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Efficient NC Simulation for Multi-Axis Solid Machining With a Universal APT Cutter

机译:使用通用APT刀具进行多轴实体加工的高效NC仿真

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In multi-axis machining of dies and molds with complex sculptured surfaces, numerical control (NC) simulation/verification is a must for the avoidance of expensive rework and material waste. Despite the fact that NC simulation has been extensively used by industries for many years, efficient, accurate, and reliable view-independent simulation of multi-axis NC machining still remains a difficult challenge. This paper presents the use of adaptive voxel data structure in conjunction with the modeling of a universal cutter for the development of an efficient and reliable multi-axis (typically five-axis) simulation procedure. The octree-based voxel representation of the workpiece saves a significant amount of memory space without sacrificing the simulation accuracy. Rendering of the voxel-based model is view independent and does not suffer from any aliasing effect, due to the real-time triangulation of the boundary surfaces using an extended marching cube algorithm. Implicit algebraic equations are used to model the automatically programed tool geometry, which can represent a universal cutter with high precision. In addition, the proposed method allows users to perform error analysis and gouging detection by comparing the machined surfaces with the original computer-aided design (CAD) model. Illustration of the implementation and experimental results demonstrate that the proposed method is reliable, accurate, and highly efficient.
机译:在具有复杂雕刻表面的模具的多轴加工中,必须进行数控(NC)仿真/验证,以避免昂贵的返工和材料浪费。尽管NC模拟已经被工业界广泛使用了许多年,但是高效,准确和可靠的与视图无关的多轴NC加工模拟仍然是一个困难的挑战。本文介绍了将自适应体素数据结构与通用刀具的建模结合使用,以开发有效且可靠的多轴(通常为五轴)仿真程序的过程。工件的基于八叉树的体素表示可节省大量存储空间,而不会牺牲模拟精度。基于体素的模型的渲染是独立于视图的,并且不会受到任何混叠效果的影响,这是由于使用扩展的行进立方体算法对边界表面进行了实时三角剖分。隐式代数方程式用于对自动编程的刀具几何形状进行建模,可以代表高精度的通用刀具。另外,该方法允许用户通过将加工表面与原始计算机辅助设计(CAD)模型进行比较来执行错误分析和气刨检测。实施实例和实验结果表明,该方法可靠,准确,高效。

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