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A multi-functional graphite/epoxy-based thermal energy storage composite for temperature control of sensors and electronics

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TLDR
In this article, a multi-functional plate-like lamination that combines a thermal energy storage capability with a structural capability is described, which consists of a paraffin impregnated porous graphitic core (the energy storage volume) encapsulated between rigid graphite/epoxy composite skins.
Abstract
A novel multi-functional plate-like lamination that combines a thermal energy storage capability with a structural capability is described. The lamination consists of a paraffin impregnated porous graphitic core (the energy storage volume) encapsulated between rigid graphite/epoxy composite skins. Heat storage is via solid-liquid phase transition of the paraffin. Stacked laminations form a sandwich structure. A thermal response model shows that the graphite foam is an effective thermal conductivity enhancer to the imbedded paraffin. It will effectively immobilize liquid paraffin so that the thermal storage process will be unaffected by up to a 10g load. Furthermore, the foam can accommodate the relatively large specific volume change that accompanies paraffin phase transition. However, it does so at the expense of reduced thermal performance. Structural analysis shows that graphitic foam has a low strength and elasticity modulus, and the material displays tension-compression asymmetry. The paraffin fill is shown to increase the compressive ultimate strength and elasticity modulus. The use of carbon fiber/epoxy skin greatly enhances the overall strength of the structure.

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Journal ArticleDOI

Heat transfer enhancement of paraffin wax using graphite foam for thermal energy storage

TL;DR: In this paper, the performance of Paraffin-Graphite Foams (GFs) as a thermal energy storage system was characterized, their structure, thermal diffusivity and latent heat were characterized.
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Carbon Foam Matrices Saturated with PCM for Thermal Protection Purposes

TL;DR: In this paper, numerical and experimental studies are proposed to predict and investigate the thermal characteristics of a thermal protection system consisting of carbon foam matrix saturated with phase change material, PCM.
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Heat transfer enhancement of paraffin wax using compressed expanded natural graphite for thermal energy storage

TL;DR: In this paper, the performance of the paraffin wax/CENG composites as a thermal energy storage system was characterized. And the authors found that the thermal conductivity of the composites can be 28-180× that of the pure paraffIN wax.
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Polymeric phase change composites for thermal energy storage

TL;DR: In this paper, a group of thermal energy storage (TES) composites that combine TES and structural functionality are described. But the composites are encapsulations of low melt temperature phase change materials (PCM) such as paraffin waxes in polymer matrices.
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Multifunctional materials: engineering applications and processing challenges.

TL;DR: In this paper, the authors present the presentation of various multifunctional materials reported in the literature and the processing means developed, focusing on the presentation and processing of different types of materials.
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