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C/C-SiC component for metallic phase change materials
Authors:Veronika Stahl  Yuan Shi  Werner Kraft  Tim Lanz  Peter Vetter  Raouf Jemmali  Fiona Kessel  Dietmar Koch
Affiliation:1. Institute of Vehicle Concepts, German Aerospace Center, Stuttgart, Germany;2. Institute of Structures and Design, German Aerospace Center, Stuttgart, Germany;3. Institute of Materials Resource Management, University of Augsburg, Augsburg, Germany
Abstract:Thanks to their high energy density and thermal conductivity, metallic Phase Change Materials (mPCM) have shown great potential to improve the performance of thermal energy storage systems. However, the commercial application of mPCM is still limited due to their corrosion behavior with conventional container materials. This work first addresses on a fundamental level, whether carbon-based composite-ceramics are suitable for corrosion critical components in a thermal storage system. The compatibility between the mPCM AlSi12 and the Liquid Silicon Infiltration (LSI)-based carbon fiber reinforced silicon carbide (C/C-SiC) composite is then investigated via contact angle measurements, microstructure analysis, and mechanical testing after exposure. The results reveal that the C/C-SiC composite maintains its mechanical properties and microstructure after exposure in the strongly corrosive mPCM. Based on these results, efforts were made to design and manufacture a container out of C/C-SiC for the housing of mPCM in vehicle application. The stability of the component filled with mPCM was proven nondestructively via computer tomography (CT). Successful thermal input- and output as well as thermal storage ability were demonstrated using a system calorimeter under conditions similar to the application. The investigated C/C-SiC composite has significant application potential as a structural material for thermal energy storage systems with mPCM.
Keywords:ceramic matrix composites (CMCs)  corrosion  joints/joining  mechanical properties
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