Numerical investigation of thermal energy storage unit integrated with indirect solar air heater

被引:4
|
作者
Aghabali, Fatemeh [1 ]
Farhadi, Mousa [1 ]
Darzi, AhmadAli Rabienataj [2 ]
机构
[1] Babol Noshirvani Univ Technol, Fac Mech Engn, Babol, Iran
[2] Univ Mazandaran, Dept Mech Engn, Babolsar, Iran
关键词
Melting; PCM; solar air heater; solidification; thermal energy storage; PHASE-CHANGE MATERIAL; TRIPLEX-TUBE; METAL FOAM; SOLIDIFICATION PROCESS; TRANSFER ENHANCEMENT; PCM; PERFORMANCE; CONVECTION; EXCHANGER; NEPCM;
D O I
10.1080/10407782.2023.2227341
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this study, tubes filled with PCM as a thermal energy storage unit with an indirect air heater are used to store and recover solar thermal energy. Two different configurations of PCM-filled tubes (inline and staggered) in the unit are considered and compared with the PCM-filled plate unit. In all cases, the amount of the PCM is the same. The effects of airflow rate, diameter of tubes and inlet temperature on the charging and discharging rates are studied. Results showed that the PCM tube unit is more efficient than the PCM plate unit. The thermal performance is enhanced with the increase of the air mass flow rate. Results also revealed that the phase change rate in staggered configurations is between 7% and 36% (depending on the airflow rate) greater than that in the inline ones. By reducing the tube diameter, the melting and solidification processes are performed more quickly due to the rise of the overall heat transfer surface area. The influence of the temperature difference between the inlet air and PCM is more effective than the other considered effects where the 10 & DEG;C increase of the temperature difference enhances the charging rate by a factor of 2.
引用
收藏
页码:2620 / 2639
页数:20
相关论文
共 50 条
  • [41] Numerical investigation of a joint approach to thermal energy storage and compressed air energy storage in aquifers
    Guo, Chaobin
    Zhang, Keni
    Pan, Lehua
    Cai, Zuansi
    Li, Cai
    Li, Yi
    APPLIED ENERGY, 2017, 203 : 948 - 958
  • [42] Analytical and Numerical Models of a New Hybrid System of Earth Air Tunnel Integrated Solar Air Heater With Sensible Storage
    Verma, Sunirmit
    Das, Ranjan
    JOURNAL OF SOLAR ENERGY ENGINEERING-TRANSACTIONS OF THE ASME, 2024, 146 (03):
  • [43] Thermal analysis of a natural circulation solar air heater with phase change material energy storage
    Enibe, SO
    RENEWABLE ENERGY, 2003, 28 (14) : 2269 - 2299
  • [44] Thermal performance investigation of frustum roughened solar air heater
    Singh, Dharam
    Kumar, Vikash
    SOLAR ENERGY, 2023, 255 : 339 - 354
  • [45] Numerical investigation of the effect factors on the performance of a novel PV integrated collector storage solar water heater
    Xie, Yujie
    Simbamba, Mzee Mohamed
    Zhou, Jinzhi
    Jiang, Fujian
    Cao, Xiaoling
    Sun, Liangliang
    Yuan, Yanping
    RENEWABLE ENERGY, 2022, 195 : 1354 - 1367
  • [46] Numerical and experimental investigation of a hybrid solar still-solar air heater
    Ghazy, Ahmed
    DESALINATION AND WATER TREATMENT, 2023, 285 : 11 - 19
  • [47] Experimental Evaluation of a Photovoltaic/Thermal Air Heater with Metal Mesh-Integrated Thermal Energy Storage System
    Tuncer, Azim Dogus
    Gurbuz, Emine Yagiz
    Kecebas, Ali
    Georgiev, Aleksandar G.
    ENERGIES, 2023, 16 (08)
  • [48] Numerical simulation of an efficient circular solar air heater integrated with a CPC
    Addini, M. Moein
    Gandjalikhan Nassab, S.A.
    Thermal Science and Engineering Progress, 2024, 56
  • [49] Numerical Analysis of an Aerofoil Fin Integrated Double Pass Solar Air Heater for Thermal Performance Enhancement
    Nagaraj, Madhwesh
    Reddy, Manu Krishna
    Sheshadri, Arun Kumar Honnesara
    Karanth, Kota Vasudeva
    SUSTAINABILITY, 2023, 15 (01)
  • [50] A novel thermal storage integrated evacuated tube heat pipe solar air heater: Energy, exergy, economic and environmental impact analysis
    Abi Mathew, Adarsh
    Thangavel, Venugopal
    Solar Energy, 2021, 220 : 828 - 842