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Using image data for Quality Assurance in Additive Manufacturing

机译:使用图像数据进行添加剂制造中的质量保证

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Additive Manufacturing (AM) processes currently suffer from high failure rates, which can amount to immense danger when the AM parts are incorporated in complex systems used by the public, i.e. cars, airplanes, or construction. Most current AM Quality Assurance (QA) methods are conducted post production, though ultrasonic testing may also be conducted while a part is being built. The focus of the project is to build a non-destructive post-production verification process that uses image data to render 3D models of the actual build, which will aid users in determining the quality of a part. The visualization process presented here will automate some labor intensive tasks and ultimately help users easily determine how print parameters affect the quality of a build by collating and cleaning image data from actual builds, storing data efficiently, and creating visualizations of the images. A crucial outcome of this research is the ability to determine the quality of a final printed object without destroying it for QA inspection.
机译:当前患有高衰竭率的加性制造(AM)过程患有高衰竭率,当AM部件结合在公众使用的复杂系统中,即汽车,飞机或建筑物。大多数当前AM质量保证(QA)方法是开发后的生产,但也可以在构建零件时进行超声波测试。该项目的重点是建立一个非破坏性的后期生产后验证过程,它使用图像数据呈现实际构建的3D模型,这将帮助用户确定部分的质量。此处呈现的可视化过程将自动化一些劳动密集型任务,最终帮助用户轻松确定如何通过从实际构建中的图像数据,有效地存储数据来影响构建的质量,并创建图像的可视化。该研究的一个关键结果是能够确定最终印刷物体的质量而不破坏QA检查。

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