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Numerical investigation on improving the heat storage and transfer performance of ceramic /D-mannitol composite phase change materials by bionic graded pores and nanoparticle additives

Feng, Daili; Nan, Jianfu; Feng, Yanhui; Zhang, Xinxin; Yan, Yuying

Numerical investigation on improving the heat storage and transfer performance of ceramic /D-mannitol composite phase change materials by bionic graded pores and nanoparticle additives Thumbnail


Authors

Daili Feng

Jianfu Nan

Yanhui Feng

Xinxin Zhang

YUYING YAN YUYING.YAN@NOTTINGHAM.AC.UK
Professor of Thermofluids Engineering



Abstract

To speed up the thermal response rate of the latent heat storage system, this research draws on the ideas of bionics and proposes two methods to enhance the performance of heat storage and heat transfer during phase change process. First, a biomimetic, double-gradient porous ceramic was applied to assemble phase change material (PCM) D-mannitol. The optimized gradient pore structure ensures that the composite possesses higher effective thermal conductivity, and better uniformity of phase interface evolution, with reasonable heat storage density. Numerical simulation predicts a 226 % increase in effective thermal conductivity comparing with the pure D-mannitol. Then, two kinds of carbon-based nanoparticles were added to further reinforce the heat transfer performance. Results found that graphite nanoparticles provide the most significant enhancement in the effective thermal conductivity of the composite material under the premise of ensuring a higher heat storage density. In conclusion, the effective thermal conductivity of the final composite achieves 3.33-fold increase due to the collaboration of the double gradient pore framework and the additive graphite nanoparticles. Accordingly, the overall heat transfer rate could be raised by 4.2 times, comparing with the pure PCM sample. This work demonstrates that the bidirectional gradient pore skeleton has significant advantages in heat storage and transfer over the single pore and unidirectional gradient pore.

Journal Article Type Article
Acceptance Date Jul 15, 2021
Online Publication Date Jul 25, 2021
Publication Date Nov 1, 2021
Deposit Date Sep 27, 2021
Publicly Available Date Jul 26, 2022
Journal International Journal of Heat and Mass Transfer
Print ISSN 0017-9310
Publisher Elsevier BV
Peer Reviewed Peer Reviewed
Volume 179
Article Number 121748
DOI https://doi.org/10.1016/j.ijheatmasstransfer.2021.121748
Keywords Fluid Flow and Transfer Processes; Mechanical Engineering; Condensed Matter Physics
Public URL https://nottingham-repository.worktribe.com/output/6343088
Publisher URL https://www.sciencedirect.com/science/article/abs/pii/S001793102100853X?dgcid=rss_sd_all
Additional Information This article is maintained by: Elsevier; Article Title: Numerical investigation on improving the heat storage and transfer performance of ceramic /D-mannitol composite phase change materials by bionic graded pores and nanoparticle additives; Journal Title: International Journal of Heat and Mass Transfer; CrossRef DOI link to publisher maintained version: https://doi.org/10.1016/j.ijheatmasstransfer.2021.121748

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