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首页> 外文期刊>CIRP Annals >Virtual Design and Optimization of Machine Tool Spindles
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Virtual Design and Optimization of Machine Tool Spindles

机译:机床主轴的虚拟设计与优化

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摘要

An integrated digital model of spindle, tool holder, tool and cutting process is presented. The spindle is modeled using an in-house developed Finite Element system. The preload on the bearings and the influence of gyroscopic and centrifugal forces from all rotating parts due to speed are considered. The bearing stiffness, mode shapes, Frequency Response Function at any point on the spindle can be predicted. The static and dynamic deflections along the spindle shaft as well as contact forces on the bearings can be predicted with simulated cutting forces before physically building and testing the spindles. The spacing of the bearings are optimized to achieve either maximum dynamics stiffness or maximum chatter free depth of cut at the desired speed region for a given cutter geometry and work-piece material. It is possible to add constraints to model mounting of the spindle on the machine tool, as well as defining local springs and damping elements at any nodal point on the spindle. The model is verified experimentally.
机译:提出了主轴,刀架,刀具和切削过程的集成数字模型。使用内部开发的有限元系统对主轴进行建模。考虑到轴承上的预紧力以及所有旋转部件的陀螺和离心力由于速度而产生的影响。可以预测主轴上任意点的轴承刚度,振型,频率响应函数。在物理构建和测试主轴之前,可以通过模拟切削力预测沿主轴的静态和动态挠度以及轴承上的接触力。对于给定的刀具几何形状和工件材料,轴承的间距经过优化,可以在所需的速度区域实现最大的动态刚度或最大的无颤动切削深度。可以在机床上主轴的模型安装中增加约束,以及在主轴上的任何节点处定义局部弹簧和阻尼元件。该模型已通过实验验证。

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