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Curvature gouge detection and prevention in 5-axis CNC machining.

机译:5轴CNC加工中的曲率凿痕检测和预防。

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摘要

Five-axis CNC machining presents high efficiency and unparallel flexibility in the machining of complex curved surfaces. However, generation of gouge-free CNC tool path and cutter orientation in 5-axis CNC machining remains a challenge due to the complex nature of the geometry problem encountered and the wide variations of surface geometry. In particular, curvature gouge is the biggest obstacle that hinders the advantages of 5-axis CNC machining. At present to avoid curvature gouge, a ball mill cutter with simple cutter geometry is mostly used in machining complex curved surfaces, although this either leads to lengthy machining time or poor surface finish with larger cusps which require extensive amount of hand polishing later on. An end and/or torus mill cutters with better cutter-surface curvature match can considerably improve the efficiency of the machining and the quality of the machined surface. But generation of appropriate tool paths and orientations for the more complex cutter geometry in gouge-free 5-axis CNC machining of curved surface requires a better understanding and a rigorous model of cutter-surface interaction, which do not exist at present.; In this work, a rigorous mathematical model of cutter-surface geometry that facilitate better understanding on the interactions between various mill cutters, including ball, torus and end mills, and curved surface is introduced. The model is based on the new Euler-Meusnier Sphere (EMS) concept from a generic mathematical and geometric model of the cutter and surface geometry. The EMS model determines the curvature gouge constraints with varying cutter size and maximum cutter tilting angle for any given surfaces. A generic, global curvature gouge detection and avoidance method for the 5-axis CNC machining of concave, curved surfaces has been introduced. The method also improves curvature match between the cutter and the machined surface by facilitating the use of torus and end mill cutters.; Computer simulation tests and real part machining have been carried out to assess the effectiveness of the new theory and newly introduced curvature gouge detection and avoidance criteria. Five-axis CNC machining experiments on curved surface, e.g. ellipse and exponent surfaces, are carried out. The machined surfaces following different tool path and cutter orientation strategies are measured using a CMM to appraise the real benefit of the introduced approach. The method has been applied to all three types of commonly used mill cutters: end, torus and sphere, for concave curved surfaces with limited curvature variation. The machining experiments have demonstrated the superior capability of the new method in providing guaranteed gouge elimination, better surface quality, and simple implementation, in comparing with existing 5-axis tool path and cutter orientation planning methods.; The new EMS concept and curvature gouge detection/elimination method form the foundation for generating highly efficient, high quality surface producing 5-axis CNC tool path, and cutter orientation planning, programming and optimization for machining curved surfaces.
机译:五轴CNC加工在复杂曲面的加工中表现出高效率和无与伦比的灵活性。但是,由于遇到的几何问题的复杂性和表面几何的广泛变化,在5轴CNC加工中生成无凿CNC刀具路径和刀具定向仍然是一个挑战。特别地,曲率凿是最大的障碍,阻碍了5轴CNC加工的优势。目前,为避免产生曲率凿痕,具有简单刀具几何形状的球磨机刀具通常用于加工复杂的曲面,尽管这会导致较长的加工时间或较大的尖端产生较差的表面光洁度,随后需要大量的手工抛光。具有更好的刀具表面曲率匹配的端铣刀和/或环形铣刀可以显着提高加工效率和加工表面的质量。但是,要在无气刨的5轴CNC曲面加工中为更复杂的刀具几何形状生成合适的刀具路径和方向,需要更好的了解和对刀具表面相互作用的严格模型,而目前尚不存在这种模型。在这项工作中,引入了一种严格的刀具表面几何数学模型,该模型有助于更好地理解各种铣刀(包括球磨机,环面铣刀和立铣刀)与曲面之间的相互作用。该模型基于新的Euler-Meusnier球体(EMS)概念,该概念来自于刀具和表面几何形状的通用数学和几何模型。对于任何给定的表面,EMS模型都可以通过改变切刀尺寸和最大切刀倾斜角来确定曲率气刨约束。介绍了一种用于凹面,弯曲表面的5轴CNC加工的通用全局曲柄切屑检测和避免方法。该方法还通过促进使用环形和立铣刀来改善刀具和加工表面之间的曲率匹配。已经进行了计算机模拟测试和实际零件加工,以评估新理论和新引入的曲率气刨检测和避免标准的有效性。在曲面上进行五轴CNC加工实验,例如椭圆和指数表面。使用CMM测量遵循不同刀具路径和刀具定向策略的加工表面,以评估所引入方法的真正优势。该方法已应用于所有三种常用的铣刀:端部,圆环和球形,用于曲率变化有限的凹曲面。机加工实验证明,与现有的5轴刀具路径和刀具方向规划方法相比,该新方法在确保消除切屑,更好的表面质量和简单实施方面具有卓越的功能。新的EMS概念和曲率凿痕检测/消除方法为生成高效,高质量曲面生成5轴CNC刀具路径以及刀具定向计划,编程和优化曲面加工奠定了基础。

著录项

  • 作者

    Wang, Yin Jack.;

  • 作者单位

    University of Victoria (Canada).;

  • 授予单位 University of Victoria (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 112 p.
  • 总页数 112
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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