DOE OSTI · 3452343
In-situ observation of calcium chloride hexahydrate phase separation via neutron imaging
Abstract
Inorganic salt hydrate offers a low-cost thermal energy storage solution with high energy density, but phase separation during thermal cycling poses a significant challenge, leading to irreversible performance degradation. In this research, neutron radiography was used to investigate phase separation in calcium chloride hexahydrate (CaCl₂·6H₂O, CCH) during thermal cycling to track its gradual accumulation into calcium chloride tetrahydrate (CaCl₂·4H₂O, CC4). Through in-situ visualization, phase separation and CC4 sedimentation were observed to occur during the cooling phase between 301.40 K and 304.80 K. CC4 accumulated linearly to 7.99 wt% after 10 thermal cycles. Crystallization and multi-cycle conversion models were developed to validate neutron imaging results of CC4 formation. The predicted CC4 content after 10 thermal cycles closely aligned with experimental observations. Neutron imaging offers a novel approach to investigate salt hydrate phase change materials (PCMs). It enables in-situ visualization of sub-hydrate (CC4) formation from original hydrate (CCH) in metastable phase change range (between 301.40 ± 0.66 K and 304.80 ± 0.60 K). Thereby, it provides a new insight of understanding the basis of phase separation mechanism and paves the way for future research of improving PCM thermal cycling performance.
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Li, Yucen [The University of Tennessee, Knoxville], Brooks, Adam [ORNL], Zhang, Yuxuan [ORNL] (ORCID:0000000200831408), Li, Xiangyu [University of Tennessee, Knoxville (UTK)], Zhou, Hongyu [University of Tennessee, Knoxville (UTK)]. 2026-05-01. In-situ observation of calcium chloride hexahydrate phase separation via neutron imaging. https://doi.org/10.1016/j.est.2026.122499
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