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Containment capsule stresses for encapsulated phase change materials

机译:封装相变材料的密闭容器应力

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The encapsulation of a phase change material to store thermal energy is considered here for concentrated solar power systems. The stress distribution in a spherical nickel shell of 250 μ thickness formed around a ball of zinc by the electroless deposition process and a stainless steel cylindrical shell containing zinc are considered. The effect of external forces and imperfections within the shell structure that could affect the deformation are also modeled. The aim of the simulations performed is to establish a suitable thickness for the encapsulating material. It is concluded that while the shell can deform and safely withstand the anticipated expansion of the zinc, the added effects from point loads caused by the weight of the surrounding encapsulated capsules and other possible imperfections in the capsule structure could cause failure. A three-dimensional finite element model is used to establish the stresses in cylinders of different aspect ratio caused by the expansion of zinc as it melts inside of the encapsulation. The amount of void space that must be left inside of the capsule, so that the expansion of the zinc during phase change and the increase in gas pressure inside of the vessel will not cause failure of the shell, is determined from simulations. Results indicate that the cylinder with welded ends could easily contain up to 86% of the initial volume full of zinc with only a very small amount of plastic deformation, less than 0.5% strain, corresponding to an internal pressure of 2.03 MPa.
机译:对于集中式太阳能系统,在此考虑将相变材料封装以存储热能。考虑了通过无电沉积工艺在锌球周围形成的厚度为250μm的球形镍壳和含锌的不锈钢圆柱壳中的应力分布。还模拟了可能会影响变形的外力和壳结构内部缺陷的影响。进行模拟的目的是为封装材料建立合适的厚度。结论是,尽管壳体可以变形并安全地承受预期的锌膨胀,但是由周围封装的胶囊的重量和胶囊结构中其他可能的缺陷引起的点载荷所产生的附加影响可能会导致失效。三维有限元模型用于建立不同纵横比的圆柱体中的应力,这些应力是由锌在封装内部熔化时的膨胀引起的。通过模拟确定必须留在胶囊内部的空隙空间的量,以便在相变过程中锌的膨胀和容器内部气压的增加不会引起壳体的失效。结果表明,带有焊接端部的圆柱体很容易容纳高达初始体积的86%的锌,而塑性变形非常小,应变小于0.5%,相当于内部压力为2.03 MPa。

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