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Anisotropic rheology during grain boundary diffusion creep and its relation to grain rotation, grain boundary sliding and superplasticity

机译:晶界扩散蠕变过程中的各向异性流变及其与晶粒旋转,晶界滑动和超塑性的关系

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The response of periodic microstructures to deformation can be analysed rigorously and this provides guidance in understanding more complex microstructures. When deforming by diffusion creep accompanied by sliding, irregular hexagons are shown to be anisotropic in their rheology. Analytic solutions are derived in which grain rotation is a key aspect of the deformation. If grain boundaries cannot support shear stress, the polycrystal viscosity is extremely anisotropic. There are two orthogonal directions of zero strength: sliding and rotation cooperate to allow strain parallel to these directions to be accomplished without any dissolution or plating. When a linear velocity/shear stress relationship is introduced for grain boundaries, the anisotropy is less extreme, but two weak directions still exist along which polycrystal strength is controlled only by the grain boundary "viscosity". Irregular hexagons are characterised by four parameters. A particular subset of hexagons defined by two parameters, which includes regular hexagons as well as some elongate shapes, shows singular behaviour. Grain shapes that are close to that of the subset may exhibit large grain rotation rates and have no well-defined rheology unless there is a finite grain boundary viscosity. This new analysis explains why microstructures based on irregular but near equiaxed grains show high rotation rates during diffusion creep and it provides a framework for understanding strength anisotropy during diffusion creep.
机译:可以对周期性微结构对变形的响应进行严格分析,这为理解更复杂的微结构提供了指导。当由扩散蠕变伴随滑动而变形时,不规则六边形在流变学上表现出各向异性。得出解析解,其中晶粒旋转是变形的关键方面。如果晶界不能支持剪切应力,则多晶粘度非常各向异性。有两个强度为零的正交方向:滑动和旋转共同作用,可以在不进行任何溶解或电镀的情况下完成平行于这些方向的应变。当对于晶界引入线速度/剪切应力关系时,各向异性不是那么极端,但是仍然存在两个弱方向,沿着该两个弱方向,多晶强度仅由晶界“粘度”控制。不规则六边形的特征在于四个参数。由两个参数定义的六边形的特定子集(包括规则的六边形以及一些细长的形状)显示出奇异的行为。除非存在有限的晶界粘度,否则接近该子集的晶粒形状可能表现出较大的晶粒旋转速率,并且没有明确的流变性。这项新的分析解释了为什么基于不规则但接近等轴晶粒的微结构在扩散蠕变过程中显示出很高的旋转速率,并且为理解扩散蠕变过程中的强度各向异性提供了一个框架。

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