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首页> 外文期刊>Materials Science and Engineering >Evolution of microstructure, macrotexture and mechanical properties of commercially pure Ti during ECAP-conform processing and drawing
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Evolution of microstructure, macrotexture and mechanical properties of commercially pure Ti during ECAP-conform processing and drawing

机译:符合ECAP的加工和拉拔过程中商用纯钛的微观结构,宏观组织和力学性能的演变

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摘要

Long-length ultrafine-grained (UFG) Ti rods are produced by equal-channel angular pressing via the conform scheme (ECAP-C) at 200 ℃, which is followed by drawing at 200 ℃. The evolution of microstructure, macrotexture, and mechanical properties (yield strength, ultimate tensile strength, failure stress, uniform elongation, elongation to failure) of pure Ti during this thermo-mechanical processing is studied. Special attention is also paid to the effect of microstructure on the mechanical behavior of the material after macrolocalization of plastic flow. The number of ECAP-C passes varies in the range of 1-10. The microstructure is more refined with increasing number of ECAP-C passes. Formation of homogeneous microstructure with a grain/subgrain size of 200 nm and its saturation after 6 ECAP-C passes are observed. Strength properties increase with increasing number of ECAP passes and saturate after 6 ECAP-C passes to a yield strength of 973 MPa, an ultimate tensile strength of 1035 MPa, and a true failure stress of 1400 MPa (from 625, 750, and 1150 MPa in the as-received condition). The true strain at failure decreases after ECAP-C processing. The reduction of area and true strain to failure values do not decrease after ECAP-C processing. The sample after 6 ECAP-C passes is subjected to drawing at 200℃ resulting in reduction of a grain/subgrain size to 150 nm, formation of (10T0) fiber texture with respect to the rod axis, and further increase of the yield strength up to 1190 MPa, the ultimate tensile strength up to 1230 MPa and the true failure stress up to 1600 MPa. It is demonstrated that UFG CP Ti has low resistance to macrolocalization of plastic deformation and high resistance to crack formation after necking.
机译:通过在200℃下通过构图方案(ECAP-C)进行等通道角挤压,在200℃拉伸后,通过等通道角压制成了长尺寸超细(UFG)Ti棒。研究了在此热机械加工过程中纯钛的微观结构,宏观组织和力学性能(屈服强度,极限抗拉强度,破坏应力,均匀伸长率,破坏伸长率)的演变。在塑性流宏观定位之后,还特别注意微观结构对材料力学性能的影响。 ECAP-C通过次数在1-10之间变化。随着ECAP-C合格次数的增加,微观结构也更加完善。观察到晶粒/亚晶粒尺寸为200 nm的均质微观结构的形成,并且经过6次ECAP-C处理后达到了饱和。强度特性随ECAP通过次数的增加而增加,并在6 ECAP-C通过之后达到饱和,从而达到973 MPa的屈服强度,1035 MPa的极限抗拉强度和1400 MPa的真实破坏应力(从625、750和1150 MPa)处于接收状态)。 ECAP-C处理后,真正的破坏应变降低。在ECAP-C处理后,面积的减小和对应变值的真实应变不会降低。经过6次ECAP-C加工后的样品在200℃进行拉伸,从而将晶粒/亚晶粒尺寸减小至150 nm,相对于棒轴形成(10T0)纤维织构,并进一步提高了屈服强度达到1190 MPa,极限抗拉强度达到1230 MPa,真正的破坏应力达到1600 MPa。结果表明,UFG CP Ti对塑性变形的宏观定位具有较低的抵抗力,对颈缩后的裂纹形成具有较高的抵抗力。

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  • 来源
    《Materials Science and Engineering》 |2013年第1期|128-136|共9页
  • 作者单位

    Institute of Physics of Advanced Materials, Ufa State Aviation Technical University, 12 K. Marx, Ufa 450000, Russia,Institute for Physics of Molecules and Crystals MS, Prospekt Oktyabrya 151/ Ufa 450075, Russia;

    Institute of Physics of Advanced Materials, Ufa State Aviation Technical University, 12 K. Marx, Ufa 450000, Russia;

    Institute of Physics of Advanced Materials, Ufa State Aviation Technical University, 12 K. Marx, Ufa 450000, Russia;

    Institute of Physics of Advanced Materials, Ufa State Aviation Technical University, 12 K. Marx, Ufa 450000, Russia,"NanoMeT" Ltd., K. Marx, 12, Ufa 450000, Russia;

    Institute of Physics of Advanced Materials, Ufa State Aviation Technical University, 12 K. Marx, Ufa 450000, Russia;

    Institute of Physics of Advanced Materials, Ufa State Aviation Technical University, 12 K. Marx, Ufa 450000, Russia;

    Instituto Madrileno de Estudios Avanzados de Materiales, Calle Eric Kandel 2, Getafe 28906, Madrid, Spain;

    Instituto Madrileno de Estudios Avanzados de Materiales, Calle Eric Kandel 2, Getafe 28906, Madrid, Spain,Department of Materials Science, Polytechnic University of Madrid, C/ Profesor Aranguren s, Madrid 28040, Spain;

    Institute of Physics of Advanced Materials, Ufa State Aviation Technical University, 12 K. Marx, Ufa 450000, Russia;

    Institute of Physics of Advanced Materials, Ufa State Aviation Technical University, 12 K. Marx, Ufa 450000, Russia;

    Institute of Physics of Advanced Materials, Ufa State Aviation Technical University, 12 K. Marx, Ufa 450000, Russia;

    Institute of Physics of Advanced Materials, Ufa State Aviation Technical University, 12 K. Marx, Ufa 450000, Russia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    mechanical properties; texture; titanium; severe plastic deformation; nanostructured materials; grain refinement;

    机译:机械性能质地;钛;严重的塑性变形;纳米结构材料;晶粒细化;

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