无机熔盐复合相变材料的制备及其电热转换性能研究

Jiandong Zuo, Hongjie Luo, Ziye Ling, Zheng-Guo Zhang, Xiaoming Fang, Weiwei Zhang
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摘要

由于在导电性和形状稳定性方面的限制,熔盐相变材料在有效集成到电热转换技术中遇到了障碍,而电热转换技术在能源存储和转换领域至关重要。在本研究中,我们采用气相二氧化硅吸附法合成了一种具有更强导电性和形状稳定性的无机熔盐复合相变材料(CPCM)。我们的研究结果揭示了 CPCM 中膨胀石墨(EG)对热性能调节的规律性,并深入研究了其电热转换特性。研究表明,当 EG 含量超过 3 wt% 时,导电网络基本形成。在将 CPCM 制成电热转换模块后,我们观察到模块温度的均匀性与 EG 的数量、电极电阻的分布和外部电压的大小之间存在相关性。基于这一观察结果,我们提出了一种用电场调节模块温度场的策略。所提出的直接电加热储能方法与传统的间接电加热方法相比,储能率提高了 93.8%,温度均匀性也得到了改善。这项研究为熔盐电加热转换 CPCM 的应用提供了宝贵的启示。
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Preparation of inorganic molten salt composite phase change materials and study on their electrothermal conversion properties
Due to their limitations in conductivity and shape stability, molten salt phase change materials have encountered obstacles to effectively integrating into electric heating conversion technologies, which are crucial in energy storage and conversion fields. In this study, we synthesized an inorganic molten salt composite phase change material (CPCM) with enhanced conductivity and shape stability using a gas-phase silica adsorption method. Our findings revealed the regularities in thermal properties modulation by expanded graphite (EG) within CPCM and delved into its characteristics of electric heating conversion. The study elucidated that a conductive network is essentially formed when the EG content exceeds 3 wt%. Following the fabrication of CPCM into electric heating conversion modules, we observed a correlation between the uniformity of module temperature and the quantity of EG, as well as the distribution of electrode resistance and external voltage magnitude. Building upon this observation, we proposed a strategy to adjust the module temperature field with an electric field. Comparing the proposed direct electrical heating energy storage method with traditional indirect electrical heating methods, the energy storage rate increases by 93.8%, with an improved temperature uniformity. This research offers valuable insights for the application of molten salt electric heating conversion CPCMs.
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Industrial Chemistry & Materials
Industrial Chemistry & Materials chemistry, chemical engineering, functional materials, energy, etc.-
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期刊介绍: Industrial Chemistry & Materials (ICM) publishes significant innovative research and major technological breakthroughs in all aspects of industrial chemistry and materials, with a particular focus on the important innovation of low-carbon chemical industry, energy and functional materials. By bringing researchers, engineers, and policymakers into one place, research is inspired, challenges are solved and the applications of science and technology are accelerated. The global editorial and advisory board members are valued experts in the community. With their support, the rigorous editorial practices and dissemination ensures your research is accessible and discoverable on a global scale. Industrial Chemistry & Materials publishes: ● Communications ● Full papers ● Minireviews ● Reviews ● Perspectives ● Comments
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