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Influence of the production method on the thermophysical properties of high temperature molten salt-based nanofluids

机译:生产方法对高温熔盐的纳米流体热物理性能的影响

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摘要

The potential use of molten salt-based nanofluids as thermal energy storage material in Concentrated Solar Power plants has gained attention over the last years due to their enhanced storage capacity. The possible effects of the salt-based nanofluid production at industrial scale have not been yet investigated, as this could influence the nanoparticles agglomeration and therefore their thermal and flow properties. Four methods were evaluated for the production of solar salt-based nanofluids containing 1 wt% of silica nanoparticles. The particle size distribution, the stability, the rheological behaviour and the specific heat of the samples were measured. Nanofluids prepared by means of a dry mixing method presented the lowest viscosity, trimodal particle size distribution and lack of stability. The commonly used dissolution method coupled with oven drying in a petri dish as well as the ball milling method presented non-Newtonian behaviour and intermediate values of particle size and stability. The new spray drying method proposed provided a monomodal particle size distribution with high stability but the highest viscosity and shear thickening behaviour. Results suggest that the four methods evaluated are appropriate for specific heat enhancement (up to 21.1%) but a commitment between stability and viscosity has to be achieved. (C) 2020 Elsevier B.V. All rights reserved.
机译:由于其增强的储存能力,在浓缩太阳能发电厂中的热能储存材料中潜在使用熔盐基纳米流体。尚未研究盐基纳米流体生产在工业规模的可能影响,因为这可能影响纳米颗粒附聚,因此可以影响它们的热和流动性。评估了含有1wt%的二氧化硅纳米颗粒的太阳能盐的纳米流体生产四种方法。测量粒度分布,稳定性,流变行为和样品的比热量。通过干混方法制备的纳米流体呈现最低粘度,三透镜粒度分布和缺乏稳定性。常用的溶解方法与培养皿中的烘箱干燥以及球磨方法呈现出非牛顿行为和粒度的中间值和稳定性。提出了新的喷雾干燥方法提供了具有高稳定性但粘度和剪切增厚行为的单透镜粒度分布。结果表明,评估的四种方法适用于特定的热增强(高达21.1%),但必须达到稳定性和粘度之间的承诺。 (c)2020 Elsevier B.v.保留所有权利。

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