Phase change materials (PCMs) are widely used in thermal management and energy storage applications but are limited by low thermal conductivity. Existing methods for fabricating expanded graphite (EG)/paraffin composites face challenges including complex processing, limited thermal conductivity enhancement, poor uniformity, and low scalability. This study presents a novel fabrication method combining wet powder rolling mixing and vacuum impregnation. Effects of EG content, bulk density, and fillers on thermal conductivity are investigated. Results show that EG/paraffin composites exhibit high uniformity and improved thermal properties. Thermal conductivity increases with EG content in both horizontal (kxy) and vertical (kz) directions, plateauing beyond 9 wt%. Anisotropic behavior is observed, with kxy increasing more significantly than kz, particularly beyond 15 wt%. At 20 wt% EG, kxy and kz reach 5.9 W m−1 K−1 and 4.5 W m−1 K−1, respectively, approximately 30 times higher than that of pure paraffin. Thermal conductivity also increases with bulk density, plateauing beyond 705 kg m−3, with kxy slightly exceeding kz. Adding fillers such as graphene nanoplatelets or boron nitride further enhances thermal conductivity. The composites exhibit robust thermal storage/release capacity and stability. This study offers a scalable, cost-effective approach to produce PCM composites with advanced thermal properties for large-scale applications.
Zhang et al. (Sat,) studied this question.
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