpy method and the finite volume approach to investigate the thermal behavior and performance of the LHSU during discharging process. The numerical model has been validated by comparing our numerical predictions with the experimental and numerical results published in literature. Numerical simulations were carried out to evaluate the effect of the volumetric fraction of nanoparticles on the heat transfer enhancement and storage performance of the storage unit. (C) 2017 The Authors. Published by Elsevier Ltd.
引用
收藏
页码:590 / 595
页数:6
相关论文
共 50 条
  • [31] Analysis of heat pipe-aided graphene-oxide based nanoparticle-enhanced phase change material heat sink for passive cooling of electronic components
    Ali, Hafiz Muhammad
    JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2021, 146 (01) : 277 - 286
  • [32] Comprehensive performance evaluation of double-glazed windows containing hybrid nanoparticle-enhanced phase change material
    Yang, Xinpeng
    Li, Dong
    Yang, Ruitong
    Ma, Yuxin
    Tong, Xiangyu
    Wu, Yangyang
    Arici, Muslum
    APPLIED THERMAL ENGINEERING, 2023, 223
  • [33] Melting of nanoparticle-enhanced phase change material in a shell-and-tube latent heat storage unit heated by laminar pulsating fluid flow
    Elbahjaoui R.
    El Qarnia H.
    El Qarnia, Hamid (elqarnia@uca.ac.ma), 1600, Begell House Inc. (09): : 311 - 334
  • [34] MELTING OF NANOPARTICLE-ENHANCED PHASE CHANGE MATERIAL IN A SHELL-AND-TUBE LATENT HEAT STORAGE UNIT HEATED BY LAMINAR PULSATING FLUID FLOW
    Elbahjaoui, Radouane
    El Qarnia, Hamid
    COMPUTATIONAL THERMAL SCIENCES, 2014, 9 (04): : 311 - 334
  • [35] Heat transfer through a spiral tube with considering charging of nanoparticle-enhanced paraffin
    Zhang, Ying-Fang
    Shafee, Ahmad
    Selim, Mahmoud M.
    Issakhov, Alibek
    Albadarin, Ahmad B.
    JOURNAL OF MOLECULAR LIQUIDS, 2021, 339
  • [36] Variations of thermophysical properties and heat transfer performance of nanoparticle-enhanced ionic liquids
    Zhang, Fang-Fang
    Zheng, Fei-Fei
    Wu, Xue-Hong
    Yin, Ya-Ling
    Chen, Geng
    ROYAL SOCIETY OPEN SCIENCE, 2019, 6 (04):
  • [37] Hybrid Nanoparticle-Enhanced Fluid Flow and Heat Transfer Behaviors in a Parabolic Cavity with a Heat Source
    Mohebbi, Rasul
    Ma, Yuan
    ARABIAN JOURNAL FOR SCIENCE AND ENGINEERING, 2024, : 4197 - 4207
  • [38] Heat and mass transfer with phase change in a rectangular enclosure packed with unsaturated porous material
    Liu, W
    Huang, XM
    Riffat, SB
    HEAT AND MASS TRANSFER, 2003, 39 (03) : 223 - 230
  • [39] Heat and mass transfer with phase change in a rectangular enclosure packed with unsaturated porous material
    W. Liu
    X. Huang
    S. Riffat
    Heat and Mass Transfer, 2003, 39 : 223 - 230
  • [40] HEAT TRANSFER ENHANCEMENT BY SLURRY OF PHASE CHANGE MATERIAL THROUGH RECTANGULAR POROUS CHANNEL
    Shukla, Manali
    Hassanipour, Fatemeh
    PROCEEDINGS IF THE ASME 9TH INTERNATIONAL CONFERENCE ON NANOCHANNELS, MICROCHANNELS AND MINICHANNELS 2011, VOL 1, 2012, : 471 - +