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Texture evolution during thermomechanical processing in rare earth free magnesium alloys.

机译:不含稀土的镁合金在热机械加工过程中的织构演变。

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摘要

The use of wrought magnesium alloys is highly desirable for a wide range of applications where low component weight is desirable due to the high specific strength and stiffness the alloys can achieve. However, the implementation of wrought magnesium has been hindered by the limited room temperature formability which typically results from deformation processing. This work identifies opportunities for texture modification during thermomechanical processing of conventional (rare earth free) magnesium alloys via a combination of experimental investigation and polycrystal plasticity simulations.;During deformation, it is observed that a homogeneous distribution of coarse intermetallic particles efficiently weakens deformation texture at all strain levels, while a highly inhomogeneous particle distribution is only effective at high strains. The particle deformation effects are complemented by the addition of alkaline earth solute, which modifies the relative deformation mode activity.;During recrystallization, grains with basal orientations recrystallize more readily than off-basal grains, despite similar levels of internal misorientation. Dislocation substructure investigations revealed that this is a result of enhanced nucleation in the basal grains due to the dominance of prismatic slip.;This dissertation identifies avenues to enhance the potential formability of magnesium alloys during thermomechanical processing by minimizing the evolved texture strength. The following are the identified key aspects of microstructural control: -Maintaining a fine grain size, likely via Zener pinning, to favorably modify deformation mode activity and homogenize deformation. -Developing a coarse, homogeneously distributed population of coarse intermetallic particles to promote a diffuse deformation texture. -Minimizing the activity of prismatic slip to retard the recrystallization of grains with basal orientations, allowing the development of a more diffuse recrystallization texture.
机译:对于由于合金可实现的高比强度和刚度而需要低部件重量的广泛应用,非常希望使用锻造镁合金。然而,变形镁的实施受到通常由变形处理导致的有限的室温可成形性的阻碍。这项工作通过实验研究和多晶可塑性模拟相结合,确定了常规(无稀土)镁合金热机械加工过程中组织变形的机会。变形期间,观察到粗大的金属间颗粒的均匀分布有效地削弱了变形时的变形组织。所有应变水平,而高度不均匀的颗粒分布仅对高应变有效。颗粒变形的影响通过添加碱土溶质来补充,从而改变了相对变形模式的活性。在重结晶过程中,尽管内部失取向水平相似,但具有基本取向的晶粒比非基本晶粒更容易重结晶。位错亚结构研究表明,这是由于棱柱滑移占优势而导致了基体晶粒形核增强的结果。本论文确定了通过最小化组织强度来增强镁合金在热机械加工过程中潜在可成形性的途径。以下是已确定的微结构控制的关键方面:-可能通过Zener钉扎来保持细小晶粒尺寸,从而有利地改变变形模式的活动性并使变形均匀化。 -发展出粗大,均匀分布的粗大金属间化合物粒子群,以促进扩散变形纹理。 -使棱柱形滑移的活动最小化,以延迟具有基本取向的晶粒的再结晶,从而允许形成更加分散的再结晶织构。

著录项

  • 作者

    Miller, Victoria Mayne.;

  • 作者单位

    University of California, Santa Barbara.;

  • 授予单位 University of California, Santa Barbara.;
  • 学科 Materials science.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 194 p.
  • 总页数 194
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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