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A Reverse Compensation Framework for Shape Deformation Control in Additive Manufacturing

机译:增材制造中形状变形控制的逆向补偿框架

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Shape deformation is a well-known problem in additive manufacturing (AM). For example, in the stereolithography (SL) process, some of the factors that lead to part deformation including volumetric shrinkage, thermal cooling, added supporting structures, and the layer-by-layer building process. Variant sources of deformation and their interactions make it difficult to predict and control the shape deformation to achieve high accuracy that is comparable to numerically controlled machining. In this paper, a computational framework based on a general reverse compensation approach is presented to reduce the shape deformation in AM processes. In the reverse compensation process, the shape deformation is first calculated by physical measurements. A novel method to capture the physical deformation by finding the optimal correspondence between the deformed shape and the given nominal model is presented. The amount of compensation is determined by a compensation profile that is established based on nominal and offset models. The compensated digital model can be rebuilt using the same building process for a part with significantly less part deformation than the built part related to the nominal model. Two test cases have been performed to demonstrate the effectiveness of the presented computational framework. There is a 40-60% improvement in terms of L~2- and L~∞-norm measurements on geometric errors.
机译:形状变形是增材制造(AM)中的一个众所周知的问题。例如,在立体光刻(SL)过程中,导致零件变形的一些因素包括体积收缩,热冷却,增加的支撑结构以及逐层构建过程。变形的各种来源及其相互作用使得难以预测和控制形状变形以获得与数控加工相当的高精度。本文提出了一种基于通用逆向补偿方法的计算框架,以减少增材制造过程中的形状变形。在反向补偿过程中,首先通过物理测量来计算形状变形。提出了一种通过找到变形形状与给定标称模型之间的最佳对应关系来捕获物理变形的新方法。补偿量由基于轮廓模型和偏移模型建立的补偿曲线确定。补偿后的数字模型可以使用相同的构建过程来重建,零件的变形比与标称模型有关的已构建零件的变形小得多。已经执行了两个测试用例,以证明所提出的计算框架的有效性。在几何误差的L〜2-和L〜∞-范数测量方面,有40-60%的改进。

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