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Continuous and ultra-fine grained chip production with large strain machining

机译:连续和超细晶粒芯片的大应变加工

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In this study, orthogonal cutting technique as a severe plastic deformation (SPD) method for producing chips with an ultra-fine grained microstructure and fair mechanical properties is investigated; further, it has been suggested that by controlling the cutting velocity and contact length between tool and material, it is possible to produce a severely deformed and continuous chip with unrestored microstructure even at high cutting velocities. Solution treated Al-6061 samples in plane strain condition were severely deformed through applying various cutting velocities (from 50 to 2230 mm/s) for three different rake angles (-5°, -10° and -20°) in fixed cutting parameters. Chip thickness, contact length, shear strain, and Vickers microhardness variations were examined for different samples and chip formation mechanism was discussed for different processing conditions. In addition, the microstructure of especial produced chips was studied using transmission electron microscopy (TEM). The results showed that during the dominance of seizure mechanism at the contact surface, microhardness and shear strain (as well as contact length) have inverse dependency upon the variation of the cutting velocity. The results are discussed by considering the heat-time effect contribution in the final microstructure and mechanical properties.
机译:在这项研究中,研究了正交切削技术作为一种严重的塑性变形(SPD)方法,用于生产具有超细晶粒组织和合理机械性能的切屑;此外,已经提出,通过控制切削速度和工具与材料之间的接触长度,即使在高切削速度下,也可能产生具有未恢复的微观结构的严重变形且连续的切屑。在固定的切削参数下,针对三种不同的前角(-5°,-10°和-20°)应用各种切削速度(50至2230 mm / s),在平面应变条件下经过固溶处理的Al-6061样品会严重变形。研究了不同样品的切屑厚度,接触长度,剪切应变和维氏显微硬度变化,并讨论了不同加工条件下的切屑形成机理。此外,还使用透射电子显微镜(TEM)研究了特殊生产的芯片的微观结构。结果表明,在接触表面的咬合机制占主导地位的过程中,显微硬度和剪切应变(以及接触长度)与切削速度的变化成反比关系。通过考虑热时效应对最终显微组织和机械性能的贡献来讨论结果。

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