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Investigation and modeling of processing-microstructure-property relations in ultra-fine grained hexagonal close packed materials under strain path changes

机译:应变路径变化下超细颗粒六方密堆积材料加工-微观结构-性能关系的研究与建模

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摘要

Ultra-fine grained (UFG) materials have attracted considerable interest due to the possibility of achieving simultaneous increase in strength and ductility. Effective use of these materials in engineering applications requires investigating the processing-microstructure-property inter-relations leading to a comprehensive understanding of the material behavior. Research efforts on producing UFG hexagonal close packed (hcp) materials have been limited in spite of their envisaged utilization in various technologies. The present study explores multiple UFG hcp materials to identify the general trends in their deformation behaviors, microstructural features, crystallographic texture evolutions and mechanical responses under strain path changes. UFG hcp materials, including commercial purity Ti, Ti-6Al-4V alloy and high purity Zr, were fabricated using equal channel angular extrusion (ECAE) as a severe plastic deformation (SPD) technique following various processing schedules. Several characterization methods and a polycrystal plasticity model were utilized in synergy to impart the relationships between the UFG microstructure, the texture and the post-ECAE flow behavior. Pure UFG hcp materials exhibited enhanced strength properties, making them potential substitutes for coarse-grained high strength expensive alloys. Incorporation of post-ECAE thermo-mechanical treatments was effective in further improvement of the strength and ductility levels. Strong anisotropy of the post-ECAE flow response was evident in all the materials studied. The underlying mechanisms for anisotropy were identified as texture and processing-induced microstructure. Depending on the ECAE route, the applied strain level and the specific material, the relative importance of these two mechanisms on plastic flow anisotropy varied. A viscoplastic self-consistent approach is presented as a reliable model for predicting the texture evolutions and flow behaviors of UFG hcp materials in cases where texture governs the plastic anisotropy. Regardless of the material, the initial billet texture and the extrusion conditions, ECAE of all hcp materials revealed similar texture evolutions. Accurate texture and flow behavior predictions showed that basal slip is the responsible mechanism for such texture evolution in all hcp materials independent of their axial ratio. High strength of the UFG microstructure was presented as a triggering mechanism for the activation of unexpected deformation systems, such as high temperature deformation twinning in Ti-6Al-4V and room temperature basal slip in pure Zr.
机译:由于可以同时提高强度和延展性,超细颗粒(UFG)材料引起了人们的极大兴趣。在工程应用中有效使用这些材料需要研究加工-微结构-属性之间的相互关系,从而全面了解材料的性能。尽管设想将UFG六方密堆积(hcp)材料用于各种技术,但研究工作仍然受到限制。本研究探索了多种UFG hcp材料,以识别其在应变路径变化下的变形行为,微观结构特征,晶体织构演变和力学响应的一般趋势。 UFG hcp材料,包括商业纯钛,Ti-6Al-4V合金和高纯Zr,是按照各种加工程序使用等通道角挤压(ECAE)作为严重塑性变形(SPD)技术制造的。协同使用了几种表征方法和多晶可塑性模型,以赋予UFG微观结构,织构和ECAE后流动行为之间的关系。纯UFG hcp材料表现出增强的强度性能,使其成为粗晶粒高强度昂贵合金的潜在替代品。结合ECAE后的热机械处理可有效提高强度和延展性。在所有研究的材料中,ECAE后流动响应的强各向异性都很明显。各向异性的潜在机制被确定为纹理和加工诱导的微观结构。根据ECAE路线,施加的应变水平和特定材料,这两种机制对塑性流动各向异性的相对重要性有所不同。粘塑性自洽方法是一种可靠的模型,可预测在纹理控制塑性各向异性的情况下UFG hcp材料的纹理演变和流动行为。不论材料,初始坯料织构和挤压条件如何,所有hcp材料的ECAE都显示出相似的织构演变。准确的纹理和流动行为预测表明,基底滑移是所有hcp材料中此类纹理演变的负责机制,而与它们的轴向比无关。 UFG显微组织的高强度被认为是激活意外变形系统的触发机制,例如Ti-6Al-4V中的高温变形孪晶和纯Zr中的室温基体滑移。

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    Yapici Guney Guven;

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  • 年度 2009
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