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Development of novel composite PCM for thermal energy storage using CaCl2·6H2O with graphene oxide and SrCl2·6H2O

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dc.contributor.author Xu, Xiaoxiao
dc.contributor.author Cui, Hongzhi
dc.contributor.author Memon, Shazim Ali
dc.contributor.author Yang, Haibin
dc.contributor.author Tang, Waiching
dc.creator Xiaoxiao, Xu
dc.date.accessioned 2017-12-26T09:50:41Z
dc.date.available 2017-12-26T09:50:41Z
dc.date.issued 2017-12-01
dc.identifier DOI:10.1016/j.enbuild.2017.09.081
dc.identifier.citation Xiaoxiao Xu, Hongzhi Cui, Shazim Ali Memon, Haibin Yang, Waiching Tang, Development of novel composite PCM for thermal energy storage using CaCl2·6H2O with graphene oxide and SrCl2·6H2O, In Energy and Buildings, Volume 156, 2017, Pages 163-172 en_US
dc.identifier.issn 03787788
dc.identifier.uri https://www.sciencedirect.com/science/article/pii/S0378778817332255
dc.identifier.uri http://nur.nu.edu.kz/handle/123456789/3065
dc.description.abstract Abstract The inorganic salt hydrate PCM, CaCl2·6H2O, has a promising potential for thermal energy storage. However, this salt hydrate has tremendous issues of supercooling (the supercooling degree was 25.5°C as found in this research) which restricts its utilization in practical applications. The present study aimed to reduce the supercooling degree of CaCl2·6H2O through the innovative use of hydrophilic graphene oxide (GO) nano-sheets and SrCl2·6H2O as nucleating agents. The percentages of these nucleating agents in PCM were 0.005, 0.01, 0.02, 0.05 and 0.08wt% for GO and 0.2, 0.5 and 0.8wt% for SrCl2·6H2O, respectively. Based on the synergistic/additive effects, a novel composite PCM based on CaCl2·6H2O, GO and SrCl2·6H2O was proposed and developed. The test results showed that the composite PCM containing 0.02wt% GO nano-sheets and 0.8wt% SrCl2·6H2O effectively lowered the supercooling degree of CaCl2·6H2O from 25.5°C to as low as 0.2°C (approximately 99.2% supercooling degree of CaCl2·6H2O was reduced). To the best of authors' knowledge, it was the first time that the combination of GO and SrCl2·6H2O was found effective in reducing supercooling degree of CaCl2·6H2O. Moreover, 99.2% supercooling reduction of CaCl2·6H2O is considered the best achievement so far when compared to other studies related to supercooling reduction of CaCl2·6H2O. Finally, the solidification enthalpy of the composite PCMs was found to be as high as 207.90J/g. Therefore, the developed composite PCM is an excellent candidate for thermal energy storage applications in buildings. en_US
dc.language.iso en en_US
dc.publisher Energy and Buildings en_US
dc.relation.ispartof Energy and Buildings
dc.subject Phase change materials en_US
dc.subject Supercooling en_US
dc.subject Graphene oxide en_US
dc.subject Calcium chloride hexahydrate en_US
dc.subject Strontium chloride hexahydrate en_US
dc.subject Thermal energy storage en_US
dc.title Development of novel composite PCM for thermal energy storage using CaCl2·6H2O with graphene oxide and SrCl2·6H2O en_US
dc.type Article en_US
dc.rights.license © 2017 Elsevier B.V. All rights reserved.
elsevier.identifier.doi 10.1016/j.enbuild.2017.09.081
elsevier.identifier.eid 1-s2.0-S0378778817332255
elsevier.identifier.pii S0378-7788(17)33225-5
elsevier.identifier.scopusid 85037086431
elsevier.volume 156
elsevier.coverdate 2017-12-01
elsevier.coverdisplaydate 1 December 2017
elsevier.startingpage 163
elsevier.endingpage 172
elsevier.openaccess 0
elsevier.openaccessarticle false
elsevier.openarchivearticle false
elsevier.teaser The inorganic salt hydrate PCM, CaCl2·6H2O, has a promising potential for thermal energy storage. However, this salt hydrate has tremendous issues of supercooling (the supercooling degree was 25.5°C...
elsevier.aggregationtype Journal
workflow.import.source science


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