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A new Steiner patch based file format for Additive Manufacturing processes

机译:用于增材制造过程的基于Steiner补丁的新文件格式

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摘要

Additive Manufacturing (AM) processes adopt a layering approach for building parts in continuous slices and use the Standard Tessellation Language (STL) file format as an input to generate the slices during part manufacturing. However, the current STL format uses planar triangular facets to approximate the surfaces of the parts. This approximation introduces errors in the part representation which leads to additional errors downstream in the parts produced by AM processes. Recently, another file format called Additive Manufacturing File (AMF) was introduced by ASTM which seeks to use curved triangles based on second degree Hermite curves. However, while generating the slices for manufacturing the part, the curved triangles are recursively sub-divided back to planar triangles which may lead to the same approximation error present in the STL file. This paper introduces a new file format which uses curved Steiner patches instead of planar triangles for not only approximating the part surfaces but also for generating the slices. Steiner patches are bounded Roman surfaces and can be parametrically represented by rational Bezier equations. Since Steiner surfaces are of higher order, this new Steiner file format will have a better accuracy than the traditional STL and AMF formats and will lead to lower Geometric Dimensioning and Tolerancing (GD&T) errors in parts manufactured by AM processes. Since the intersection of a plane and the Steiner patch is a closed form mathematical solution, the slicing of the Steiner format can be accomplished with very little computational complexity. The Steiner representation has been used to approximate the surfaces of two test parts and the chordal errors in the surfaces are calculated. The chordal errors in the Steiner format are compared with the STL and AMF formats of the test surfaces and the results have been presented. Further, an error based adaptive tessellation algorithm is developed for generating the Steiner representation which reduces the number of curved facets while still improving the accuracy of the Steiner format. The test parts are virtually manufactured using the adaptive Steiner, STL and AMF format representations and the GD&T errors of the manufactured parts are calculated and compared. The results demonstrate that the modified Steiner format is able to significantly reduce the chordal and profile errors as compared to the STL and AMF formats. (c) 2015 Elsevier Ltd. All rights reserved.
机译:增材制造(AM)工艺采用分层方法在连续切片中构建零件,并使用标准镶嵌语言(STL)文件格式作为输入,以在零件制造过程中生成切片。但是,当前的STL格式使用平面三角形小平面来近似零件的表面。这种近似会在零件表示中引入误差,这会导致AM工艺生产的零件下游出现其他误差。最近,ASTM引入了另一种称为“增材制造文件(Additive Manufacturing File)”的文件格式,该文件试图使用基于二阶Hermite曲线的弯曲三角形。但是,在生成用于制造零件的切片时,将弯曲的三角形递归地细分为平面三角形,这可能导致STL文件中存在相同的近似误差。本文介绍了一种新文件格式,该文件格式使用弯曲的Steiner色块代替平面三角形,不仅用于逼近零件表面,而且用于生成切片。 Steiner面片是有界罗马表面,可以用有理Bezier方程参数化表示。由于Steiner曲面的阶数较高,因此这种新的Steiner文件格式将比传统的STL和AMF格式具有更好的精度,并且将降低由AM工艺制造的零件的几何尺寸和公差(GD&T)错误。由于平面和Steiner面片的交点是一种封闭形式的数学解决方案,因此Steiner格式的切片可以用很少的计算复杂性来完成。 Steiner表示已用于近似两个测试零件的表面,并计算了表面中的弦误差。将斯坦纳格式的弦误差与测试表面的STL和AMF格式进行比较,并给出了结果。此外,开发了基于错误的自适应细分算法,用于生成Steiner表示,该表示减少了曲面的数量,同时仍提高了Steiner格式的准确性。使用自适应Steiner,STL和AMF格式表示来虚拟制造测试零件,并计算和比较制造零件的GD&T误差。结果表明,与STL和AMF格式相比,修改后的Steiner格式能够显着减少弦和轮廓错误。 (c)2015 Elsevier Ltd.保留所有权利。

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