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Multi-Camera DIC Offers New Dimensions in Material Testing

机译:多摄像头DIC在材料测试中提供新尺寸

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Optical full field techniques, like digital image correlation (DIC) become more and more standard tools for the determination of material parameters. Especially for anisotropic materials the multidimensional information is important. For example, up to now this is limited to 2D strain information. The use of the innovative cluster approach for DIC and a multi camera setup in a standard tensile test allows the access to the third dimension and measure not just the strain on one surface but on both surfaces and in thickness direction. With the cluster approach the points to be evaluated are not defined by an image of one camera, like in conventional DIC systems, but on the object. In this case every object point seen by two or more cameras can be measured, independently of the arrangement of the cameras. In a front back side arrangement e.g. during a tensile test, both sides of the sample are measured simultaneously. As all cameras are calibrated in a common coordinate system the thickness of sample and any changes are measured directly. In this way the strain in thickness direction is measureable directly. As an example we present the measurement on a simple aluminium sample up to failure. The difference in the strain in direction of thickness and on the surface indicates anisotropic material properties caused by the process of manufacturing.
机译:与数字图像相关(DIC)相同的光学全场技术成为越来越多的标准工具,用于确定材料参数。特别是对于各向异性材料,多维信息很重要。例如,到目前为止,这仅限于2D应变信息。在标准拉伸试验中使用DIC的创新群集方法和多摄像机设置允许访问第三维度并不仅仅是一个表面上的应变,而且在两个表面和厚度方向上进行测量。对于群集方法,要评估的点不是由一个相机的图像定义,例如在传统的DIC系统中,而是在对象上。在这种情况下,可以独立于摄像机的布置来测量两个或更多个相机所见的每个对象点。在前后侧的方案中。在拉伸试验期间,同时测量样品的两侧。由于所有相机都在常见的坐标系中校准样品的厚度和任何变化的厚度。以这种方式,厚度方向的应变直接可测量。作为一个例子,我们将测量值呈现出简单的铝样品达到故障。厚度方向和表面的应变的差异表明由制造过程引起的各向异性材料特性。

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