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对克努森效应和电磁效应影响封闭介孔金属凝胶热导率的微观洞察。

Microscopic Insight into Knudsen and Electromagnetic Effects on Thermal Conductivity of Closed Mesoporous Metal Gels.

作者信息

Yu Haiyan, Guo Ning, Chen Anqi, Li Mingdong, Zhang Haochun, Du Mu

机构信息

Institute of Thermal Science and Technology, Shandong University, Jinan 250061, China.

School of Energy Science and Engineering, Harbin Institute of Technology, Harbin 150001, China.

出版信息

Gels. 2025 Sep 15;11(9):739. doi: 10.3390/gels11090739.

Abstract

Accurate thermal characterization of closed mesoporous metal gels is vital for high-temperature uses, yet microscale effects often ignored in macroscopic models significantly impact heat transfer. This study introduces a new predictive method based on an equivalent Voronoi model, accounting for the Knudsen effect and microscale electromagnetic interactions. Predicted thermal conductivity closely matched experimental results, with an average error of 5.35%. The results demonstrate that thermal conductivity decreases with porosity, increases with temperature, and varies with pore size, with a minimum of 17.47 W/(m·K) observed at ~1 μm. Variations in refractive index, extinction coefficient, and specific surface area exert negligible influence. Conductive heat transfer is suppressed under Knudsen-dominated conditions at small pore sizes. Electromagnetic analysis around the pore size corresponding to minimum conductivity reveals localized surface plasmon resonances and magnetic coupling at the gas-solid interface, which enhance radiative dissipation and further reduce thermal conductivity. Radiation dissipation efficiency increases with decreasing porosity and pore size. This model thus serves as a predictive tool for designing high-performance thermal insulation systems for elevated-temperature applications.

摘要

对于高温应用而言,准确表征封闭介孔金属凝胶的热性能至关重要,然而宏观模型中常常被忽略的微观尺度效应会对热传递产生显著影响。本研究引入了一种基于等效沃罗诺伊模型的新预测方法,该方法考虑了克努森效应和微观尺度电磁相互作用。预测的热导率与实验结果紧密匹配,平均误差为5.35%。结果表明,热导率随孔隙率降低而减小,随温度升高而增大,且随孔径变化,在约1μm处观察到最小值为17.47W/(m·K)。折射率、消光系数和比表面积的变化影响可忽略不计。在小孔径下克努森效应主导的条件下,传导热传递受到抑制。对对应于最小电导率的孔径周围进行电磁分析,发现在气-固界面处存在局域表面等离子体共振和磁耦合,这增强了辐射耗散并进一步降低了热导率。辐射耗散效率随孔隙率和孔径减小而增加。因此,该模型可作为设计高温应用高性能隔热系统的预测工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc6e/12469782/210d62603aa8/gels-11-00739-g001.jpg

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