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Advanced heat transfer fluids for direct molten salt line-focusing CSP plants

机译:用于直接熔盐生产线的CSP工厂的高级传热流体

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Concentrating solar power coupled to thermal energy storage (TES) is a vastly growing industrial process allowing for the generation of dispatchable and green electricity. This paper focuses on direct molten salt line-focusing technology using linear Fresnel and parabolic trough collector systems. Direct molten salt technology utilizes molten salt as heat transfer fluid in solar field and TES medium. Nitrate salts can be applied since they cover a wide temperature range. As storage medium Solar Salt, a binary NaNO3 - KNO3 (60-40 wt%) mixture, is most commonly used but variations of this system have promising thermal properties in terms of a lower melting temperature to minimize the risk of undesired salt freezing events. These modified salts are typically ternary, ternary reciprocal or higher order systems formed by adding additional cations, anions or both. In this study five molten salt systems Solar Salt, HitecXL (CaKNa//NO3), LiNaK-Nitrate, Hitec (NaKi//NO23) and CaLiNaK//NO23 are both investigated and critically reviewed. Their thermo-physical properties including phase diagrams, composition, melting ranges, melting temperature, minimum operation temperature, thermal stability, maximum operation temperature, density, heat capacity, thermal conductivity, viscosity and handling are evaluated and the most recommended values are discussed and highlighted. This review contributes to a better understanding of how the listed properties can be determined in terms of measurement conditions and provides temperature dependent data useful for future simulations of direct molten salt LF CSP plants. (C) 2018 Elsevier Ltd. All rights reserved.
机译:将太阳能与热能存储(TES)耦合在一起是一个发展迅速的工业过程,可以产生可调度的绿色电力。本文重点研究使用线性菲涅耳和抛物线槽收集器系统的直接熔盐线聚焦技术。直接熔融盐技术利用熔融盐作为太阳能场和TES介质中的传热流体。硝酸盐可以覆盖很宽的温度范围,因此可以使用。作为太阳能盐的存储介质,最常用的是二元NaNO3-KNO3(60-40 wt%)混合物,但是该系统的变体具有较低的熔化温度,具有极好的热学性能,可将发生不希望的盐冻结事件的风险降到最低。这些改性的盐通常是通过添加额外的阳离子,阴离子或两者而形成的三元,三元相互或更高级的系统。在这项研究中,对五个熔融盐体系太阳盐,HitecXL(CaKNa // NO3),硝酸锂LiNaK,Hitec(NaKi // NO23)和CaLiNaK // NO23进行了研究并进行了严格审查。他们的热物理性质包括相图,组成,熔融范围,熔融温度,最低运行温度,热稳定性,最高运行温度,密度,热容量,导热系数,粘度和操作性,并讨论并重点推荐了最推荐的值。这篇综述有助于更好地了解如何根据测量条件确定所列特性,并提供与温度有关的数据,这些数据可用于直接熔融盐LF CSP工厂的未来仿真。 (C)2018 Elsevier Ltd.保留所有权利。

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