Evaluation and development of a predictive model for conjugate phase change heat transfer of energy storage system partially filled with porous media

Wenbin Xu , Zibiao Liu , Si-Min Huang , Yijie Zhuang
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引用次数: 2

Abstract

The present study proposes a predictive model to explore the effect of partially filled porous media on the conjugate heat transfer characteristic of phase change material (PCM) with interfacial coupling conditions between pure fluid region and porous region. The enthalpy-porosity method, local thermal non-equilibrium model and Darcy-Forchheimer law are comprehensively considered to describe the convective heat transfer process in porous media. The modified model is then validated by benchmark data provided by particle image velocimetry (PIV) experiments. The phase change behavior, heat transfer efficiency and energy storage performance are numerically investigated for different partial porous filling strategies in terms of filling content, position, height of porous foam and inclination angles of cavity. The results indicate that due to the resistance in porous region, the shear stress exerted by the main vortex (natural convection) in pure fluid region and the momentum transferred, a secondary vortex phenomenon appears in the porous region near the fluid/porous interface. Moreover, such discontinuity of permeability and fluid-to-porous thermal conductivity results in the cusp of phase change interface at the horizontal fluid/porous boundary. Among four partial porous filling cases, the lower porous filling one has more desirable heat transfer performance, and the 3/4H lower porous filling configuration is the best solution for optimization of the latent heat thermal energy storage (LHTES) systems. For tilted cavity, the increase of inclination angle positively affects the heat transfer efficiency as well as the energy storage rate of the LHTES system, where the performance of 3/4H lower porous filling configuration is further highlighted.

部分填充多孔介质储能系统共轭相变换热预测模型的建立与评价
本研究提出了一个预测模型,在纯流体区和多孔区界面耦合条件下,探讨部分填充多孔介质对相变材料共轭传热特性的影响。综合考虑了焓孔法、局部热非平衡模型和Darcy Forchheimer定律来描述多孔介质中的对流传热过程。然后通过粒子图像测速仪(PIV)实验提供的基准数据对修改后的模型进行了验证。从填充量、多孔泡沫的位置、高度和空腔倾角等方面,对不同局部多孔填充策略的相变行为、传热效率和储能性能进行了数值研究。结果表明,由于多孔区的阻力、纯流体区主涡(自然对流)施加的剪切应力和传递的动量,在流体/多孔界面附近的多孔区出现了二次涡现象。此外,渗透率和流体-多孔热导率的这种不连续性导致水平流体/多孔边界处的相变界面尖端。在四种部分多孔填充情况中,较低的多孔填充具有更理想的传热性能,而3/4H的较低多孔填充配置是潜热储能(LHTES)系统优化的最佳解决方案。对于倾斜腔体,倾角的增加对LHTES系统的传热效率和储能率有积极影响,其中3/4H较低多孔填充结构的性能进一步突出。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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