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Exploration on surrogate models for inverse identification of delamination cracks in CFRP composites using Electrical Resistance Tomography.

机译:探索使用电阻层析成像技术反向识别CFRP复合材料中分层裂纹的替代模型。

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摘要

Carbon Fiber Reinforced Polymer (CFRP) materials are used in aerospace structures due to their superior mechanical properties and reduced weight. Non-destructive evaluation (NDE) techniques are needed for such materials to detect and measure intra-ply matrix cracking and inter-ply delamination damage without harming or altering their initial configuration. The aim of NDE techniques is to use the composite material as a sensor itself, and to use its intrinsic material properties as measure of damage.;Previous literature has shown that CFRP composites are electrically conductive in the fibers direction, and that the fiber-to-fiber contact due to waviness provides electrical conduction in the direction normal to the fibers. When matrix cracking or delamination defects are introduced in the composite, they break the fiber contact network, and this increases the local resistivity of the material. The Electrical Resistance Tomography (ERT) provides a NDE technique that uses these inherent changes in conductive properties of the composite to map its internal damage state. As opposed to other NDE methods, this technique allows the in-situ monitoring and detection on damage, which is particularly desirable for large and complex aerospace structures.;This research investigates efficient numerical modeling techniques for inverse identification of delamination damage location and size in composite laminates using ERT based NDE. Identification of damage in composites requires solving the inverse problem that minimizes the difference between the model predicted and the measured change in resistance at specified electrode locations. The direct use of numerical finite element models of the laminate in the inverse identification is computationally expensive and it requires the development of accurate surrogate models.;The use of Response Surfaces and Kriging approximations for single-response surrogate modeling is investigated in this work. Since the electrical resistance changes across the different electrode pairs for the given damage state could be correlated, this research also investigates the use of Singular Value Decomposition (SVD) in the identification of the principal components. The use of SVD for dimension reduction is also evaluated for the construction of accurate surrogate models.
机译:碳纤维增强聚合物(CFRP)材料由于其卓越的机械性能和减轻的重量而被用于航空航天结构。对于此类材料,需要无损评估(NDE)技术,以检测和测量层间基质开裂和层间分层损坏,而不会损害或更改其初始结构。 NDE技术的目的是使用复合材料本身作为传感器,并利用其固有的材料特性来衡量损伤。以前的文献表明,CFRP复合材料在纤维方向上具有导电性,并且纤维-由于波纹引起的纤维接触在垂直于纤维的方向上提供了导电。当在复合材料中引入基体裂纹或分层缺陷时,它们会破坏纤维接触网络,从而增加材料的局部电阻率。电阻层析成像(ERT)提供了一种NDE技术,该技术利用复合材料导电性能的这些固有变化来绘制其内部损坏状态。与其他NDE方法相反,该技术允许对损坏进行原位监测和检测,这对于大型和复杂的航空航天结构尤其理想。层压板使用基于ERT的NDE。识别复合材料中的损伤需要解决反问题,该问题应使指定电极位置处的预测模型和测得的电阻变化之间的差异最小。在逆向识别中直接使用层压板的数值有限元模型在计算上是昂贵的,并且它需要开发精确的替代模型。由于在给定的损伤状态下,不同电极对之间的电阻变化可能是相关的,因此本研究还研究了奇异值分解(SVD)在主要成分识别中的使用。还评估了使用SVD减少尺寸,以构建精确的替代模型。

著录项

  • 作者

    Diaz Montiel, Paulina.;

  • 作者单位

    San Diego State University.;

  • 授予单位 San Diego State University.;
  • 学科 Aerospace engineering.
  • 学位 M.S.
  • 年度 2016
  • 页码 73 p.
  • 总页数 73
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:43:09

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