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Geometric deviation modeling with Statistical Shape Analysis in Design for Additive Manufacturing

机译:增材制造设计中具有统计形状分析的几何偏差建模

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Effective modeling of geometric deviations is an important issue in Design for Additive Manufacturing (DfAM), since it enables the evaluation of geometric consistency and the optimization of geometric design. Motivated by the awareness that process-related factors have non-trivial effects on geometric deviations, a new method is proposed in this paper which combines Statistical Shape Analysis with Gaussian Process to enable the modeling of deviations with consideration of process parameters. By learning from a number of simulated samples, the method could achieve effective prediction of deviations for new parts. Its applications in surface deformation evaluation and geometric compensation are also discussed, which will bring substantial benefits to DfAM.
机译:几何偏差的有效建模是增材制造设计(DfAM)中的一个重要问题,因为它可以评估几何一致性并优化几何设计。出于认识到与过程相关的因素对几何偏差具有微不足道的影响的动机,本文提出了一种新方法,该方法将统计形状分析与高斯过程相结合,从而能够在考虑过程参数的情况下对偏差进行建模。通过从大量模拟样本中学习,该方法可以有效预测新零件的偏差。还讨论了其在表面变形评估和几何补偿中的应用,这将为DfAM带来实质性的好处。

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