Experimental study on the melting heat transfer of octadecane with passively adding graphene and actively applying an electric field

被引:19
作者
Sun, Zhihao [1 ]
Luo, Kang [1 ]
Yi, Hongliang [1 ]
Wu, Jian [1 ]
机构
[1] Harbin Inst Technol, Sch Energy Sci & Engn, Key Lab Aerosp Thermophys, Harbin 150001, Peoples R China
基金
中国国家自然科学基金;
关键词
Organic PCMs; Melting; Synergistic heat transfer augmentation; Nano graphene; Electric field; ELECTROPHORETIC DEPOSITION; N-OCTADECANE; ENHANCEMENT; CAVITY;
D O I
10.1016/j.ijheatmasstransfer.2023.123845
中图分类号
O414.1 [热力学];
学科分类号
摘要
The low thermal conductivity of organic phase change materials (PCMs) has seriously obstructed the performance of thermal latent-heat thermal storage (LHTS) system. For the first attempt, we experimentally studied the phase-change heat transfer characteristics of octadecane inside a horizontal cavity with the passive addition of nano graphene and the active application of an electric field. The effects of nano graphene weight ratio, direct current (DC) voltage magnitude and polarity on melting heat transfer and their corresponding mechanism are then examined. Results are reported for the real-time melting process, the liquid fraction, and the evolution of absorbed energy. The velocity fields obtained by particle image velocimetry (PIV), the temperature fields measured by fiber Bragg grating (FBG) sensors, and the current-voltage curves are reported to reveal the heat transfer enhancement mechanism. The absorbed thermal energy is increased by 33.6% when nano graphene is added alone. A single electric field promotes the energy absorption by 153.5% where electric field driven flow develops. The net charge is generated by the conduction mechanism. For composite PCMs' melting, the absorbed energy is enhanced by 124.8% at most when the cavity's bottom wall is exposed to -10.0 kV. However, when + 10.0 kV is applied to the bottom wall the electrophoretic deposition takes place, and the combined augmentation effect on absorbed thermal energy is 111.2%. The present results provide a reference for improving the LHTS system's performance through sole or synergistic heat transfer enhancement method. (c) 2023 Elsevier Ltd. All rights reserved.
引用
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页数:17
相关论文
共 47 条
  • [1] Phase change material-integrated latent heat storage systems for sustainable energy solutions
    Aftab, Waseem
    Usman, Ali
    Shi, Jinming
    Yuan, Kunjie
    Qin, Mulin
    Zou, Ruqiang
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2021, 14 (08) : 4268 - 4291
  • [2] Experimental and numerical investigation of heat transfer in a channel with multiple phase change materials (PCMs)
    Akyol, Erhan
    Hacihafizoglu, Oktay
    Susantez, Cigdem
    Kahveci, Kamil
    Akyol, Ugur
    [J]. JOURNAL OF ENERGY STORAGE, 2022, 45
  • [3] Experimental Studies on Thermophysical and Electrical Properties of Graphene-Transformer Oil Nanofluid
    Almeida, Charishma
    Paul, Sohan
    Godson Asirvatham, Lazarus
    Manova, Stephen
    Nimmagadda, Rajesh
    Raja Bose, Jefferson
    Wongwises, Somchai
    [J]. FLUIDS, 2020, 5 (04)
  • [4] Enhancement of PCM melting rate via internal fin and nanoparticles
    Arici, Muslum
    Tutuncu, Ensar
    Yildiz, Cagatay
    Li, Dong
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2020, 156
  • [5] Natural convection heat transfer of nanofluid in a cavity under an inhomogeneous electric field
    Bao, Yi-Ying
    Huang, Jia-Hui
    Chen, Yan-Jun
    Liu, Zhen-Hua
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2019, 131 : 341 - 345
  • [6] Phase-change materials for thermal management of electronic devices
    Bianco, Vincenzo
    De Rosa, Mattia
    Vafai, Kambiz
    [J]. APPLIED THERMAL ENGINEERING, 2022, 214
  • [7] Preparation and thermophysical properties of graphene nanoplatelets-octadecane phase change composite materials
    Cai Di
    Li Jing
    Jiao Nai-Xun
    [J]. ACTA PHYSICA SINICA, 2019, 68 (10)
  • [8] Castellanos A., 1998, CISM COUR L, DOI 10.1007/978-3-7091-2522-9
  • [9] Phase-change heat transfer of single/hybrid nanoparticles-enhanced phase-change materials over a heated horizontal cylinder confined in a square cavity
    Chamkha, A. J.
    Doostanidezfuli, A.
    Izadpanahi, E.
    Ghalambaz, M.
    [J]. ADVANCED POWDER TECHNOLOGY, 2017, 28 (02) : 385 - 397
  • [10] Applications of Graphene Electrophoretic Deposition. A Review
    Chavez-Valdez, A.
    Shaffer, M. S. P.
    Boccaccini, A. R.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2013, 117 (06) : 1502 - 1515