Numerical analysis of phase change materials for use in energy-efficient buildings

Swapnil S. Salvi
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引用次数: 1

Abstract

Due to the efficient performance in energy storage density, solar thermal energy storage (TES, especially latent type) applications are drawing more attention in the research field of solar energy. Among all of the types of solar thermal storage technologies, the latent heat storage system using phase change materials is the most efficient way of storing thermal energy. It has some dominant factors such as high density energy storage and isothermal operations, i.e., very small temperature range for heat storage and removal. Thus, latent heat storage systems have greater applicability over the other types of TES systems. This chapter initially presents an analysis of a latent-type solar thermal energy storage (TES) system involving some of the important cases carried out comprising the application of ambient conditions with various geometries and working conditions. The analysis is carried out in MATLAB® and COMSOL®, which contains transient simulations of latent heat storage functioning with 1D and 2D modeling. It comprises the validation of numerical 1D analysis with corresponding analytical solution, observation of the change in thermophysical properties at the melting point, etc. Further in this study, the phase change material (PCM) is assumed to be incorporated in a brick wall structure, which can improve its thermal performance. A 1D numerical model on COMSOL Multiphysics is developed to analyze the thermal performance of the PCM-filled brick wall unit. The numerical model and the adopted hypotheses are illustrated in detail. The comparison between temperature distributions of a simple brick wall and a brick wall with a PCM layer is presented. The results show that using the numerical tool, it can be observed that the thermal performance of the PCM-filled brick wall is efficient over the simple brick wall without PCM. This concept of the PCM-impregnated building structure is found to be successful in shifting the energy requirement of the equipped building sector from a high peak electricity demand period to an off-peak period.
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节能建筑用相变材料的数值分析
由于其在储能密度上的高效性能,太阳能热储能(TES)尤其是潜式储能(latent type)的应用越来越受到太阳能研究领域的关注。在所有类型的太阳能蓄热技术中,利用相变材料的潜热蓄热系统是最有效的蓄热方式。它具有一些优势因素,如高密度储能和等温操作,即储热和排热的温度范围很小。因此,潜热储存系统比其他类型的TES系统具有更大的适用性。本章首先介绍了一种潜在型太阳能热能储存(TES)系统的分析,涉及一些重要的案例,包括各种几何形状和工作条件的环境条件的应用。分析是在MATLAB®和COMSOL®中进行的,其中包含具有1D和2D建模的潜热储存功能的瞬态模拟。包括用相应的解析解验证数值一维分析,观察熔点处热物理性质的变化等。在进一步的研究中,假设相变材料(PCM)加入到砖墙结构中,可以改善砖墙结构的热性能。建立了COMSOL Multiphysics的一维数值模型,分析了pcm填充砖墙单元的热性能。详细说明了数值模型和所采用的假设。比较了简单砖墙和有PCM层砖墙的温度分布。结果表明,利用数值计算工具可以观察到,填充PCM的砖墙的热工性能优于未填充PCM的简单砖墙。这种pcm浸没建筑结构的概念被发现是成功地将装备建筑部门的能源需求从高峰电力需求期转移到非高峰时期。
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