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MONITORING AND CONTROL OF WORKPIECE VIBRATIONS USING PROPORTIONAL HYDRAULIC CLAMPING MECHANISM

机译:利用比例液压夹紧机构监测和控制工件振动

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Machining thin-walled components involves continuous decrease in mass and stiffness of the parts being machined, causing increase in vibrations and instability. This leads to undesirable machining errors in dimensional and form tolerances as well as surface finish which adversely affects the quality of machined parts. To track and quantify the changing dynamic behaviour of Aluminum 6061-T6 workpiece, first, numerical simulations are carried out in ANSYS Workbench 18.2 to extract its modal properties. To validate this, off-line modal hammer tests are carried out on a number of semi-machined fixtured components, representing intermediate stages of machining. The results of the numerical simulations match well with the experimental measurements. With thinning of the walls from 6mm to 4.5mm the natural frequencies and damping ratios are found to drop by a factor of 1.5 and the magnification factor is found to rise by 25% signifying rise in the vibration levels. This obviously would reflect in enhanced vibrations of the workpiece when subjected to dynamic forces during machining. In this paper, this problem is addressed by deploying strain gauge bridge in the feedback and thereby regulating clamping pressure by proportional hydraulic clamping mechanism in an on-line mode. The method is found to compensate the vibration level by 40% and can be integrated in the design of a smart fixtures.
机译:加工薄壁部件会导致所加工零件的质量和刚度不断降低,从而导致振动和不稳定性增加。这导致尺寸和形状公差以及表面光洁度的不良加工误差,这不利地影响了加工零件的质量。为了跟踪和量化铝6061-T6工件的动态行为变化,首先,在ANSYS Workbench 18.2中进行了数值模拟,以提取其模态特性。为了验证这一点,在代表半加工中间阶段的许多半加工固定部件上进行了离线模态锤击测试。数值模拟的结果与实验测量值非常吻合。随着壁厚从6mm减至4.5mm,固有频率和阻尼比下降了1.5倍,放大倍数上升了25%,这表明振动水平有所提高。当在加工过程中受到动态力时,这显然会反映出工件振动的增强。在本文中,此问题通过在反馈中部署应变计电桥并通过在线模式下的比例液压夹紧机构调节夹紧压力来解决。已发现该方法可以补偿40%的振动水平,并且可以集成到智能夹具的设计中。

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