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Synthesis and Characterization of Molten Salt Nanofluids for Thermal Energy Storage Application in Concentrated Solar Power Plants—Mechanistic Understanding of Specific Heat Capacity Enhancement

机译:浓缩太阳能发电厂热能储存应用熔盐纳米流体的合成与表征 - 对特定热容量增强的机械理解

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摘要

Molten salts mixed with nanoparticles have been shown as a promising candidate as the thermal energy storage (TES) material in concentrated solar power (CSP) plants. However, the conventional method used to prepare molten salt nanofluid suffers from a high material cost, intensive energy use, and laborious process. In this study, solar salt-Al2O3 nanofluids at three different concentrations are prepared by a one-step method in which the oxide nanoparticles are generated in the salt melt directly from precursors. The morphologies of the obtained nanomaterials are examined under scanning electron microscopy and the specific heat capacities are measured using the temperature history (T-history) method. A non-linear enhancement in the specific heat capacity of molten salt nanofluid is observed from the thermal characterization at a nanoparticle mass concentration of 0.5%, 1.0%, and 1.5%. In particular, a maximum enhancement of 38.7% in specific heat is found for the nanofluid sample prepared with a target nanoparticle mass fraction of 1.0%. Such an enhancement trend is attributed to the formation of secondary nanostructure between the alumina nanoparticles in the molten salt matrix following a locally-dispersed-parcel pattern. These findings provide new insights to understanding the enhanced energy storage capacity of molten salt nanofluids.
机译:与纳米颗粒混合的熔融盐已被示出为浓缩太阳能(CSP)植物中的热能储存(TES)材料作为有希望的候选者。然而,用于制备熔盐纳米流体的常规方法患有高质量成本,密集能耗和费力的过程。在该研究中,通过三种不同浓度的太阳能盐 - Al2O3纳米流体通过一步法的方法制备,其中氧化物纳米颗粒在盐熔融中直接由前体产生。在扫描电子显微镜下检查所得纳米材料的形态学,并使用温度历史(T-HARESS)方法测量比热容。从纳米颗粒质量浓度为0.5%,1.0%和1.5%的纳米颗粒质量浓度的热表征观察到熔盐纳米流体的比热容量的非线性增强。特别地,发现在用靶纳米颗粒质量分数为1.0%的纳米颗粒质量分数的纳米物流样样品中发现比特定热量的最大增强38.7%。这种增强趋势归因于在局部分散的包裹模式之后熔融盐基质中氧化铝纳米颗粒之间的次级纳米结构的形成。这些调查结果为了解熔盐纳米流体的增强储能能力提供了新的见解。

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