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首页> 外文期刊>Journal of Materials Science >Experimental assessment of toughness in ceramic matrix composites using the J-integral with digital image correlation part I: methodology and validation
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Experimental assessment of toughness in ceramic matrix composites using the J-integral with digital image correlation part I: methodology and validation

机译:使用带有数字图像相关性的J积分对陶瓷基复合材料的韧性进行实验评估,第一部分:方法和验证

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摘要

The complex nature of damage in ceramic matrix composites (CMCs) renders conventional methods of measuring quantitative fracture properties impractical. This paper is the first of two-part series that assesses the feasibility of using the J-integral with full-field deformation data from digital image correlation (DIC) to characterize toughness in continuous fiber SiC/SiC CMC laminates. It provides a resource for best practices when incorporating experimentally measured, full-field deformation data into J-integral evaluations of toughness. The techniques discussed are important for researchers attempting to measure fracture properties in advanced materials with damage mechanisms that have yet to be well characterized. Two methods for evaluating potential energy release rates J are presented: (1) numerical integration over a line contour and (2) Gaussian integration over an area contour. Accuracy and path independency for both methods were verified using analytically derived deformation fields for a center-cracked, infinite plate of isotropic material under equi-biaxial tension. Inherent noise in the deformation data and necessary contour truncation at the crack surfaces reduced accuracy and introduced path dependency. However, this was mitigated by careful noise filtering of the deformation data prior to the evaluation of J. Applying the line and area integrals to DIC data from tapered, double-cantilever beam, acrylic compact tension specimens resulted in the findings that (1) both integrals measured fracture toughness within a range of published values; (2) both integrals captured the constant stress intensity factor behavior that is characteristic of the tapered beam geometry; and (3) the area integral measurements were consistently larger than line integral measurements. The area integral is more accurate than the line integral as it samples more data points, reducing its sensitivity to experimental noise. Although variability in experimental data can be minimized, it cannot be eliminated. Measurement error is inevitable; thus, the line and area integrals must be used with caution when characterizing quantitative properties including fracture toughness.
机译:陶瓷基复合材料(CMC)破坏的复杂性使得测量定量断裂性能的常规方法不可行。本文是由两部分组成的系列文章中的第一篇,该系列文章评估了使用J积分和数字图像相关(DIC)的全场变形数据来表征连续纤维SiC / SiC CMC层压板的韧性的可行性。当将通过实验测量的全场变形数据合并到韧性的J积分评估中时,它提供了最佳实践的资源。所讨论的技术对于试图测量具有尚未被充分表征的损伤机制的高级材料中的断裂性能的研究人员而言非常重要。提出了两种评估势能释放速率J的方法:(1)线轮廓上的数值积分和(2)面积轮廓上的高斯积分。两种方法的精度和路径独立性均通过分析得出的等向双轴拉伸中心裂纹无限大的各向同性材料变形板进行了验证。变形数据中的固有噪声以及裂纹表面处必要的轮廓截断降低了精度,并引入了路径依赖性。但是,在评估J之前,通过对变形数据进行仔细的噪声过滤来缓解这种情况。将线和面积分应用于锥形,双悬臂梁,丙烯酸密实拉伸试样的DIC数据中,得出的结果是(1)两者在公开值范围内,积分测量的断裂韧性; (2)两个积分都记录了恒定应力强度因子行为,该行为是锥形梁几何形状的特征; (3)面积积分测量始终大于线积分测量。面积积分比直线积分更精确,因为它对更多数据点进行采样,从而降低了其对实验噪声的敏感性。尽管可以将实验数据的可变性降到最低,但不能消除它。测量误差是不可避免的;因此,在表征包括断裂韧性的定量特性时,必须谨慎使用线和面积分。

著录项

  • 来源
    《Journal of Materials Science 》 |2015年第13期| 4646-4658| 共13页
  • 作者

    J. Tracy; A. Waas; S. Daly;

  • 作者单位

    University of Michigan">(1);

    University of Michigan">(1);

    University of Michigan">(1);

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  • 正文语种 eng
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