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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Validation of a numerical model with a benchmark experiment for melting governed by natural convection in latent thermal energy storage
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Validation of a numerical model with a benchmark experiment for melting governed by natural convection in latent thermal energy storage

机译:用基准模型验证云云云实共对熔化的基准试验

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We report a combined experimental and numerical investigation of a melting process representative of latent thermal energy storage systems. The purpose of the work is to assess the accuracy of numerical models of melting governed by natural convection with a benchmark experiment. The experiment consists of a rectangular box filled with a model liquid (n-octadecane) and heated symmetrically from both sides such as to allow access for shadowgraph imaging and particle image velocimetry to measure the phase state and velocities, respectively. Our numerical method for computing fluid flow, temperature, and phase state involves two different approaches: the first is a detailed model using variable thermophysical properties and the volume of fluid method to allow volume expansion in an additional air phase that we solve in two dimensions. The second is a simplified model using constant thermophysical properties and the Boussinesq approximation that we solve either in two or in three dimensions. In the first part of the work, we systematically compare the simplified (Boussinesq) with the detailed (volume of fluid) model. We find that for the given set of parameters (Ra = 2.10(8), A = 4, Ste = 0.092, Pr = 52), the difference between the detailed and the simplified model in predicting global quantities such as the liquid phase fraction and the total heat flow rate is smaller than 4%, whereas velocities differ up to 20%. In the second part of the work, we compare the simulations of the simplified Boussinesq model in three dimensions with the benchmark experiment. We find that the simulation predicts the liquid phase fraction and temperatures with deviations below 4%, but significantly overestimates the velocity magnitudes. Our experimental and numerical tools provide a rational framework in which the accuracy of latent thermal energy storage simulations can be systematically and comprehensively assessed.
机译:我们报告了代表潜热能储存系统的熔化过程的组合实验和数值研究。该工作的目的是评估通过与基准实验的自然对流管辖的数值模型的准确性。实验包括填充有模型液体(N-O10DECANE)的矩形盒子,并从两侧对称加热,以便允许分别访问影像图成像和粒子图像速度来测量相状态和速度。我们计算流体流动,温度和相位状态的数值方法涉及两种不同的方法:首先是使用可变热物理性质和流体方法的体积的详细模型,以允许在两个维度中解决的额外空气阶段中的体积膨胀。第二种是使用恒定热物理性质和Boussinesq近似的简化模型,我们在两个或三维中解决。在工作的第一部分中,我们系统地将简化(BoussinesQ)与详细(流体量)进行了比较。我们发现,对于给定的一组参数(RA = 2.10(8),a = 4,ste = 0.092,pr = 52),详细和简化模型之间的差异预测液相分数等全球数量总热流速率小于4%,而速度差异达20%。在工作的第二部分中,我们将简化Boussinesq模型的模拟与基准实验进行了三维。我们发现模拟预测液相分数和温度,偏差低于4%,但显着高估了速度幅度。我们的实验和数值工具提供了一个合理的框架,其中可以系统地和全面地评估潜热能存储模拟的准确性。

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