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Regulating complex geometries using layered depth-normal images for rapid prototyping and manufacturing

机译:使用分层的深度法线图像调节复杂的几何形状,以快速进行原型制作和制造

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Purpose - Most layer-based rapid prototyping systems use polygonal models as input. In addition, the input polygonal models need to be manifold and water-tight; otherwise the built objects may have defects or the building process may fail in some cases. This paper aims to present a regulation method of an arbitrarily complex polygonal model for rapid prototyping and manufacturing applications. Design/methodology/approach - The method is based on a semi-implicit representation of a solid model named the layered depth-normal images (LDNI), which sparsely encodes the shape boundary of a polygonal model in three orthogonal directions. In the method, input polygonal models or parametric equations are first converted into LDNI models. A regulation operator based on the computed LDNI models is presented. A volume tiling technique is developed for very complex geometries and high accuracy requirements. From the processed LDNI model, an adaptive contouring method is presented to construct a cell representation that includes both uniform and octree cells. Finally, two-manifold and water-tight polygonal mesh surfaces are constructed from the cell representation. Findings - The LDNI-based mesh regulation operation can be robust due to its simplicity. The accuracy of the generated regulated models can be controlled by setting LDNI pixel width. Parallel computing techniques can be employed to accelerate the computation in the LDNI-based method. Experimental results on various CAD models demonstrate the effectiveness and efficiency of our approach for complex geometries. Research limitations/implications - The input polygonal model is assumed to be closed in our method. The regulated polygonal model based on our method may have a big file size. Originality/value - A novel mesh regulation method is presented in this paper. The method is suitable for rapid prototyping and manufacturing applications by achieving a balance between simplicity, robustness, accuracy, speed and scalability. This research contributes to the additive manufacturing development by providing a digital data preparation method and related tools.
机译:目的-大多数基于层的快速原型系统都使用多边形模型作为输入。另外,输入的多边形模型需要是流形的和水密的。否则,在某些情况下,构建的对象可能会存在缺陷或构建过程可能会失败。本文旨在提出一种用于快速原型设计和制造应用的任意复杂多边形模型的调节方法。设计/方法/方法-该方法基于名为分层深度法线图像(LDNI)的实体模型的半隐式表示,该模型在三个正交方向上稀疏编码多边形模型的形状边界。在该方法中,首先将输入的多边形模型或参数方程式转换为LDNI模型。提出了一个基于算出的LDNI模型的调节算子。针对非常复杂的几何形状和高精度要求,开发了体积平铺技术。从处理后的LDNI模型中,提出了一种自适应轮廓方法来构造一个包含统一单元格和八叉树单元格的单元格表示。最后,由单元表示构造出两个歧管和水密的多边形网格表面。发现-基于LDNI的网状调节操作简单易行。可以通过设置LDNI像素宽度来控制生成的调节模型的精度。可以采用并行计算技术来加速基于LDNI的方法中的计算。在各种CAD模型上的实验结果证明了我们针对复杂几何形状的方法的有效性和效率。研究局限/含意-我们的方法假设输入多边形模型是封闭的。基于我们的方法的受管制多边形模型可能具有较大的文件大小。创意/价值-本文提出了一种新颖的网格调整方法。通过在简单性,鲁棒性,准确性,速度和可伸缩性之间取得平衡,该方法适用于快速原型设计和制造应用。该研究通过提供数字数据准备方法和相关工具,为增材制造的发展做出了贡献。

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