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A finite element based approach for the accurate determination of the shear behaviour of textiles with the picture-frame shear test

机译:基于像框剪切测试的基于有限元的方法可准确确定纺织品的剪切性能

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Picture frame shear tests are state of the art for determining the shear force vs. shear angle behaviour for in-plane deformation of most technical textiles, such as woven fabrics. Many publications describe this test and the used picture frames. Benchmark tests showed that the measured shearing behaviour for one sample depends on the picture frame used. The shearing rigidity of most textiles is very small compared to the in-plane tensile stiffness, so slight imperfections on the experimental setup have a significant effect on the measured results. During the picture frame test, wrinkles may form on the sample surface during the motion of the picture frame above a critical shear angle. These wrinkles can be described as local fabric buckling. If forming of wrinkles leads to a lower level of internal energy compared to a further shearing of the fabric, local wrinkles occur due to the principle of least action. Because of this effect, the measured shear force above the first formation of wrinkles is inaccurate for describing the exact shearing behaviour of textiles. Another possibility for measuring the shear force vs. shear angle behaviour is the bias-extension test. Here, higher shear angles can be achieved without the formation of wrinkles. Both methods are compared in this paper for different textile samples. The relationship of the shear angle vs. the applied shear force is one of the most important input data in numerical drape simulations. The analysis of wrinkles, which occur during textile draping, demands exact input parameters for the simulation. Most important for the drape simulation of technical high-performance textiles are accurate values for the bending and shear behaviours. This paper presents simulation results of the wrinkling during a picture frame shear test. Results show that the model input data for the shear rigidity measured with the picture frame shear test do not reproduce the formed wrinkles in the simulations compared to experiments exactly. Therefore, they are not suitable for an exact drape simulation. The underestimation of the shear force vs. shear angle behaviour is shown with a finite element simulation model. The adaptation of the picture-frame and bias-extension parameters for a proper use in numerical drape simulations is examined.
机译:相框剪切测试是用于确定大多数工业用纺织品(例如机织织物)的面内变形的剪切力与剪切角行为的最新技术。许多出版物描述了该测试和使用的相框。基准测试表明,一个样品的测量剪切行为取决于所使用的相框。与面内拉伸刚度相比,大多数纺织品的剪切刚度非常小,因此对实验装置的轻微影响会对测量结果产生重大影响。在相框测试过程中,在超过临界剪切角的相框运动过程中,样品表面可能会形成皱纹。这些皱纹可被描述为局部织物弯曲。如果皱纹的形成与织物的进一步剪切相比导致较低的内部能量,则由于最小作用原理而发生局部皱纹。由于这种作用,在描述皱纹的第一个形成部分上方的测量剪切力对于描述纺织品的精确剪切行为是不准确的。测量剪切力与剪切角特性的另一种可能性是偏压延伸测试。在此,可以在不形成褶皱的情况下获得更高的剪切角。本文针对不同的纺织品样品对这两种方法进行了比较。剪切角与施加的剪切力之间的关系是数值悬垂仿真中最重要的输入数据之一。分析在织物悬垂过程中发生的皱纹,需要精确的输入参数来进行仿真。对于高性能织物的悬垂模拟,最重要的是弯曲和剪切性能的准确值。本文介绍了在相框剪切试验中起皱的模拟结果。结果表明,与实验相比,用相框剪切试验测得的剪切刚度的模型输入数据在模拟中无法重现形成的皱纹。因此,它们不适合进行精确的悬垂仿真。有限元模拟模型显示了对剪力与剪角特性的低估。研究了在数字悬垂仿真中正确使用的相框和偏差扩展参数的适应性。

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