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Effect of gradient metal foam on phase change heat storage process under constant rotation condition: A numerical study

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  • Huang, Xinyu
  • Liu, Zemin
  • Lu, Liu
  • Wang, Qihui
  • Li, Bo
  • Yang, Xiaohu
  • Li, Hailong

Abstract

To address the issue of uneven phase transition and slow melting rates of phase change materials during heat storage, a combination of active rotation and gradient metal foam is proposed for enhanced heat transfer in active and passive composites. The phase change energy storage unit is divided into three different regions, which are modeled numerically based on the enthalpy hole method, and implemented in the commercial software Fluent 2023. A numerical model of the melting process of a horizontal energy storage unit with metal foam under constant rotation is established. The impact of positive, non-gradient, and negative gradient pore combinations on the unit's average temperature, liquid phase rate, thermal capacity, and rate of heat storage is analyzed. The response and interaction between gradient pore combinations and pore density on melting time and average heat storage rate are further investigated using the Taguchi design method. The findings reveal that, with constant pore density, the positive gradient porosity combination has a more significant influence on melting time compared to non-gradient and negative gradient pore structures. Specifically, the optimal melting time for Case 12 (porosity combination 0.97-0.98-0.99, 30 PPI) is 13.17 % and 45.95 % lower than that of non-gradient structure Case 13 and negative gradient structure Case 14, respectively. Furthermore, Case 12 exhibits an average heat storage rate increase of 15.72 % and 86.06 % compared to Case 13 and Case 14, respectively.

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  • Huang, Xinyu & Liu, Zemin & Lu, Liu & Wang, Qihui & Li, Bo & Yang, Xiaohu & Li, Hailong, 2025. "Effect of gradient metal foam on phase change heat storage process under constant rotation condition: A numerical study," Energy, Elsevier, vol. 324(C).
  • Handle: RePEc:eee:energy:v:324:y:2025:i:c:s0360544225014811
    DOI: 10.1016/j.energy.2025.135839
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    References listed on IDEAS

    as
    1. Ding, Zhixiong & Wu, Wei, 2025. "Large-temperature-lift energy storage heat transformer for deep thermal energy utilization," Applied Energy, Elsevier, vol. 384(C).
    2. Chen, Wei-Hsin & Carrera Uribe, Manuel & Kwon, Eilhann E. & Lin, Kun-Yi Andrew & Park, Young-Kwon & Ding, Lu & Saw, Lip Huat, 2022. "A comprehensive review of thermoelectric generation optimization by statistical approach: Taguchi method, analysis of variance (ANOVA), and response surface methodology (RSM)," Renewable and Sustainable Energy Reviews, Elsevier, vol. 169(C).
    3. Mahon, Harry & O'Connor, Dominic & Friedrich, Daniel & Hughes, Ben, 2022. "A review of thermal energy storage technologies for seasonal loops," Energy, Elsevier, vol. 239(PC).
    4. L. Kruitwagen & K. T. Story & J. Friedrich & L. Byers & S. Skillman & C. Hepburn, 2021. "A global inventory of photovoltaic solar energy generating units," Nature, Nature, vol. 598(7882), pages 604-610, October.
    5. Li, Zhi & Lu, Yiji & Huang, Rui & Chang, Jinwei & Yu, Xiaonan & Jiang, Ruicheng & Yu, Xiaoli & Roskilly, Anthony Paul, 2021. "Applications and technological challenges for heat recovery, storage and utilisation with latent thermal energy storage," Applied Energy, Elsevier, vol. 283(C).
    6. Yang, Chao & Xu, Xing-Rong & Bake, Maitiniyazi & Wu, Chun-Mei & Li, You-Rong & Zheng, Zhang-Jing & Yu, Jia-Jia, 2024. "Numerical investigation and optimization of the melting performance of latent heat thermal energy storage unit strengthened by graded metal foam and mechanical rotation," Renewable Energy, Elsevier, vol. 227(C).
    7. Iain Staffell & Stefan Pfenninger & Nathan Johnson, 2023. "A global model of hourly space heating and cooling demand at multiple spatial scales," Nature Energy, Nature, vol. 8(12), pages 1328-1344, December.
    8. Zhu, Rongsheng & Jing, Dalei, 2024. "Numerical study on the discharging performance of a latent heat thermal energy storage system with fractal tree-shaped convergent fins," Renewable Energy, Elsevier, vol. 221(C).
    9. Moaveni, Arman & Siavashi, Majid & Mousavi, Sepehr, 2024. "Passive and hybrid battery thermal management system by cooling flow control, employing nano-PCM, fins, and metal foam," Energy, Elsevier, vol. 288(C).
    10. Zhou, Shaobin & Dai, Hui & Chen, Hongming & Li, Xuefang & Niu, Pingping & He, Suoying & Wang, Wenlong & Gao, Ming, 2024. "Influence of the inner tube rotation and translation associated movement on the charging performance for the latent heat thermal energy storage exchangers," Renewable Energy, Elsevier, vol. 237(PA).
    11. Huang, Xinyu & Liu, Zemin & Gao, Xinyu & Xie, Yuan & Gao, Jiayi & Yang, Xiaohu, 2025. "Application of actively enhanced solar phase change heat storage system in building heating: A numerical and statistical optimization study," Renewable Energy, Elsevier, vol. 241(C).
    12. Jackson Lord & Ashley Thomas & Neil Treat & Matthew Forkin & Robert Bain & Pierre Dulac & Cyrus H. Behroozi & Tilek Mamutov & Jillia Fongheiser & Nicole Kobilansky & Shane Washburn & Claudia Truesdell, 2021. "Global potential for harvesting drinking water from air using solar energy," Nature, Nature, vol. 598(7882), pages 611-617, October.
    13. Huang, Xinyu & Li, Ze & Xie, Yuan & Gao, Jiayi & Yang, Xiaohu & Li, Ming-Jia, 2024. "Phase change heat storage and enhanced heat transfer based on metal foam under unsteady rotation conditions," Energy, Elsevier, vol. 306(C).
    14. Jiang, Ruicheng & Qian, Gao & Li, Zhi & Yu, Xiaoli & Lu, Yiji, 2024. "Progress and challenges of latent thermal energy storage through external field-dependent heat transfer enhancement methods," Energy, Elsevier, vol. 304(C).
    15. Mohamad, Farihan & Teh, Jiashen & Lai, Ching-Ming, 2021. "Optimum allocation of battery energy storage systems for power grid enhanced with solar energy," Energy, Elsevier, vol. 223(C).
    16. Palacios, A. & Barreneche, C. & Navarro, M.E. & Ding, Y., 2020. "Thermal energy storage technologies for concentrated solar power – A review from a materials perspective," Renewable Energy, Elsevier, vol. 156(C), pages 1244-1265.
    17. Merabet, Nour Hane & Kerboua, Kaouther & Hoinkis, Jan, 2024. "Hydrogen production from wastewater: A comprehensive review of conventional and solar powered technologies," Renewable Energy, Elsevier, vol. 226(C).
    Full references (including those not matched with items on IDEAS)

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