Design and thermal performance evaluation of the thermal storage layer of a solar air collector with comprehensive consideration of six factors of phase-change materials

被引:2
|
作者
Hu, Wentao [1 ]
Nickolaevich, Alekhin Vladimir [1 ]
Du, Yang [2 ]
Hou, Chaoping [3 ]
机构
[1] Ural Fed Univ, Inst Civil Engn & Architecture, 19 Mira St, Ekaterinburg 620002, Russia
[2] Ural Fed Univ, Nucl Power Plants & Renewable Energy Sources Dept, 19 Mira st, Ekaterinburg 620002, Russia
[3] Sichuan Agr Univ, Coll Architecture & Urban Rural Planning, Chengdu 610065, Peoples R China
关键词
Solar air collector; Phase-change material; Thermal performance; Comparative test method; Evaluation index analysis method; PLATE;
D O I
10.1016/j.est.2024.111888
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
The heat storage layer of fully filled phase-change materials (PCM) does not melt completely, and this significantly reduces the heat storage capacity, heat -release time, output temperature difference, collection efficiency, heat peak migration ability, and PCM cost of PCM-based solar air collectors (SACs), thereby affecting the comprehensive heating requirements of building households. To solve these problems and obtain the optimal filling rate for PCM, four PCM filling schemes were designed with comprehensive consideration of the six factors of PCM. (Type I is a SAC filled with 0 % PCM, Type II is the upper portion filled with 25 % PCM, Type III is the upper portion filled with 50 % PCM, and Type IV is filled with 100 % PCM). Four models were constructed for comparative experiments. A comparative analysis of the thermal performance evaluation indices indicated that the phase-change heat storage process of the Type III thermal storage layer only uses 1.25 h to store 1.505 x 106 J of heat energy, thus indicating that Type III possesses a better heat storage capacity. The max -output temperature difference of the Type III collector decreased by 20.1 degrees C compared to that of Type I. This indicates that Type III collectors can balance the range of output temperatures and increase indoor thermal comfort. After the solar energy ceases, the continuous heat -release time of the Type III collector is 13.75 h , and the ratio of its heatrelease time to non -solar time is 94.83 % . This indicates that Type III possesses a better heat release time. The daily average heat collection efficiency of Type III filled was 37.77 % , and this was only 6.72 % higher than that of Type IV, thus indicating that Type III exhibited better heat peak migration ability, PCM utilisation efficiency, and lower PCM cost.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Location of the phase-change material layer on thermal performance of light-weight walls
    Liu, Shuhan
    Wang, Jiahui
    Meng, Li
    Hu, Chenxi
    Meng, Xi
    INTERNATIONAL JOURNAL OF LOW-CARBON TECHNOLOGIES, 2024, 19 : 127 - 134
  • [22] Thermal performance of a closed collector-storage solar air heating system with latent thermal storage: An experimental study
    Chen, C. Q.
    Diao, Y. H.
    Zhao, Y. H.
    Wang, Z. Y.
    Liang, L.
    Wang, T. Y.
    Zhu, T. T.
    Ma, C.
    ENERGY, 2020, 202
  • [23] Influence of wall thermal performance on the contribution efficiency of the Phase-Change Material (PCM) layer
    Wu, Qian
    Wang, Jiahui
    Meng, Xi
    CASE STUDIES IN THERMAL ENGINEERING, 2021, 28
  • [24] Performance Evaluation of Various Phase Change Materials for Thermal Energy Storage of A Solar Cooker via Numerical Simulation
    Tarwidi, Dede
    Murdiansyah, Danang Triantoro
    Ginanjar, Narwan
    INTERNATIONAL JOURNAL OF RENEWABLE ENERGY DEVELOPMENT-IJRED, 2016, 5 (03): : 199 - 210
  • [25] A comprehensive performance evaluation of phase change materials for cold energy storage systems
    Altuntas, Merve
    Erdemir, Dogan
    Unalan, Sebahattin
    ENERGY AND BUILDINGS, 2025, 330
  • [26] Performance Development and Evaluation of Solar Air Collector with Novel Phase Change Material
    Vedanarayanan, V.
    Srinivasan, J. Dilli
    Arulvendhan, K.
    Kumaran, P. Thirusenthil
    Selvakumar, R.
    Maridurai, T.
    Sudhakar, M.
    Al Obaid, Sami
    Alfarraj, Saleh
    Raj, M. M.
    Raghavan, Ishwarya Komalnu
    INTERNATIONAL JOURNAL OF PHOTOENERGY, 2022, 2022
  • [28] Phase change material heat storage performance in the solar thermal storage structure employing experimental evaluation
    Huang, Mingyang
    He, Wei
    Incecik, Atilla
    Gupta, Munish Kumar
    Krolczyk, Grzegorz
    Li, Zhixiong
    JOURNAL OF ENERGY STORAGE, 2022, 46
  • [29] INTEGRATION OF THERMAL ENERGY STORAGE MATERIALS IN HEAT PIPE EVACUATED TUBE SOLAR COLLECTOR SYSTEMS FOR ENHANCED SOLAR THERMAL PERFORMANCE
    Hachim, Dhafer Manea
    Eidan, Adel A.
    Alshukri, Mohammed J.
    Al-Fahham, Mohamed
    Alsahlani, Assaad
    Al-Manea, Ahmed
    Al-Rbaihat, Raed
    Alahmer, Ali
    COMPUTATIONAL THERMAL SCIENCES, 2024, 16 (06): : 59 - 85
  • [30] Design and Performance Evaluation of Building Integrated Photovoltaic/Thermal (BIPVT) Air Collector
    Tsai, Huan-Liang
    Hsu, Chieh-Yen
    Hsieh, Fu-Sheng
    Chiang, Yu-Hsuan
    2013 IEEE 39TH PHOTOVOLTAIC SPECIALISTS CONFERENCE (PVSC), 2013, : 1492 - 1494