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首页> 外文期刊>Journal of manufacturing science and engineering: Transactions of the ASME >Additive Manufacturing Distortion Compensation Based on Scan Data of Built Geometry
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Additive Manufacturing Distortion Compensation Based on Scan Data of Built Geometry

机译:基于构建几何扫描数据的添加剂制造失真补偿

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摘要

Additive manufacturing (AM) processes such as direct metal laser sintering (DMLS) are highly attractive manufacturing processes due to the ability to create certain geometries which would be prohibitive or even impossible to manufacture by other means. However, with such high thermal gradients which are usually present in these processes, manufacturing distortions may result in the creation of unacceptable parts. This paper presents an approach to compensate input STL files based on registration of the point cloud from sacrificial part builds. A novel strain energy based non-rigid registration algorithm has been developed for robust registration of data points to the original computer-aided design (CAD) model. A neural network based approach is used to learn the deformation of the geometry based on the deviation of the scan geometry. This network is subsequently used to modify the STL file to generate a new compensated STL file. The compensated STL file was validated by building parts and comparing the change in the part distortion.
机译:由于产生某些几何形状的能力,添加剂制造(AM)诸如直接金属激光烧结(DMLS)的方法是高度吸引力的制造过程,这是通过其他方式缺乏甚至不可能制造的某些几何形状的能力。然而,利用通常存在于这些过程中的这种高热梯度,制造失真可能导致产生不可接受的部件。本文提出了一种方法来基于牺牲部分构建的点云注册来补偿输入STL文件。已经开发了一种新的应变能量的非刚性登记算法,用于对原始计算机辅助设计(CAD)模型的数据指向的鲁棒登记。基于神经网络的方法用于基于扫描几何形状的偏差来学习几何形状的变形。随后使用此网络来修改STL文件以生成新的补偿STL文件。补偿的STL文件通过构建零件并进行比较零件失真的变化进行验证。

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