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A study of surface Integrity when machining refractory titanium alloys

机译:加工耐火材料钛合金时表面完整性研究

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In this paper, the surface integrity is studied when machining the aeronautical titanium alloys. Surface roughness, lay, defects, microhardness and microstructure alterations are studied. The result of surface roughness judges that the CVD-coated carbide fails to produce better Ra value than the uncoated. Lay is characterized by cutting speed and feed speed directions. Feed mark, tearing surface, chip layer formation as built up layer (BUL), and deposited microchip are the defects. Microhardness is altered down to 350 microns beneath the machined surface. The first 50 microns is the soft sub-surface caused by thermal softening in ageing process. Microstructure alteration is observed in this sub-surface. Down to 200 microns is the hard sub-surface caused by the cyclic internal work hardening and then it is gradually decreasing to the bulk material hardness. It is concluded that dry machining titanium alloy is possible using uncoated carbide with cutting condition limited to finish or semi-finish for minimizing surface integrity alteration.
机译:在本文中,在加工航空钛合金时研究了表面完整性。研究了表面粗糙度,敷积,缺陷,微硬度和微观结构改变。表面粗糙度的结果判断CVD涂覆的碳化物不能产生比未涂覆的更好的RA值。通过切割速度和进料速度方向,表征。饲料标记,撕裂表面,芯片层形成为内置层(BUL)和沉积的微芯片是缺陷。微硬度在机加工表面下方达到350微米。前50微米是由老化过程中热软化引起的软亚表面。在该子表面中观察到微观结构改变。低至200微米是由循环内部工作硬化引起的硬质子表面,然后逐渐降低散装材料硬度。得出结论,使用未涂层的碳化物可以利用切割条件限制或半涂层来最小化表面完整性改变。

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