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Fractal Properties of Dynamic Recrysatallized Grain Boundaries

机译:动态再结晶晶界的分形特性

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Microstructures (e.g., grain boundary structure) as manifestations of the mechanical behavior of deformed materials have several fractal properties. Here taking an example of grain boundary of recrystallized quartz shape produced under various deformation conditions (high temperature and strain rate), fractal properties of the boundary profiles are shown. Fractal analysis by using box-counting method for each grain gives an individual fractal dimension D_I of each profile, that by using area-perimeter method for various sizes of grains gives a collective fractal dimension D_C representing structural property. D_I shows larger variation as grain size decreased, and D_I converges to D_C as the grain size increases. Since the boundary serration during dynamic recrystallization should be determined by relative movement of its surrounded gains, D_I becomes to vary from grain to grain. On the collective fractal dimension D_C, D_C correlates positively, linearly to logarithmic of Zener-Hollomon parameter combining the strain rate and the temperature. Based on the fractal concepts, the relationship can be explained theoretically by a modified grain boundary migration model, and the number of cross points on the grain boundary sectioned by an Euclidian curve can be interpreted as the structural parameter related to the Zener-Hollomon parameter.
机译:作为变形材料的力学行为的表现的微观结构(例如,晶界结构)具有几种分形特性。这里扮演在各种变形条件下产生的重结晶石英形状的晶界的例子(高温和应变率),所示的边界轮廓的分形特性。通过使用每个谷物的盒计数方法的分形分析给出每个轮廓的单独分形尺寸D_i,即通过使用各种尺寸的面积周边方法来产生表示结构特性的集体分形尺寸D_c。 D_I显示出较大的变化,因为晶粒尺寸减小,并且随着晶粒尺寸的增加,D_I会聚到D_C。由于动态再结晶期间的边界锯齿应通过其周围的增益的相对运动来确定,因此D_I变为从谷物到晶粒的变化。在集体分形尺寸D_C上,D_C正面地关联,线性地与ZENER-HOLLOMON参数的对数相结合的应变率和温度。基于分形概念,通过修改的晶粒边界迁移模型理论上可以解释该关系,并且由欧氏曲线切片的晶界面上的交叉点的数量可以被解释为与ZENER-HOLLOMON参数相关的结构参数。

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