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A hybrid and adaptive tool-path generation approach of rapid prototyping and manufacturing for biomedical models

机译:用于生物医学模型的快速原型制作和制造的混合和自适应工具路径生成方法

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摘要

In this paper, a hybrid and adaptive tool-path generation approach, which is able to improve geometrical accuracy and build time of rapid prototyping/manufacturing (RP/M) for complex biomedical models, is presented. Firstly, NURBS (Non-Uniform Rational B-Spline)-based curves were introduced to represent the boundary contours of sliced layers to keep the high-fidelity information of original models. Secondly, a hybrid tool-path generation algorithm was then developed to generate contour and zigzag tool-paths. The contour tool-paths are used to fabricate the boundary and neighbouring regions of each sliced layer to preserve geometrical accuracy, and zigzag tool-paths for the internal region of the layer to simplify computing processes and speed up fabrication. Thirdly, based on developed build time and geometrical accuracy analysis models, algorithms were designed to generate an adaptive speed of the RP/M's nozzle/ print head for the contour tool-paths to address the geometrical characteristics of each layer, and to identify the best slope degree of the zigzag tool-paths towards achieving the minimum build time. Finally, five case studies of biomedical models with different geometrical characteristics and complexity were used to verify and demonstrate the improved performance of the approach in terms of processing effectiveness, geometrical accuracy and algorithm robustness.
机译:本文提出了一种混合自适应工具路径生成方法,该方法能够提高几何精度并为复杂的生物医学模型建立快速原型/制造(RP / M)的时间。首先,引入基于NURBS(非均匀有理B样条)的曲线来表示切片层的边界轮廓,以保留原始模型的高保真度信息。其次,开发了一种混合的刀具路径生成算法,以生成轮廓和锯齿形的刀具路径。轮廓工具路径用于制造每个切片层的边界和相邻区域以保持几何精度,而锯齿形工具路径用于层的内部区域以简化计算过程并加快制造速度。第三,基于已开发的构建时间和几何精度分析模型,设计算法以生成RP / M喷嘴/打印头的自适应速度,以适应轮廓刀具路径,以解决每一层的几何特征,并确定最佳之字形工具路径的倾斜度,以实现最短的构建时间。最后,对具有不同几何特征和复杂性的生物医学模型进行了五个案例研究,以验证和证明该方法在处理效率,几何精度和算法鲁棒性方面的改进性能。

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