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Virtual Five-Axis Flank Milling of Jet Engine Impellers - Part Ⅱ: Feed Rate Optimization of Five-Axis Flank Milling

机译:喷气发动机叶轮的虚拟五轴齿面铣削-第二部分:五轴齿面铣削进给速度的优化

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This paper presents optimization schemes for the five-axis flank milling of jet engine impellers based on the mechanics model explained in Part I. The process is optimized by varying the feed automatically as the tool-workpiece engagements, i.e. the process, varies along the tool path. The feed is adjusted by limiting feed-dependent peak outputs to a set of user-defined constraints. These outputs are tool shank bending stress, tool deflection, maximum chip load (to avoid edge chipping) and the torque limit of the machine. The linear and angular feeds of the machine are optimized by two different methods - a multi-constraint based virtual adaptive control of the process and a non-linear root finding algorithm. The five-axis milling process is simulated in a virtual environment, and the resulting process outputs are stored at each position along the tool path. The process is recursively fitted to a first order process with a time varying gain and a fixed time constant, and a simple Proportional Integral controller is adaptively tuned to operate the machine at threshold levels by manipulating the feedrate. As an alternative to virtual adaptive process control, the feedrate is optimized by a non-linear root-finding algorithm. The optimum feed is solved for iteratively, respecting tool stress, tool deflection, torque and chip load constraints, using a non-linear root finding algorithm. Both methods are shown to produce almost identical optimized feed rate profiles for the roughing tool path discussed in Part Ⅰ of the paper. The new feed rate profiles are shown to considerably reduce the cycle time of the impeller while avoiding process faults that may damage the part or the machine.
机译:本文根据第一部分介绍的力学模型,提出了喷气发动机叶轮五轴侧面铣削的优化方案。随着刀具与工件的啮合(即工艺)沿刀具的变化而自动改变进给量,从而对工艺进行了优化。小路。通过将与进料相关的峰值输出限制为一组用户定义的约束,可以调整进料。这些输出是刀柄弯曲应力,刀具挠度,最大切屑载荷(以避免边缘崩裂)和机器的扭矩极限。通过两种不同的方法优化了机器的线性进给和角进给-基于多约束的过程虚拟自适应控制和非线性寻根算法。在虚拟环境中模拟五轴铣削过程,并将结果过程输出存储在沿刀具路径的每个位置。该过程以具有时变增益和固定时间常数的方式递归地拟合到一阶过程中,并且一个简单的比例积分控制器会通过调节进给速度自适应调整为以阈值水平运行机器。作为虚拟自适应过程控制的替代方法,可通过非线性寻根算法优化进给率。使用非线性寻根算法,可在考虑刀具应力,刀具偏斜,扭矩和切屑载荷约束的情况下,迭代地求解最佳进给。结果表明,两种方法都能为本文第Ⅰ部分中讨论的粗加工刀具路径产生几乎相同的优化进给速率曲线。新的进给速率曲线显示出可大大缩短叶轮的循环时间,同时避免了可能损坏零件或机器的过程故障。

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