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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Size effect of nanoparticle on specific heat in a ternary nitrate (LiNO3-NaNO3-KNO3) salt eutectic for thermal energy storage
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Size effect of nanoparticle on specific heat in a ternary nitrate (LiNO3-NaNO3-KNO3) salt eutectic for thermal energy storage

机译:纳米颗粒对共存硝酸盐三元硝酸盐(LiNO3-NaNO3-KNO3)的比热的尺寸效应

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In this study we investigate the effect of nanoparticles on the specific heat of ternary nitrate salt eutectic doped with nanoparticles. Four different sizes of SiO2 nanoparticles were tested: 5 nm, 10 nm, 30 nm, and 60 nm. They were doped into ternary nitrate salt eutectic (LiNO3-NaNO3-KNO3) at 1% concentration by weight. Ternary nitrate salt eutectic has been considered as advanced thermal energy storage material due to its lower melting point and high thermal stability. Enhancing the specific heat of ternary nitrate salt eutectic can greatly increase its thermal storage density. This can not only reduce the material cost but also the size of pipe and storage tanks and, therefore, energy storage cost can be significantly reduced. A modulated differential scanning calorimeter was employed to measure the specific heat of ternary nitrate salt eutectic before and after doping with nanoparticles. According to the conventional specific heat model (density weighted rule), the specific heat of ternary nitrate salt eutectic should slightly decrease after doping with nanoparticles since the concentration of nanoparticles is very small (-1% by weight) and the specific heat of nanoparticles is lower than that of ternary nitrate salt eutectic. However, the specific heat of the mixture was measured to be enhanced by 13-16% and no significant variation in specific heat was observed with nanoparticle size. From subsequent material characterization study, we observed a large amount of nanometer-sized structure formed by the salt compound around nanoparticles. Nanostructure has extremely large specific surface area. This can amplify the effect of surface energy on the effective specific heat (which was often negligible on a macroscale) and can be primarily responsible for the enhanced specific heat with doping nanoparticles. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在这项研究中,我们研究了纳米粒子对掺杂纳米粒子的三元硝酸盐共晶比热的影响。测试了四种不同尺寸的SiO2纳米颗粒:5 nm,10 nm,30 nm和60 nm。将它们掺入浓度为1%(重量)的三元硝酸盐共晶体(LiNO3-NaNO3-KNO3)中。硝酸三元共晶因其较低的熔点和较高的热稳定性而被认为是先进的储热材料。提高三元硝酸盐共晶的比热可以大大提高其热存储密度。这不仅可以降低材料成本,而且可以降低管道和储罐的尺寸,因此可以显着降低储能成本。调制的差示扫描量热仪用于在掺杂纳米颗粒之前和之后测量三元硝酸盐共晶的比热。根据常规比热模型(密度加权法),掺杂纳米颗粒后三元硝酸盐共晶的比热应略有降低,因为纳米颗粒的浓度非常小(按重量计-1%),并且纳米颗粒的比热为低于三元硝酸盐共晶。然而,经测量混合物的比热提高了13-16%,并且没有观察到纳米尺寸的比热显着变化。从随后的材料表征研究中,我们观察到纳米颗粒周围的盐化合物形成了大量的纳米级结构。纳米结构具有非常大的比表面积。这可以放大表面能对有效比热的影响(在宏观上通常可以忽略不计),并且可以主要归因于掺杂纳米粒子的比热提高。 (C)2016 Elsevier Ltd.保留所有权利。

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