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High temperature rock-bed TES system suitable for industrial-scale CSP plant-CFD analysis under charge/discharge cyclic conditions

机译:高温岩床TES系统适用于电荷/放电循环条件下的工业规模CSP植物CFD分析

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The present study aims at dimensioning and modeling, by means of accurate time-dependent 3D computational fluid dynamics simulations, the behavior of a high temperature rock-bed TES system. The latter is exploited to fulfill the round-the-clock energy requirements of a reference 80 MWt industrial-scale CSP plant, based upon the Airtight Energy technology, which uses air as heat transfer fluid. The TES system behavior was analyzed through 15 consecutive charge/discharge cycles to evaluate the thickness evolution of the thennocline zone, and hence the overall thermal efficiency of the system, under cyclic conditions. The numerical model was satisfactorily validated with experimental data, gathered from a 6.5 MWh_(th) TES system prototype, located in Biasca, designed and built by the Swiss company Airlight Energy SA. The good agreement between CFD simulations results and experimental data allowed the authors to assess the relevance of radiative heat transfer, even at relatively low temperature (300--350 °C), on the thermodynamics behavior of the TES system. Moreover, a porosity variation, with the packed bed depth, was also observed numerically and experimentally mainly due to the own weight of the packings (25m3 of natural river pebbles with 3 cm average diameter). The CFD simulations were performed with Fluent code from ANSYS.
机译:本研究旨在通过准确的时间依赖3D计算流体动力学模拟,高温岩床TES系统的尺寸和建模。基于气密能量技术,后者利用后者符合参考80 MWT工业规模CSP工厂的圆形能量要求,该电能技术使用空气作为传热流体。通过15个连续的充电/放电循环分析TES系统行为,以评估当时的厚度进化,因此在循环条件下系统的整体热效率。使用实验数据令人满意地验证了数值模型,从6.5 MWH_(TH)TES系统原型收集,位于BIASCA,由瑞士公司Airlight Energy SA设计和构建。 CFD模拟结果与实验数据之间的良好一致性允许作者评估辐射传热的相关性,即使在相对低的温度(300-350°C)上,在TES系统的热力学行为上也是如此。此外,孔隙率变化与填充床深度也在数值上和实验上观察到主要是由于包装的自身重量(25m3的自然河卵石,平均直径为3cm)。使用来自ANSYS的流利代码进行CFD仿真。

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