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EXPERIMENTAL STUDY OF THERMAL PERFORMANCE ENHANCEMENT OF MOLTEN SALT NANOMATERIALS

机译:熔融盐纳米材料热性能增强的实验研究

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Concentrating solar power (CSP) plants are one of the main technologies harvesting solar energy indirectly. In CSP systems, solar radiant light is concentrated into a focal receiver, where heat transfer fluid (HTF) as the energy carrier absorbs solar radiation. Thermal energy storage (TES) is the key method to expand operational time of CSP plants. Consequently, thermo-physical properties of the HTF is an important factor in transferring thermal energy. One of the promising chemicals for this purpose is a mixture of molten salts with stable properties at elevated temperatures. However, low thermal properties of molten salts, such as specific heat capacity (c_p) around 1.5 kJ/kg°C, constrain thermal performance of CSP systems. Recently, many studies have been conducted to overcome this shortcoming, by adding minute concentration of nanoparticles. In this work, the selected molten salt eutectic is a mixture of UiNO_3-NaNO_3 by composition of 54:46 mol. % plus dispersing Silicon Dioxide (SiO_2) nanoparticles with 10nm particle size. The results from the measured specific heat capacity by modulated differential scanning calorimeter (MDSC) shows a 9% c_p enhancement. Moreover, the viscosity of the mixture is measured by a rheometer and the results show that the viscosity of molten salt samples increases by 27% and this may result in increasing the pumping energy of the HTF. Consequently, overall thermal performance of the selected mixture is investigated by figure of merit (FOM) analysis. The interesting results show an enhancement of the thermal storage of this mixture disregard with the viscosity increase effect.
机译:集中式太阳能发电厂(CSP)是间接收集太阳能的主要技术之一。在CSP系统中,太阳辐射光会聚到聚焦接收器中,在聚焦接收器中,作为能量载体的传热流体(HTF)会吸收太阳辐射。热能存储(TES)是延长CSP工厂运行时间的关键方法。因此,HTF的热物理性质是传递热能的重要因素。用于该目的的有前途的化学品之一是在升高的温度下具有稳定特性的熔融盐的混合物。但是,熔融盐的低热性能(例如约1.5 kJ / kg°C的比热容(c_p))限制了CSP系统的热性能。近来,已经进行了许多研究以通过添加微小浓度的纳米颗粒来克服该缺点。在这项工作中,所选择的熔融盐共晶是UiNO_3-NaNO_3的混合物,其组成为54:46摩尔。 %和分散的具有10nm粒径的二氧化硅(SiO 2)纳米颗粒。调制差示扫描量热仪(MDSC)测得的比热容结果显示c_p提高了9%。此外,混合物的粘度通过流变仪测量,结果表明熔融盐样品的粘度增加了27%,这可能导致HTF的泵送能量增加。因此,通过品质因数(FOM)分析来研究所选混合物的整体热性能。有趣的结果表明,不考虑粘度增加的作用,该混合物的蓄热能力得到了提高。

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