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首页> 外文期刊>International Journal of Heat and Mass Transfer >Encapsulated phase change material for high temperature thermal energy storage - Heat transfer analysis
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Encapsulated phase change material for high temperature thermal energy storage - Heat transfer analysis

机译:用于高温储热的密封相变材料-传热分析

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摘要

Thermal analysis of high temperature phase change materials (PCM) is conducted with the consideration of a 20% void and buoyancy-driven convection in a stainless steel capsule. The effects of the thermal expansion and the volume expansion due to phase change on the energy storage and retrieval process are investigated. Sodium nitrate is considered as a potential PCM for concentrated solar power applications. The charging and discharging into and from the capsule wall is simulated for different boundary conditions and is applied with both laminar and turbulent flow conditions. Computational models are conducted by applying an enthalpy-porosity method and volume of fluid method (VOF) to calculate the transport phenomena within the PCM capsule, including an internal air void. Energy storage and retrieval in different sized capsules is simulated. A cylindrical shaped EPCM capsule or tube is considered in simulations using both gas (air) and liquid (Therminol/VP-1) as the heat transfer fluid in a cross flow arrangement. Additionally a spherical shaped EPCM is considered with a constant wall temperature boundary condition to study the three-dimensional heat transfer effects. The presence of the void has profound effects on the thermal response of the EPCM during both energy storage and retrieval process. Melting and solidification per unit mass of the PCM takes longer when the void is present. Additionally, due to material properties and the lack of convective effects, the solidification process is much slower than the melting process.
机译:高温相变材料(PCM)的热分析要考虑到不锈钢容器中20%的空隙和浮力驱动的对流。研究了相变引起的热膨胀和体积膨胀对能量存储和回收过程的影响。硝酸钠被认为是集中式太阳能应用的潜在PCM。模拟了在不同边界条件下进出胶囊壁的充放电情况,并在层流和湍流条件下进行了模拟。通过应用焓-孔隙率法和流体体积法(VOF)来计算模型,以计算PCM胶囊内部的传输现象,包括内部空隙。模拟了不同尺寸胶囊的能量存储和回收。在模拟中考虑使用圆柱状的EPCM胶囊或管,在交叉流动布置中使用气体(空气)和液体(Therminol / VP-1)作为传热流体。另外,考虑具有恒定壁温边界条件的球形EPCM,以研究三维热传递效应。在能量存储和回收过程中,空隙的存在对EPCM的热响应产生了深远的影响。当存在空隙时,每单位质量PCM的熔化和固化需要更长的时间。另外,由于材料特性和缺乏对流作用,固化过程比熔化过程慢得多。

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