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        Modeling of the Phase Change Material of a Hybrid Storage using the Finite Element Method

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        Author(s)
        Kasper, Lukas
        Language
        English
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        Abstract
        To increase the efficiency of energy-intensive industrial processes, thermal energy storages can offer new possibilities. In recent years, especially latent heat thermal energy storages, exploiting the high energy density of phase change material (PCM), are becoming widely applied in industry. A novel approach is investigated in the project HyStEPs, funded by the Austrian Research Promotion Agency (FFG) with grant number 868842. In this concept, containers filled with PCM are placed at the shell surface of a Ruths steam storage, to increase storage efficiency. In this work, a two-dimensional model using the finite element method is developed to simulate the PCM of the hybrid storage as designed in the HyStEPs project. The apparent heat capacity method is applied in a MATLAB implementation, considering heat transfer by both conduction and natural convection. This successfully validated code can handle any desired layout of materials arranged on a rectangular domain. Furthermore, a parameter study of different dimensions and orientations of the PCM cavity was conducted. The impact of natural convection was found to lead to significantly varying behaviour of the studied cavities with different orientation during the charging process, while it was found to be negligible during the discharging process.
        URI
        https://library.oapen.org/handle/20.500.12657/49581
        Keywords
        latent heat storage; hybrid storage; finite element method; phase change; numerical modeling
        DOI
        10.34727/2020/isbn.978-3-85448-037-2
        ISBN
        9783854480372, 9783854480372
        Publisher
        TU Wien Academic Press
        Publisher website
        https://www.tuwien.at/academicpress/
        Publication date and place
        Vienna, 2020
        Imprint
        TU Wien Academic Press
        Classification
        Electrical engineering
        Heat transfer processes
        Thermodynamics and heat
        Computer modelling and simulation
        Pages
        149
        Rights
        https://creativecommons.org/licenses/by-sa/4.0/
        • Imported or submitted locally

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        License

        • If not noted otherwise all contents are available under Attribution 4.0 International (CC BY 4.0)

        Credits

        • logo EU
        • This project received funding from the European Union's Horizon 2020 research and innovation programme under grant agreement No 683680, 810640, 871069 and 964352.

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