首页> 外文会议>International Conference on Processing amp; Manufacturing of Advanced Materials; 20060704-08; Vancouver(CA) >Evolution of microstructure during hot deformation of the PM molybdenum alloy TZM
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Evolution of microstructure during hot deformation of the PM molybdenum alloy TZM

机译:钼钼合金TZM热变形过程中的组织演变

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The molybdenum alloy TZM (Mo-0.5wt%Ti-0.08wt%Zr) is a commonly used structural material for high temperature applications. For these purposes a high strength at elevated temperatures and also a sufficient ductility at room temperature are being aimed. Preceding investigations revealed the existence of subgrains in hot deformed TZM. It was observed that with proceeding primary recrystallization and therefore with disappearance of subgrains the yield strength drops almost to a level of pure molybdenum. It is being assumed that the existence of a dislocation substructure has a pronounced effect on the yield strength of TZM. The aim of the present study was to evaluate the subgrain and texture formation and also to estimate the dislocation arrangement within subgrains during hot deformation. Hence, TZM rods were rolled to different degrees of deformation at a temperature above 0.5 T_m. The microstructure of the initial material was fully recrystallized. Texture formation, misorientation distributions and subgrain sizes were analyzed by electron backscattering diffraction (EBSD). Mechanical properties were characterized by tensile tests at room temperature and up to 1200℃. It was revealed, that with increasing degree of deformation a distinct substructure forms and therefore yield strength rises. Consequently, the misorientation between adjacent subgrains increases, their size decreases and a <110> fibre texture develops. To estimate the influence of texture on strength of TZM the Taylor factors are calculated from EBSD data.
机译:钼合金TZM(Mo-0.5wt%Ti-0.08wt%Zr)是高温应用中常用的结构材料。为了这些目的,寻求在高温下的高强度以及在室温下的足够的延展性。先前的调查显示,热变形的TZM中存在亚晶粒。观察到,随着初次重结晶的进行,因此亚晶粒的消失,屈服强度几乎下降到纯钼水平。据推测,位错亚结构的存在对TZM的屈服强度有明显的影响。本研究的目的是评估亚晶粒和织构的形成,并估计热变形过程中亚晶粒内的位错排列。因此,TZM棒在高于0.5 T_m的温度下被轧制成不同程度的变形。初始材料的微观结构已完全重结晶。通过电子背散射衍射(EBSD)分析了纹理的形成,取向错误的分布和亚晶粒尺寸。通过在室温和最高1200℃下的拉伸试验来表征机械性能。结果表明,随着变形程度的增加,形成了独特的亚结构,因此屈服强度提高了。因此,相邻子晶粒之间的取向不良增加,其尺寸减小,并且形成<110>纤维质地。为了估计质地对TZM强度的影响,根据EBSD数据计算了泰勒因子。

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