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Fiber bundle tracking method to analyze sheet molding compound microstructure based on computed tomography images

机译:纤维束跟踪方法分析了基于计算断层扫描图像的片材模塑复合微结构

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摘要

Discontinuous fiber reinforced polymers (DicoFRP) like Sheet Molding Compounds (SMC) are frequently applied in modern lightweight designs, due to their good formability and mechanical properties at low density. The DicoFRP microstructure affects the mechanical properties and has to be taken into account in the design process. X-ray Micro-Computed Tomography (μCT) systems acquire volumetric images of microstructures in a nondestructive way. The fiber orientation is determined by using state-of-the-art image processing tools. The resolution of volumetric images and the specimen size are directly coupled due to the cone-beam μCT geometry. In order to identify all individual fibers, high resolution images are needed and consequently, only small specimen volumes are scanned. The present contribution makes use of the property that fibers are arranged as bundles within SMC. Consequently, fiber bundles instead of individual fibers are used to analyze microstructures in order to overcome the μCT-cone-beam-related conflict between sample size and image resolution. The fiber bundles are determined by means of orientation data and an introduced tracking method, facing the challenge of crossing fiber bundles. Subsequently, the tracked fiber bundles, which are related to the same mesoscopic fiber bundle are merged by using a hierarchical agglomerative clustering method. The presented method is applied to a typical SMC microstructure. This contribution introduces an image processing method for analyzing SMC microstructures based on fiber bundles, opening up the possibility to investigate large specimen volumes. This enables to characterize representative SMC microstructures and utilize the data for art modeling approaches.
机译:由于它们在低密度下的良好成形性和机械性能,因此在现代轻质设计中经常施加不连续纤维增强聚合物(DICOFRP)。 DICOFRP微结构影响机械性能,并且必须在设计过程中考虑。 X射线微计算机断层扫描(μCT)系统以非破坏性方式获取微观结构的体积图像。通过使用最先进的图像处理工具来确定纤维取向。由于锥形束μCT几何形状,体积图像和样本尺寸的分辨率直接耦合。为了识别所有单独的纤维,需要高分辨率图像,因此,仅扫描小标本体积。目前的贡献利用纤维被安排为SMC内的捆绑的性质。因此,使用纤维束代替单独的光纤来分析微结构,以克服样本大小与图像分辨率之间的μCT-锥形束相关的冲突。光纤束通过定向数据和引入的跟踪方法确定,面对交叉纤维束的挑战。随后,通过使用分层附聚类聚类方法合并与相同的介面纤维束相关的跟踪纤维束。所提出的方法应用于典型的SMC微结构。该贡献引入了一种用于分析基于光纤束的SMC微结构的图像处理方法,开辟了研究大型样品体积的可能性。这使得能够表征代表性的SMC微结构并利用艺术建模方法的数据。

著录项

  • 来源
    《NDT & E international》 |2021年第1期|102370.1-102370.8|共8页
  • 作者单位

    Karlsruhe Institute of Technology Institute for Applied Materials Engelbert-Arnold-Strasse 4 76131 Karlsruhe Germany;

    Karlsruhe Institute of Technology Institute for Applied Materials Engelbert-Arnold-Strasse 4 76131 Karlsruhe Germany University of Augsburg Institute of Materials Resource Management Werner-von-Siemens-Strasse 6 86159 Augsburg Germany;

    University of Waterloo Department of Mechanical and Mechatronics Engineering 295 Philip Street N2L 3G1 Waterloo Canada;

    University of Waterloo Department of Mechanical and Mechatronics Engineering 295 Philip Street N2L 3G1 Waterloo Canada;

    Karlsruhe Institute of Technology Institute for Applied Materials Engelbert-Arnold-Strasse 4 76131 Karlsruhe Germany Fraunhofer Institute ICT Joseph-von-Fraunhofer-Strasse 7 76327 Pfinztnl Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Polymer-matrix composites (PMCs); Glass fiber; Microstructure analysis; Fiber bundle; Volumetric images; Non-destructive testing;

    机译:聚合物 - 基质复合材料(PMC);玻璃纤维;微观结构分析;纤维束;体积图像;非破坏性测试;

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