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Experimental and numerical study of latent heat thermal energy storage with high porosity metal matrix under intermittent heat loads

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dc.contributor.author KUMAR, A
dc.contributor.author SAHA, SK
dc.date.accessioned 2021-03-19T16:57:32Z
dc.date.available 2021-03-19T16:57:32Z
dc.date.issued 2020
dc.identifier.citation APPLIED ENERGY 263 en_US
dc.identifier.issn 0306-2619
dc.identifier.issn 1872-9118
dc.identifier.uri https://doi.org/10.1016/j.apenergy.2020.114649
dc.identifier.uri http://localhost:8080/xmlui/handle/100/35003
dc.description.abstract The potential mismatch between the ever-increasing demand for usable energy and characteristically intermittent supply from the renewable energy sources can be effectively reduced by latent heat thermal energy storage system (LHTES) using phase change material (PCM). The low thermal conductivity of PCM leads to thermal stratification in LHTES. In the present study, a lab-scale shell and tube LHTES with the metal matrix as thermal conductivity enhancer is designed for medium temperature solar applications (similar to 200 degrees C) and the thermal performance of LHTES is evaluated for different operating conditions. A commercial-grade organic PCM and metal matrix are placed in the annulus, while a commercially available thermic oil used as a heat transfer fluid (HTF), flows through the finned internal tube. A simplified dynamic numerical model comprising of two energy equations is developed considering the absence of local thermal equilibrium between PCM and HTF. A newly developed correlation for interfacial heat transfer coefficient and the effective thermal conductivity of PCM and metal matrix are introduced in the model, which is validated against the experiment. The model is extended to study the effect of porosity of metal matrix on the dynamic performance of LHTES under several cycles of charging and discharging operations. It is found that at a porosity of 0.85, the fluctuation in HTF outlet temperature is less with an improvement in cumulative energy fraction. A significant saving of computational time can be achieved for large scale simulations of LHTES with metal matrix using the simplified dynamic model with reasonable accuracy. en_US
dc.language.iso English en_US
dc.publisher ELSEVIER SCI LTD en_US
dc.subject PHASE CHANGE MATERIAL en_US
dc.subject METAL MATRIX en_US
dc.subject THERMAL STORAGE en_US
dc.subject DYNAMIC MODEL en_US
dc.subject INTERFACIAL HEAT TRANSFER COEFFICIENT en_US
dc.subject EFFECTIVE THERMAL CONDUCTIVITY en_US
dc.subject PHASE-CHANGE MATERIALS en_US
dc.subject CHANGE MATERIALS PCMS en_US
dc.subject TRANSFER ENHANCEMENT en_US
dc.subject NATURAL-CONVECTION en_US
dc.subject FOAM en_US
dc.subject PERFORMANCE en_US
dc.subject CONDUCTIVITY en_US
dc.subject GRAPHITE en_US
dc.subject SYSTEM en_US
dc.subject SOLIDIFICATION en_US
dc.title Experimental and numerical study of latent heat thermal energy storage with high porosity metal matrix under intermittent heat loads en_US
dc.type Article en_US


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