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ANALYSIS OF THEORETICAL, NUMERICAL AND EXPERIMENTAL DISPLACEMENT FIELDS IN THE BULK OF A CRACKED SPECIMEN.

机译:裂纹样本大部分的理论,数值和实验位移场分析。

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The aim of this study is to evaluate 3D numerical simulation and 2D theory on a single edge notch cracked specimen loaded in mode I in light of 3D experimental data. To achieve this aim, Digital Volume Correlation coupled to X-ray micro-computed tomography is used to acquire the three experimental components of displacement through the whole solid. The specimen used for the experiment is made of polyurethane blended with copper particles. Theoretical displacement components are obtained by Williams 2D formulations for both plane-strain and plane-stress approaches. Finally, the numerical simulation is made on the finite element software CASTEM and relies on an existing model based on Nakamura and Parks work with a circular mesh around a straight crack front. A comparison is then performed between experimental, numerical, plane-stress and plane-strain approaches for the full field displacements through the specimen. Theoretical approach provides results different from the ones obtained experimentally, especially for the u_x and u_z components for which theoretical assumptions are not relevant of the experimental reality. Numerical approach gives similar results to the experimental ones; differences between these two approaches are of the same order of the accuracy of the Digital Volume Correlation method.
机译:本研究的目的是评估在3D实验数据中加载的单个边缘凹口裂纹标本上的3D数值模拟和2D理论。为实现这种目的,耦合到X射线微计算机断层扫描的数字体积相关性用于通过整个固体获取位移的三个实验组分。用于实验的样品由与铜颗粒共混的聚氨酯制成。理论位移部件是通过威廉姆斯2D制剂用于平面应变和平面应力方法。最后,在有限元软件Castem上进行了数值模拟,并依赖于基于Nakamura的现有模型,并在直接裂缝前方的圆形网上工作。然后在通过样本的完整田间位移的实验,数值,平面应力和平面 - 应变方法之间进行比较。理论方法提供与实验获得的结果不同的结果,特别是对于理论假设与实验现实无关的U_X和U_Z组件不同。数值方法与实验结果相似的结果;这两种方法之间的差异是相同的数字体积相关方法的准确性顺序。

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