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Numerical analysis of thermocline evolution during charging phase in a stratified thermal energy storage tank

机译:分层热能储罐充电相期间热量进化的数值分析

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Thermocline thickness (TLT) is the best parameter to quantify the thermal performance of stratified thermal energy storage (TES) tanks as it defines the inactive part of a storage medium. A detailed literature review reveals that there is no consensus in the community on the temperature band where the TLT is quantified. In this study, a new criterion for quantifying TLT is proposed that addresses its dynamic nature and is based on 1 K below T-max and 1 K above T-min inside a TES tank. Additionally, an ideal charging diffuser is defined that can attribute to the minimum theoretical TLT at a certain TES tank height to diameter ratio and charging mass flow rate. Therefore, the effectiveness of any enhancement strategies for improving TES thermal performance in a real working condition can be compared against the ideal case. The proposed criterion is applied during the charging process of a cylindrical TES tank through computational fluid dynamic (CFD) simulation by solving the coupled hydrodynamic (continuity and momentum) and energy equations in a 2D axisymmetric computational domain for a real TES tank. The accuracy of the obtained results is validated against available experimental data and a good agreement is observed. The main observation is that the ideal minimum TLT evolves proportional to the square root of dimensionless charging time divided by Peclet number, however, with the actual diffusers when heat loss to the ambient air and mixing effect are present, TLT undergoes three formation stages, namely, mixing dominated, developing, and fully developed regions. The evolution of TLT in the dynamics of the TES charging process is reported at different working conditions.
机译:Thermoclow厚度(TLT)是定量分层热能存储(TES)罐的热性能的最佳参数,因为它定义了存储介质的非活动部分。详细的文献综述表明,在量化TLT的温度带上的社区中没有共识。在该研究中,提出了一种用于量化TLT的新标准,其解决了其动态性质,并且基于1 k基于T-MAX的1 k,在TES罐内高于T-min。另外,定义了理想的充电扩散器,其可以将某些TES罐高度的最小理论TLT归因于直径比和充电质量流量。因此,可以将在实际工作条件下改善TES热性能的任何增强策略的有效性可以与理想情况进行比较。在圆柱形TES罐的充电过程中通过计算流体动态(CFD)模拟来施加所提出的标准,通过求解2D轴对称计算域中的耦合的流体动力学(连续性和动量)和实际TES箱的能量方程。获得的结果的准确性验证了可用的实验数据,观察到良好的一致性。主要观察是,理想的最小TLT演变成比例与虚无的充电时间的平方根除以Peclet数,然而,当存在对环境空气和混合效果的热量损失时,TLT经历三个形成阶段,即,混合占主导地位,开发和完全发达的地区。在不同的工作条件下报道了TLT在TES充电过程动态中的演变。

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