Experimental and numerical investigation of a rectangular finned-tube latent heat storage unit for Carnot battery

被引:7
作者
Zheng, Siyu [1 ]
Li, Songrui [1 ]
Li, Meng [1 ]
Dai, Rui [1 ]
Wei, Mingshan [1 ]
Tian, Ran [1 ]
机构
[1] Beijing Inst Technol, Sch Mech Engn, Beijing 100081, Peoples R China
基金
中国国家自然科学基金;
关键词
Carnot battery system; Latent heat storage; Composite phase change material; Numerical simulation; Experimental research; THERMAL-ENERGY STORAGE; PHASE-CHANGE MATERIALS; CONDUCTIVITY ENHANCEMENT; COMPOSITE; SYSTEM; TECHNOLOGY; EXCHANGER; FINS; PART;
D O I
10.1016/j.est.2023.108092
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
Latent heat storage technology has a great potential in Carnot battery systems, and its thermal performance directly affects the system performance. In this paper, a rectangular phase change heat storage unit with finned tube structure is designed and manufactured, and polyethylene wax/expanded graphite is adopted as the composite phase change material. The thermophysical properties of the polyethylene wax are characterized by experiments first, and then the heat transfer performance of the unit is investigated through varying inlet mass flow rates and inlet temperature on the test rig. Meanwhile, the detailed evolution of the phase change process is visualized and obtained by corresponding numerical simulations. Furthermore, the effects and selection principle of fin number, thickness, and material on the melting process are clarified by numerical simulations. Results shows that the influence of the inlet temperature is more significant than the mass flow rate on the melting/ solidification time, however, changing the inlet temperature and mass flow rate has little effect on melting/ solidifying the last 10 % of PCM. Heat conduction dominated the heat transfer process due to the high viscosity of polyethylene wax, inducing little stratification of the temperature distribution in the regions bounded by fins. The regions close to the corners and sidewalls are the primary factors delaying melting/solidification rate. Increasing fin number and thickness can effectively decrease the melting/solidification time at the expense of the heat storage capacity. Compared to selecting only high thermal conductivity fin materials, adopting fins with high thermal conductivity, low density, and low specific heat is a better approach for achieving higher heat storage capacity and shorter melting time. The present study explores candidate materials for medium-low temperature latent heat storage and potential applications of traditional finned-tube heat exchangers in medium-low temperature latent heat storage.
引用
收藏
页数:17
相关论文
共 37 条
[1]   Pumped thermal energy storage and bottoming system part A: Concept and model [J].
Abarr, Miles ;
Geels, Brendan ;
Hertzberg, Jean ;
Montoya, Lupita D. .
ENERGY, 2017, 120 :320-331
[2]   Experimental and numerical study of solidifying phase-change material in a triplex-tube heat exchanger with longitudinal/triangular fins [J].
Abdulateef, Ammar M. ;
Abdulateef, Jasim ;
Mat, Sohif ;
Sopian, Kamaruzzaman ;
Elhub, Bashir ;
Mussa, Munther Abdullah .
INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER, 2018, 90 :73-84
[3]   Polyurethane-based flexible and conductive phase change composites for energy conversion and storage [J].
Aftab, Waseem ;
Mahmood, Asif ;
Guo, Wenhan ;
Yousaf, Muhammad ;
Tabassum, Hassina ;
Huang, Xinyu ;
Liang, Zibin ;
Cao, Anyuan ;
Zou, Ruqiang .
ENERGY STORAGE MATERIALS, 2019, 20 :401-409
[4]   Numerical study of integrated latent heat thermal energy storage devices using nanoparticle-enhanced phase change materials [J].
Akhmetov, B. ;
Navarro, M. E. ;
Seitov, A. ;
Kaltayev, A. ;
Bakenov, Z. ;
Ding, Y. .
SOLAR ENERGY, 2019, 194 :724-741
[5]   Review of energy storage services, applications, limitations, and benefits [J].
Al Shaqsi, Ahmed Zayed ;
Sopian, Kamaruzzaman ;
Al-Hinai, Amer .
ENERGY REPORTS, 2020, 6 :288-306
[6]   Numerical investigation and experimental validation of the thermal performance enhancement of a compact finned-tube heat exchanger for efficient latent heat thermal energy storage [J].
Amagour, Mohamed El Habib ;
Bennajah, Mounir ;
Rachek, Adil .
JOURNAL OF CLEANER PRODUCTION, 2021, 280
[7]  
Ansys I, 2022, ANS FLUENT US GUID
[8]   A charging time energy fraction method for evaluating the performance of a latent thermal energy storage heat exchanger [J].
Beyne, Wim ;
Couvreur, Kenny ;
Jollyn, Ilya T' ;
Tassenoy, Robin ;
Lecompte, Steven ;
De Paepe, Michel .
APPLIED THERMAL ENGINEERING, 2021, 195
[9]   Study of thermal conductive enhancement mechanism and selection criteria of carbon-additive for composite phase change materials [J].
Cheng, Wen-Long ;
Li, Wan-Wan ;
Nian, Yong-Le ;
Xia, Wei-dong .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2018, 116 :507-511
[10]   Organic Rankine Energy Storage (ORES) system [J].
de Oliveira Junior, Maury M. ;
Maia, Antonio A. T. ;
Porto, Matheus P. .
ENERGY, 2020, 204 (204)