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The Machinability of Ultrafine-grained Grade 2 Ti Processed by Equal Channel Angular Pressing

机译:等通道角压制超细晶粒2 Ti的切削性

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All processes of severe plastic deformation (SPD) are known to improve the mechanical strength of metals and alloys through microstructural refinement. Although the literature contains a large number of investigations on the effect of fine-grained microstructures on mechanical behaviour, data on the machinability is almost non-existent. This lack of information motivated the present work, in which the machinability of severely-deformed Grade 2 Ti is assessed in terms of cutting forces and the resulting product surface roughness. The SPD process here employed is Equal Channel Angular Pressing (ECAP), and the results are compared with those obtained on Ti and Ti-6% aluminum-4% vanadium (Ti6-4) alloy, both in the annealed condition. It was observed that the machining of ultrafine-grained Ti in the as-deformed state, requires larger cutting forces than the necessary for the annealed material, whilst for the alloy, the forces are of the same order. Due to continuous chip generation taking place in commercially pure Ti but not in Ti6-4, the passive component of the cutting force and the average surface roughness of the fine grained material are higher. Finally, whilst both annealed and fine grained Ti wear the tool by an attrition mechanism, titanium alloy machining promotes only adhesion over the tool edge.
机译:众所周知,所有严重的塑性变形(SPD)过程都会通过微结构改进来提高金属和合金的机械强度。尽管文献中对细晶粒的微观结构对机械性能的影响进行了大量研究,但几乎没有可加工性的数据。信息的缺乏激发了当前的工作,在该工作中,严重变形的2 Ti的可切削性是根据切削力和所产生的产品表面粗糙度来评估的。这里采用的SPD工艺是等通道角挤压(ECAP),并将结果与​​在退火条件下在Ti和Ti-6%铝-4%钒(Ti6-4)合金上获得的结果进行比较。观察到,在变形状态下加工超细晶粒的Ti所需的切削力要比退火材料所需的切削力大,而对于合金,该力是相同数量级的。由于在商用纯钛中连续产生切屑,而在Ti6-4中则不连续,因此切削力的被动分量和细粒材料的平均表面粗糙度更高。最终,尽管退火和细晶粒的Ti都通过磨损机制磨损了刀具,但钛合金加工仅促进了刀具边缘的附着力。

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