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Optimization by Means of an Analytical Heat Transfer Model of a Thermal Insulation for CSP Applications Based on Radiative Shields

机译:基于辐射屏蔽的CSP应用的热绝缘分析传热模型优化

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The employment of new gaseous heat transfer fluids as air or CO_2, which are cheaper and environmentally friendly, is drawing more and more attention within the field of Concentrated Solar Power applications. However, despite the advantages, their use requires receivers with a larger heat transfer area and flow cross section with a consequent greater volume of thermal insulation. Solid thermal insulations currently used present high thermal inertia which is energetically penalizing during the daily transient phases faced by the main plant components (e.g. receivers). With the aim of overcoming this drawback a thermal insulation based on radiative shields is presented in this study. Starting from an initial layout comprising a solid thermal insulation layer, the geometry was optimized avoiding the use of the solid insulation keeping performance and fulfilling the geometrical constraints. An analytical Matlab model was implemented to assess the system thermal behavior in terms of heat loss taking into account conductive, convective and radiative contributions. Accurate 2D Computational Fluid Dynamics (CFD) simulations were run to validate the Matlab model which was then used to select the most promising among three new different designs.
机译:新的气体传热液作为空气或CO_2的就业,它们更便宜,环保,在集中的太阳能应用领域内越来越受到关注。然而,尽管存在优势,但它们的使用需要具有较大的传热区域和流量横截面的接收器,因此具有更大的隔热体积的热绝缘。目前使用的固体保温绝缘在主要植物组分(例如接收器)面临的日常瞬态阶段期间具有高热惯性的高热惯性。目的是克服该缺点,本研究介绍了基于辐射屏蔽的保温。从包括固体隔热层的初始布局开始,优化几何形状避免使用固体绝缘保持性能并满足几何约束。实施了分析MATLAB模型,以评估热量损失的系统热行为,考虑到导电,对流和辐射贡献。 RUN准确的2D计算流体动力学(CFD)模拟以验证MATLAB模型,然后用于选择三种新不同设计中最有前途的。

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