Impact of size and thermal gradient on supercooling of phase change materials for thermal energy storage

被引:32
作者
Lilley, Drew [1 ,2 ]
Lau, Jonathan [1 ]
Dames, Chris [1 ,2 ]
Kaur, Sumanjeet [1 ]
Prasher, Ravi [1 ,2 ]
机构
[1] Lawrence Berkeley Natl Lab, Energy Technol Area, Berkeley, CA 94720 USA
[2] Univ Calif Berkeley, Dept Mech Engn, Berkeley, CA 94720 USA
关键词
Phase change materials; PCM; Thermal energy storage; Subcooling; Supercooling; Crystallization;
D O I
10.1016/j.apenergy.2021.116635
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 material based thermal energy storage has many current and potential applications in the heating and cooling of buildings, battery and electronics thermal management, thermal textiles, and dry cooling of power plants. However, connecting lab scale thermal data obtained with differential scanning calorimetry (DSC) to the performance of large-scale practical systems has been a major challenge primarily due to the dependence of supercooling on the size and temperature gradient of the system. In this work we show how a phase change material's supercooling behavior can be characterized experimentally using common lab scale thermal analysis techniques. We then develop a statistics based theoretical model that uses the lab-scale data on small samples to quantitatively predict the supercooling performance for a general thermal energy storage application of any size, including also allowing for the possibility of temperature gradients. Finally, we validate the modeling methodology by comparing to experimental results for solid-solid phase change in neopentyl glycol, which shows how the model successfully predicts the changes in supercooling temperature across a large range of cooling rates (2 orders of magnitude) and volumes (3 orders of magnitude). By accounting for thermal gradients, the model avoids similar to 2x error incurred by lumped approximations.
引用
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页数:8
相关论文
共 32 条
[1]  
Ankit Gupta ASB, 2018, THERMAL ENERGY STORA
[2]   Probability of Nucleation in a Metastable Zone: Induction Supersaturation and Implications [J].
Bhamidi, Venkateswarlu ;
Kenis, Paul J. A. ;
Zukoski, Charles F. .
CRYSTAL GROWTH & DESIGN, 2017, 17 (03) :1132-1145
[3]   Combined experimental and numerical evaluation of a prototype nano-PCM enhanced wallboard [J].
Biswas, Kaushik ;
Lu, Jue ;
Soroushian, Parviz ;
Shrestha, Som .
APPLIED ENERGY, 2014, 131 :517-529
[4]   Nucleation Barriers for the Liquid-To-Crystal Transition in Ni: Experiment and Simulation [J].
Bokeloh, J. ;
Rozas, R. E. ;
Horbach, J. ;
Wilde, G. .
PHYSICAL REVIEW LETTERS, 2011, 107 (14)
[5]  
Bokeloh J, HIGH PRECISION NUCLE, DOI [10.1007/s11837-014-1027-7, DOI 10.1007/S11837-014-1027-7]
[6]   Experimental assessment of a phase change material storage tank [J].
D'Avignon, Katherine ;
Kummert, Michael .
APPLIED THERMAL ENGINEERING, 2016, 99 :880-891
[7]   Thermal energy storage for low and medium temperature applications using phase change materials - A review [J].
da Cunha, Jose Pereira ;
Eames, Philip .
APPLIED ENERGY, 2016, 177 :227-238
[8]   Crystalline nucleation in undercooled liquids: A Bayesian data-analysis approach for a nonhomogeneous Poisson process [J].
Filipponi, A. ;
Di Cicco, A. ;
Principi, E. .
PHYSICAL REVIEW E, 2012, 86 (05)
[9]   Subcooling in PCM emulsions - Part 2: Interpretation in terms of nucleation theory [J].
Guenther, Eva ;
Huang, Li ;
Mehling, Harald ;
Doetsch, Christian .
THERMOCHIMICA ACTA, 2011, 522 (1-2) :199-204
[10]   Searching for a Better Thermal Battery [J].
Gur, Ilan ;
Sawyer, Karma ;
Prasher, Ravi .
SCIENCE, 2012, 335 (6075) :1454-1455