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

被引:15
作者
Montero-Chacon, F. [1 ]
Zaghi, S. [2 ]
Rossi, R. [2 ]
Garcia-Perez, E. [3 ]
Heras-Perez, I. [3 ]
Martinez, X. [2 ]
Oller, S. [2 ]
Doblare, M. [4 ]
机构
[1] Univ Loyola Andalucia, Dpto Ingn, Calle Energia Solar, Seville 41014, Spain
[2] Ctr Int Metodes Numer Engn, C Gran Capita,S-N, Barcelona 08034, Spain
[3] Abengoa Res, Calle Engn Solar,1, Seville 41014, Spain
[4] Univ Zaragoza, Aragon Inst Engn Res I3A, Grp Struct Mech & Mat Modelling GEMM, Zaragoza, Spain
基金
欧洲研究理事会;
关键词
Multiscale analysis; Thermo-mechanical homogenization; Finite element method; Representative Volume Element (RVE); Molecular dynamics; Solar selective coatings; COMPOSITE-MATERIALS; COMPUTATIONAL HOMOGENIZATION; REPRESENTATIVE VOLUME; MOLECULAR-DYNAMICS; AMORPHOUS-CARBON; HYDROCARBONS; SIMULATION; BEHAVIOR; MODEL; EXPANSION;
D O I
10.1016/j.finel.2016.12.006
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
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.
引用
收藏
页码:31 / 43
页数:13
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