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Discrete modeling of sculptured surface machining for robust automatic feedrate selection.

机译:雕刻曲面加工的离散建模可实现强大的自动进给率选择。

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摘要

Traditional feedrate selection techniques currently used in three and five-axis CNC machining reduces milling efficiency. Manually estimated feedrates tend to be conservative and constant, greatly increasing mill time. The goal of this research is to develop robust techniques and software tools for automatically generating optimized feedrates for use on three and five-axis CNC mills, to both simplify the feed selection process and to increase the safety and efficiency of the milling operation through milling process simulation.; The simulation software estimates milling force vectors for each tool move, and identifies a feedrate that maintains a desired peak force. The desired cutting force value may be selected to prevent cutter breakage, maintain part tolerance, or meet some other criteria. Other conditions are also considered, such as maximum allowable chip thickness and machine constraints. This allows for the generation of variable feedrates that are optimized for each tool move.; The software consists of three distinct portions: a discrete mechanistic model, a discrete geometric model, and a CNC machine model. The mechanistic model estimates cutting forces as a function of cut geometry, cutter/stock relative velocity, and material constants. The geometric model keeps track of the changing in-process stock geometry and provides the cut geometry parameters required by the mechanistic model. The CNC machine model calculates the cutter/stock relative velocity based on feed inputs, machine kinematics, and controller behavior. A feed value is calculated in an iterative manner for each tool move based on the force estimates. The results of this research have produced accurate force estimates during sculptured surface machining, and have also demonstrated that this approach at automatic feedrate selection is feasible. Testing of feedrate selection has included the five-axis milling of production turbomachinery in an industrial environment. An average improvement in efficiency of 20% has resulted from the use of the optimized feeds.
机译:当前在三轴和五轴CNC加工中使用的传统进给率选择技术会降低铣削效率。手工估算的进给速度趋于保守且恒定,大大增加了磨粉时间。这项研究的目的是开发强大的技术和软件工具,以自动生成用于三轴和五轴CNC铣床的优化进给率,以简化进给选择过程,并通过铣削过程提高铣削操作的安全性和效率模拟。;该仿真软件估计每个刀具运动的铣削力矢量,并确定保持所需峰值力的进给率。可以选择所需的切削力值以防止刀具破损,保持零件公差或满足某些其他标准。还考虑其他条件,例如最大允许切屑厚度和机器限制。这样就可以生成针对每个刀具移动进行优化的可变进给率。该软件包括三个不同的部分:离散的机械模型,离散的几何模型和CNC机床模型。力学模型根据切削几何形状,切削刀具/刀具相对速度和材料常数估算切削力。几何模型跟踪变化中的过程中的库存几何形状,并提供机械模型所需的切割几何参数。 CNC机床模型基于进料输入,机床运动学和控制器行为来计算刀具/刀具的相对速度。根据力估计值,针对每个刀具运动以迭代方式计算进给值。这项研究的结果在雕刻表面加工过程中产生了准确的力估算值,并且还证明了这种在自动进给速度选择上的方法是可行的。进给率选择的测试包括在工业环境中对生产涡轮机械进行五轴铣削。使用优化的饲料可使效率平均提高20%。

著录项

  • 作者

    Hemmett, Jeffrey Gordon.;

  • 作者单位

    University of New Hampshire.;

  • 授予单位 University of New Hampshire.;
  • 学科 Engineering Mechanical.; Engineering Industrial.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 303 p.
  • 总页数 303
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;一般工业技术;
  • 关键词

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