首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Effects of irregular tool geometry and machining process parameters on the wavelength performance of process damping in machining titanium alloy at low cutting speed
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Effects of irregular tool geometry and machining process parameters on the wavelength performance of process damping in machining titanium alloy at low cutting speed

机译:低切削速度下加工钛合金过程中不规则的刀具几何形状和加工工艺参数对加工阻尼波长性能的影响

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摘要

In machining titanium alloy as difficult-to-cut or hard materials, productivity is limited because of low heat conductivity at high spindle speed. Process damping is a damping mechanism during the machining process that can be exploited to improve the limited productivity in machining titanium alloy at low cutting speed. In the present study, experiments are performed to evaluate the wavelength performance of process-damped milling under irregular tool geometries such as uniform, variable helix, variable pitch, and variable helix/variable pitch. The effects of radial immersion, feed rate, depth of cut, and surface velocity as process parameters are also studied. By using flexible workpiece conditions, all tools are tested in machining titanium alloy at low speed to encourage the process damping phenomena. The wavelength performances are calculated on the basis of the chatter frequency domain analysis extracted from the acceleration signal in the time domain during the cutting process. The effect of irregular tool geometries shows that variable helix and variable pitch tools have the best wavelength performance compared with regular and other irregular tools. The effect of process parameters reveals that the radial depth of cut can also improve the process damping wavelength compared with regular tools. Irregular milling tool geometries with spindle speed and feed rate parameters can be used to suppress the chatter by exploiting the process damping behavior, thus improving machining productivity.
机译:在将钛合金加工为难切削或硬质材料时,由于主轴转速高时导热系数低,因此生产率受到限制。工艺阻尼是机加工过程中的一种阻尼机制,可以利用它来提高在低切削速度下加工钛合金时有限的生产率。在本研究中,进行了实验以评估在不规则刀具几何形状(例如均匀,可变螺旋,可变螺距和可变螺旋/可变螺距)下加工阻尼铣削的波长性能。还研究了径向浸入,进给速度,切削深度和表面速度作为工艺参数的影响。通过使用灵活的工件条件,所有工具都在低速加工钛合金的过程中进行了测试,以鼓励过程阻尼现象。波长性能是根据在切割过程中从时域中的加速度信号中提取的颤振频域分析计算得出的。不规则工具几何形状的影响表明,与常规工具和其他不规则工具相比,可变螺旋和可变螺距工具具有最佳的波长性能。工艺参数的影响表明,与常规工具相比,径向切割深度还可以改善工艺阻尼波长。具有主轴速度和进给速度参数的不规则铣刀几何形状可通过利用过程阻尼行为来抑制颤动,从而提高加工生产率。

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