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Thin-Walled Part Machining Process Parameters Optimization based on Finite-Element Modeling of Workpiece Vibrations

机译:基于工件振动有限元建模的薄壁零件加工工艺参数优化

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Arising vibrations when milling thin-walled parts are the most essential factor that limits machining productivity and surface location accuracy. Such vibrations have large amplitude and often result in irreversible workpiece damage on finishing stage. Vibrations appear as a result of resonance of workpiece natural frequencies and cutting force spectrum harmonics from tooth- passing impacts.To eliminate resonance vibrations it is suggested to tune spindle speed in such a way, that workpiece natural frequencies differs from tooth-passing frequency harmonics. In practice changing of natural frequencies due to stock removal and changing of cutter position during machining process need to be considered.To estimate natural frequencies and mode shapes of workpiece mounted on NC machine worktable and its evolution during the process it is reasonable to apply widespread finite element modeling software. Using of FEM methods for vibration process modeling is considered. Also practical example of machining thin blade of compressor's aerodynamic model is considered.
机译:铣削薄壁零件时引起振动是限制加工生产率和表面定位精度的最重要因素。这样的振动幅度大,并经常在精加工阶段导致不可逆的工件损坏。振动是由于工件固有频率和切齿冲击引起的切削力频谱谐波的共振而产生的。为消除共振振动,建议以这种方式调整主轴转速,即工件固有频率不同于通过齿的频率谐波。在实践中,需要考虑由于切削而导致的固有频率变化以及加工过程中刀具位置的变化。要估算安装在数控机床工作台上的工件的固有频率和模态及其在加工过程中的演变,合理地应用广泛的有限元素建模软件。考虑使用有限元方法进行振动过程建模。还考虑了加工压缩机空气动力学模型的薄叶片的实际示例。

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