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Study on the efficiency of effective thermal conductivities on melting characteristics of latent heat storage capsules

机译:有效热导率对潜热储能胶囊熔化特性的影响研究

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Improvement of the thermal conductivity of a phase change materials (PCM) is one effective technique to reduce phase change time in latent heat storage technology. Thermal conductivity is improved by saturating porous metals with phase change materials. The influence of effective thermal conductivity on melting time is studied by analyzing melting characteristics of a heat storage circular capsule in which porous metal saturated with PCM is inserted. Numerical and approximate analyses were made under conditions where there are uniform or non-uniform heat transfer coefficients around the cylindrical surface. Four PCMs (H_2O, octadecane, Li_2CO_3, NaCl) and three metals (copper, aluminum and carbon steel) were selected as specific materials. Porosities of the metals were restricted to be larger than 0.9 in order to keep high capacity of latent heat storage. Results show that considerable reduction in melting time was obtained, especially for low conductivity PCMs and for high heat transfer coefficient. Melting time obtained by approximate analysis agrees well with numerical analysis. A trial estimation of optimum porosity is made balancing the desirable conditions of high latent heat capacity and reduction of melting time. Optimum porosity decreases with increase in heat transfer coefficient.
机译:相变材料(PCM)导热系数的提高是减少潜热存储技术中相变时间的一种有效技术。通过用相变材料使多孔金属饱和,可以提高热导率。通过分析其中插入了饱和PCM的多孔金属的储热圆形胶囊的熔融特性,研究了有效导热率对熔融时间的影响。在圆柱表面周围传热系数均匀或不均匀的条件下进行了数值和近似分析。选择了四种PCM(H_2O,十八烷,Li_2CO_3,NaCl)和三种金属(铜,铝和碳钢)作为特定材料。为了保持高的潜热储存能力,金属的孔隙率被限制为大于0.9。结果表明,熔化时间大大减少,特别是对于低电导率的PCM和高传热系数而言。通过近似分析获得的熔融时间与数值分析吻合得很好。对高孔隙率的理想条件进行了初步估计,以平衡高潜热容量和减少熔化时间的理想条件。最佳孔隙度随传热系数的增加而降低。

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