Visualized-experimental investigation on the energy storage performance of PCM infiltrated in the metal foam with varying pore densities
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[1] Dawei Tang,et al. Influence of fin parameters on the melting behavior in a horizontal shell-and-tube latent heat storage unit with longitudinal fins , 2021 .
[2] Yuying Yan,et al. A review of phase change heat transfer in shape-stabilized phase change materials (ss-PCMs) based on porous supports for thermal energy storage , 2021, Renewable and Sustainable Energy Reviews.
[3] Ali J. Chamkha,et al. Hybrid thermal performance enhancement of a circular latent heat storage system by utilizing partially filled copper foam and Cu/GO nano-additives , 2020 .
[4] S. Panchal,et al. A novel battery thermal management system using nano-enhanced phase change materials , 2020, Energy.
[5] K. Vafai,et al. Thermal performance analysis of phase change materials (PCMs) embedded in gradient porous metal foams , 2020 .
[6] Dawei Tang,et al. Pore-scale investigation on the heat-storage characteristics of phase change material in graded copper foam , 2020 .
[7] Ya-Ling He,et al. Gradient design of pore parameters on the melting process in a thermal energy storage unit filled with open-cell metal foam , 2020 .
[8] Lei Shi,et al. Magnetic regulating the phase change process of Fe3O4-paraffin wax nanocomposites in a square cavity , 2020, Energy Conversion and Management.
[9] T. Akiyama,et al. A high-thermal-conductivity, high-durability phase-change composite using a carbon fibre sheet as a supporting matrix , 2020 .
[10] Shuai Li,et al. An experimental and numerical investigation on a paraffin wax/graphene oxide/carbon nanotubes composite material for solar thermal storage applications , 2020 .
[11] Hongyi Gao,et al. Carbon nanotube bundles assembled flexible hierarchical framework based phase change material composites for thermal energy harvesting and thermotherapy , 2020 .
[12] Hanxue Sun,et al. Fatty amines/graphene sponge form-stable phase change material composites with exceptionally high loading rates and energy density for thermal energy storage , 2020 .
[13] K. Jafarpur,et al. Performance improvements in solar flat plate collectors by integrating with phase change materials and fins: A CFD modeling , 2020 .
[14] Hailong Li,et al. Experimental study on the solidification process of fluid saturated in fin-foam composites for cold storage , 2019, Applied Thermal Engineering.
[15] S. Mahmud,et al. Influence of Pore Density and Porosity on the Melting Process of Bio-Based Nano-Phase Change Materials Inside Open-Cell Metal Foam , 2019, Journal of Thermal Science and Engineering Applications.
[16] A. Bhattacharya,et al. Effect of foam geometry on heat absorption characteristics of PCM-metal foam composite thermal energy storage systems , 2019, International Journal of Heat and Mass Transfer.
[17] Wei Yang,et al. High-performance composite phase change materials for energy conversion based on macroscopically three-dimensional structural materials , 2019, Materials Horizons.
[18] C. Nie,et al. Improving the melting performance of a horizontal shell-tube latent-heat thermal energy storage unit using local enhanced finned tube , 2019, Energy and Buildings.
[19] Xing Ju,et al. Numerical simulation of effective thermal conductivity and pore-scale melting process of PCMs in foam metals , 2019, Applied Thermal Engineering.
[20] Emmanuel C. Nsofor,et al. Simultaneous energy storage and recovery in the triplex-tube heat exchanger with PCM, copper fins and Al2O3 nanoparticles , 2019, Energy Conversion and Management.
[21] A. R. Darzi,et al. Melting and solidification of PCM embedded in porous metal foam in horizontal multi-tube heat storage system , 2018, Energy Conversion and Management.
[22] Dawit Gudeta Gunjo,et al. Melting enhancement of a latent heat storage with dispersed Cu, CuO and Al2O3 nanoparticles for solar thermal application , 2018, Renewable Energy.
[23] Kamaruzzaman Sopian,et al. Geometric and design parameters of fins employed for enhancing thermal energy storage systems: a review , 2018 .
[24] Ya-Ling He,et al. Pore-scale numerical simulation of fully coupled heat transfer process in porous volumetric solar receiver , 2017 .
[25] Liwu Fan,et al. A pore-scale visualized study of melting heat transfer of a paraffin wax saturated in a copper foam: Effects of the pore size , 2017 .
[26] Xiaohu Yang,et al. Solidification of fluid saturated in open-cell metallic foams with graded morphologies , 2016 .
[27] Subrata Sengupta,et al. Effect of porosity of conducting matrix on a phase change energy storage device , 2016 .
[28] Ming Li,et al. Effective thermal conductivity of open-cell metal foams impregnated with pure paraffin for latent heat storage , 2014 .
[29] Wei Li,et al. The effect of pore size and porosity on thermal management performance of phase change material infiltrated microcellular metal foams , 2014 .
[30] R. Ruoff,et al. Enhanced thermal conductivity of phase change materials with ultrathin-graphite foams for thermal energy storage , 2014 .
[31] K. Lafdi,et al. Experimental Study on the Influence of Foam Porosity and Pore Size on the Melting of Phase Change Materials , 2007 .
[32] C. Balaji,et al. Experimental and numerical investigations on the effect of porosity and PPI gradients of metal foams on the thermal performance of a composite phase change material heat sink , 2021 .
[33] Li Ma,et al. Thermal conductivity enhancement of phase change materials with 3D porous diamond foam for thermal energy storage , 2019, Applied Energy.