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Thermoelastic stress analysis techniques for mixed mode fracture and stochastic fatigue of composite materials.

机译:复合材料混合模式断裂和随机疲劳的热弹性应力分析技术。

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摘要

This study develops new quantitative thermoelastic stress analysis (TSA) techniques for fracture and fatigue damage analysis of composite materials.;The first part deals with the thermo-mechanical derivation of two quantitative TSA techniques applied to orthotropic composites with and without a transversely-isotropic surface coating layer. The new TSA test procedures are derived in order to relate the thermal infrared (IR) images with the sum of in-plane strains multiplied by two newly defined material constants that can be experimentally pre-calibrated. Experiments are performed to verify the TSA methods with finite element (FE) numerical results along with available anisotropic elasticity solution.;The second part of this study applies the quantitative TSA techniques together with the Lekhnitskii's general anisotropic elasticity solution to calculate mixed-mode stress intensity factors (SIFs) in cracked composite materials. The cracked composite coupons are subjected to off-axis loadings with respect to four different material angles in order to generate mixed-mode SIFs. A least-squares method is used to correlate the sum of in-plane strains from the elasticity solution with the measured TSA test results. The mode-I and mode-II SIFs are determined from eccentrically loaded single-edge-notch tension (ESE(T)) composite specimens. The FE models and virtual crack closure technique (VCCT) are utilized for comparisons.;In the third part, a new stochastic model is proposed to generate S-N curves accounting for the variability of the fatigue process. This cumulative damage Markov chain model (MCM) requires a limited number of fatigue tests for calibrating the probability transition matrix (PTM) in the Markov chain model and mean fatigue cycles to failure from experiments. In order to construct the MCM stochastic S-N curve, an iterative procedure is required to predict the mean cycles to failure. Fatigue tests are conducted in this study to demonstrate the MCM method. Twenty-one open-hole S2-glass laminates are fatigue-cycled at two different stress levels. The coupon overall stiffness and surface-ply TSA damage area have been used as two damage metrics. The MCM can satisfactorily describe the overall fatigue damage evolution for a limited number of coupons (less than 6) subjected to a given specific stress level. The stochastic S-N curve can be constructed using at least two sets of fatigue tests under different stress levels. Three available fatigue tests for different E-glass laminates from the literature are also investigated using the proposed MCM approach. The results show the MCM method can provide the stochastic S-N curves for different composite systems and a wide range of fatigue cycles.
机译:这项研究开发了新的定量热弹性应力分析(TSA)技术,用于复合材料的断裂和疲劳损伤分析。;第一部分研究了两种定量TSA技术的热机械推导,该技术适用于具有和不具有横观各向同性表面的正交各向异性复合材料涂层。导出了新的TSA测试程序,以便将热红外(IR)图像与平面应变之和乘以两个新定义的可以通过实验预先校准的材料常数相加。进行了实验以验证TSA方法具有有限元(FE)数值结果以及可用的各向异性弹性解。;本研究的第二部分将定量TSA技术与Lekhnitskii的一般各向异性弹性解一起应用来计算混合模式应力强度破裂复合材料中的因素(SIF)。破裂的复合材料试件要承受相对于四个不同材料角度的离轴载荷,以生成混合模式SIF。使用最小二乘法将来自弹性溶液的面内应变总和与测得的TSA测试结果相关联。 I型和II型SIF由偏心加载的单边缘缺口拉力(ESE(T))复合材料样本确定。比较了有限元模型和虚拟裂纹闭合技术(VCCT)。第三部分,提出了一种新的随机模型来生成考虑疲劳过程变化性的S-N曲线。此累积损伤马尔可夫链模型(MCM)需要进行有限数量的疲劳测试,以校准马尔可夫链模型中的概率转换矩阵(PTM),并计算从实验到失效的平均疲劳周期。为了构造MCM随机S-N曲线,需要一个迭代过程来预测平均失效周期。在这项研究中进行了疲劳测试,以证明MCM方法。 21个裸眼S2玻璃层压板在两种不同的应力水平下进行了疲劳循环。试样的整体刚度和表面层TSA损伤面积已用作两个损伤指标。 MCM可以令人满意地描述在给定特定应力水平下有限数量的试样(小于6个)的总体疲劳损伤演变。可以使用至少两组在不同应力水平下的疲劳测试来构造随机S-N曲线。使用建议的MCM方法,还研究了文献中针对不同电子玻璃层压板的三种可用的疲劳测试。结果表明,MCM方法可以为不同的复合材料系统和广泛的疲劳循环提供随机的S-N曲线。

著录项

  • 作者

    Wei, Bo-Siou.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Aerospace.;Engineering Civil.;Engineering Mechanical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 127 p.
  • 总页数 127
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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