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Virtual modelling of a prosthetic foot to improve footwear testing

机译:虚拟假足模型以改善鞋类测试

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摘要

The footwear industry is continually producing more technically engineered shoes, therefore, it is necessary to improve existing laboratory footwear tests using simplistic rigid stamps to something more realistic. The aim of this article is to investigate the possibility of reverse engineering a standard commercially available component accurately enough to produce constructive results in a finite-element analysis (FEA). A prosthetic foot was chosen as it is commercially available and is more representative of a real foot. Information on its geometry and material properties were gathered using a non-destructive method. X-ray images and three-dimensional laser scanning were used to capture the dimensions of the internal and external geometries, whereas the vickers microhardness test and volume and mass calculations were used along with the Cambridge Engineering Selector software to identify material properties. To validate the finite-element prosthetic foot, a vertical heel compression and a forefoot flexibility laboratory test were conducted and mimicked in an FEA software package. Good and fair agreements were found in the two tests, respectively. It is concluded that a non-destructive approach to reverse engineer a standard component is an effective method of improving the realism of existing footwear tests both in reality and in finite-element situations.
机译:鞋类行业一直在生产技术含量更高的鞋,因此,有必要使用简单的刚性印章将现有的实验室鞋类测试改进为更现实的产品。本文的目的是研究对标准的商用零件进行反向工程的可能性,该零件应足够精确以在有限元分析(FEA)中产生建设性的结果。选择了假脚,因为它是可商购的,并且更能代表真脚。使用无损方法收集有关其几何形状和材料属性的信息。使用X射线图像和三维激光扫描来捕获内部和外部几何尺寸,而使用维氏显微硬度测试以及体积和质量计算以及Cambridge Engineering Selector软件来识别材料属性。为了验证有限元假足,进行了垂直足跟压缩和前足柔韧性实验室测试,并在FEA软件包中进行了模拟。在两个测试中分别找到了良好和公平的协议。得出的结论是,对标准组件进行逆向工程的非破坏性方法是一种在现实和有限元情况下改善现有鞋类测试的真实性的有效方法。

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