Enhancement of Thermal Conductivity in Phase Change Materials for Thermal Energy Storage Applications: A Comprehensive Review

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Main Authors: Nidhi, Kumar, Jayesh
Format: Recurso digital
Published: Zenodo 2025
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author Nidhi
Kumar, Jayesh
author_facet Nidhi
Kumar, Jayesh
contents <p><span lang="EN-US">Phase Change Materials (PCMs) are widely recognized for their high latent heat capacity and stable thermal performance, making them ideal for thermal energy storage (TES) applications. However, their inherently low thermal conductivity limits charging and discharging rates, reducing system efficiency. This review presents recent advancements in enhancing the thermal conductivity of PCMs through nanoparticle dispersion, structural modification, and hybrid enhancement strategies. Studies involving metallic and metal oxide nanoparticles (Cu, Al₂O₃, Ag, CuO), carbon-based nanomaterials (graphene, CNTs, graphite), and novel nanostructures (MnO₂ nanowires/nanotubes) are discussed. The effects of nanoparticle type, concentration, container geometry, and hybrid systems combining fins, heat pipes, and nanoparticles are systematically analyzed. The review concludes that graphene-based and MnO₂-based nanocomposites offer superior thermal performance with minimal impact on latent heat, making them promising candidates for future TES technologies.</span></p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_17642076
institution Zenodo
language
publishDate 2025
publisher Zenodo
record_format zenodo
spellingShingle Enhancement of Thermal Conductivity in Phase Change Materials for Thermal Energy Storage Applications: A Comprehensive Review
Nidhi
Kumar, Jayesh
<p><span lang="EN-US">Phase Change Materials (PCMs) are widely recognized for their high latent heat capacity and stable thermal performance, making them ideal for thermal energy storage (TES) applications. However, their inherently low thermal conductivity limits charging and discharging rates, reducing system efficiency. This review presents recent advancements in enhancing the thermal conductivity of PCMs through nanoparticle dispersion, structural modification, and hybrid enhancement strategies. Studies involving metallic and metal oxide nanoparticles (Cu, Al₂O₃, Ag, CuO), carbon-based nanomaterials (graphene, CNTs, graphite), and novel nanostructures (MnO₂ nanowires/nanotubes) are discussed. The effects of nanoparticle type, concentration, container geometry, and hybrid systems combining fins, heat pipes, and nanoparticles are systematically analyzed. The review concludes that graphene-based and MnO₂-based nanocomposites offer superior thermal performance with minimal impact on latent heat, making them promising candidates for future TES technologies.</span></p>
title Enhancement of Thermal Conductivity in Phase Change Materials for Thermal Energy Storage Applications: A Comprehensive Review
url https://doi.org/10.5281/zenodo.17642076