Experimental Analysis of Salt Hydrate Latent Heat Thermal Energy Storage System With Porous Aluminum Fabric and Salt Hydrate as Phase Change Material With Enhanced Stability and Supercooling

被引:17
作者
Kumar, Navin [1 ,2 ]
Von Ness, Ryan [1 ]
Chavez, Reynaldo, Jr. [1 ]
Banerjee, Debjyoti [1 ]
Muley, Arun [3 ]
Stoia, Michael [3 ]
机构
[1] Texas A&M Univ, Dept Mech Engn, College Stn, TX 77840 USA
[2] Oak Ridge Natl Lab, Oak Ridge, TN 37830 USA
[3] Boeing Co, Thermal Management Div, Huntington Beach, CA 92647 USA
来源
JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME | 2021年 / 143卷 / 04期
关键词
salt hydrates; latent heat thermal energy storage; lithium nitrate trihydrate; compact heat exchanger; thermal conductivity; supercooling; homogenous; heterogenous; energy conversion; systems; energy storage systems; heat energy generation; storage; transfer; renewable energy; PCM; CONDUCTIVITY; RELIABILITY; HEXAHYDRATE; IMPROVEMENT; COMPOSITE; GRAPHITE;
D O I
10.1115/1.4048122
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
Phase change materials (PCMs), especially salt hydrates possess high volumetric energy storage capacity in their transition temperature range. These materials are used in applications where it is necessary to store thermal energy due to temporary load shift between demand and availability. Thus, possible applications are HVAC, recovery of waste heat, and defense thermal management. Despite salt hydrates potential, the practical feasibility of latent heat storage with salt hydrates is limited due to low power rating, supercooling, phase segregation, and long-term stability. Its low power rating and long-term stability limits its application in most applications. This work experimentally validates the stability and thermal performance of a compact heat exchanger charged with salt hydrate during melting and freezing. The compact heat exchanger was designed with fins on both the heat transfer fluid (HTF) and salt hydrate PCM side. The thermal performance of the latent heat thermal energy storage system (LHTESS) was evaluated for various operating conditions. The results show that LHTESS could achieve an average heat transfer coefficient of 124 and 87 W/(m(2) K) during melting and solidification, respectively. The stability of the system in suppressing supercooling was validated over 800 cycles with nucleating agent and active homogenous nucleation techniques. The supercooling was reduced to 3 degrees C with zinc hydroxyl nitrate as nucleating agent and less than 1 degrees C with the active homogenous nucleation technique. The LHTESS showed less than 6% degradation in energy storage capacity over 800 cycles.
引用
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页数:10
相关论文
共 34 条
[1]  
Banerjee D, 2018, P 17 INT C THERM THE
[2]  
Bauer D., 2014, WATER ENERGY NEXUS C
[3]   Experimentation with a water tank including a PCM module [J].
Cabeza, LF ;
Ibáñez, M ;
Solé, C ;
Roca, J ;
Nogués, M .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2006, 90 (09) :1273-1282
[4]  
Dong X, 2018, MAT BASEL, V11, P1
[5]   CaCl2•6H2O/Expanded graphite composite as form-stable phase change materials for thermal energy storage [J].
Duan, Zhi-jun ;
Zhang, Huan-zhi ;
Sun, Li-xian ;
Cao, Zhong ;
Xu, Fen ;
Zou, Yong-jin ;
Chu, Hai-liang ;
Qiu, Shu-jun ;
Xiang, Cui-li ;
Zhou, Huai-ying .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2014, 115 (01) :111-117
[6]   Thermal characterization of a heat exchanger equipped with a combined material of phase change material and metallic foams [J].
Ferfera, Ratiba Sabrina ;
Madani, Brahim .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2020, 148
[7]   Experimental comparison of two heat exchanger concepts for latent heat storage applications [J].
Frazzica, Andrea ;
Palomba, Valeria ;
La Rosa, Davide ;
Brancato, Vincenza .
11TH INTERNATIONAL RENEWABLE ENERGY STORAGE CONFERENCE, IRES 2017, 2017, 135 :183-192
[8]   Improvement of supercooling and thermal conductivity of the sodium acetate trihydrate for thermal energy storage with α-Fe2O3 as addictive [J].
He, Yu ;
Zhang, Nan ;
Yuan, Yanping ;
Cao, Xiaoling ;
Sun, Liangliang ;
Song, Yanlin .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2018, 133 (02) :859-867
[9]  
Helmns A, 2017, PROCEEDINGS OF THE ASME SUMMER HEAT TRANSFER CONFERENCE, 2017, VOL 1
[10]  
Kline S.J., 1952, ASME Mechanical Engineering, V75, P3, DOI DOI 10.1016/J.CHAOS.2005.11.046