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A dynamic priority-based approach to concurrent toolpath planning for multi-material layered manufacturing

机译:基于动态优先级的多材料分层制造并行刀具路径规划方法

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摘要

This paper presents an approach to concurrent toolpath planning for multi-material layered manufacturing (MMLM) to improve the fabrication efficiency of relatively complex prototypes. The approach is based on decoupled motion planning for multiple moving objects, in which the toolpaths of a set of tools are independently planned and then coordinated to deposit materials concurrently. Relative tool positions are monitored and potential tool collisions detected at a predefined rate. When a potential collision between a pair of tools is detected, a dynamic priority scheme is applied to assign motion priorities of tools. The traverse speeds of tools along the x-axis are compared, and a higher priority is assigned to the tool at a higher traverse speed. A tool with a higher priority continues to deposit material along its original path, while the one with a lower priority gives way by pausing at a suitable point until the potential collision is eliminated. Moreover, the deposition speeds of tools can be adjusted to suit different material properties and fabrication requirements. The proposed approach has been incorporated in a multi-material virtual prototyping (MMVP) system. Digital fabrication of prototypes shows that it can substantially shorten the fabrication time of relatively complex multi-material objects. The approach can be adapted for process control of MMLM when appropriate hardware becomes available. It is expected to benefit various applications, such as advanced product manufacturing and biomedical fabrication. © 2010 Elsevier Ltd. All rights reserved.
机译:本文提出了一种用于多材料分层制造(MMLM)的并发刀具路径规划方法,以提高相对复杂的原型的制造效率。该方法基于对多个运动对象的解耦运动计划,其中,一组工具的刀具路径是独立计划的,然后进行协调以同时沉积材料。监视相对刀具位置,并以预定速率检测潜在的刀具碰撞。当检测到一对工具之间可能发生碰撞时,将使用动态优先级方案来分配工具的运动优先级。比较了沿x轴的刀具移动速度,并以较高的移动速度为刀具分配了更高的优先级。优先级较高的工具继续沿其原始路径沉积材料,而优先级较低的工具则通过在适当的位置暂停直到消除潜在的碰撞来让步。此外,可以调整工具的沉积速度以适合不同的材料特性和制造要求。所提出的方法已被并入多材料虚拟原型(MMVP)系统中。原型的数字制造表明,它可以大大缩短相对复杂的多材料对象的制造时间。当适当的硬件可用时,该方法可以适用于MMLM的过程控制。预计它将有益于各种应用,例如先进产品制造和生物医学制造。 ©2010 ElsevierLtd。保留所有权利。

著录项

  • 作者

    Zhu WK; Choi SH;

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  • 年度 2010
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  • 原文格式 PDF
  • 正文语种 eng
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