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Multiscale thermo-mechanical analysis of multi-layered coatings in solar thermal applications

机译:太阳热应用中多层涂层的多尺度热机械分析

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Solar selective coatings can be multi-layered materials that optimize the solar absorption while reducing thermal radiation losses, granting the material long-term stability. These layers are deposited on structural materials (e.g., stainless steel, Inconel) in order to enhance the optical and thermal properties of the heat transfer system. However, interesting questions regarding their mechanical stability arise when operating at high temperatures. In this work, a full thermo-mechanical multiscale methodology is presented, covering the nano-, micro-, and macroscopic scales. In such methodology, fundamental material properties are determined by means of molecular dynamics simulations that are consequently implemented at the microstructural level by means of finite element analyses. On the other hand, the macroscale problem is solved while taking into account the effect of the microstructure via thermo-mechanical homogenization on a representative volume element (RVE). The methodology presented herein has been successfully implemented in a reference problem in concentrating solar power plants, namely the characterization of a carbon-based nanocomposite and the obtained results are in agreement with the expected theoretical values, demonstrating that it is now possible to apply successfully the concepts behind Integrated Computational Materials Engineering to design new coatings for complex realistic thermo-mechanical applications.
机译:太阳选择性涂层可以是多层材料,可以优化太阳吸收,同时减少热辐射损失,从而赋予材料长期稳定性。这些层沉积在结构材料(例如,不锈钢,Inconel)上,以增强传热系统的光学和热性能。但是,在高温下运行时,会出现有关其机械稳定性的有趣问题。在这项工作中,提出了一种完整的热机械多尺度方法,涵盖了纳米,微米和宏观尺度。在这种方法中,基本的材料性能是通过分子动力学模拟确定的,该分子动力学模拟因此通过有限元分析在微观结构水平上实现。另一方面,解决了宏观问题,同时考虑了通过热机械均质化对代表性体积元素(RVE)产生的微观结构的影响。本文介绍的方法已成功地在聚光太阳能发电厂的参考问题中实施,即对基于碳的纳米复合材料进行表征,并且所得结果与预期的理论值相符,这表明现在有可能成功应用集成计算材料工程背后的概念来设计用于复杂现实热机械应用的新型涂层。

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