a-Ti在原位透射电镜拉伸变形过程中位错的滑移系确定*
收稿日期: 2015-05-21
网络出版日期: 2016-12-23
基金资助
国家自然科学基金项目11374028, 北京市自然科学基金科技重点项目和教育部长江学者奖励计划项目资助
SLIP SYSTEM DETERMINATION OF DISLOCATIONS IN a-Ti DURING IN SITU TEM TENSILE DEFORMATION
Received date: 2015-05-21
Online published: 2016-12-23
Supported by
Supported by National Natural Science Foundation of China (No.11374028), Key Project of Beijing Natural Science Foundation and the Cheung Kong Scholar Programme
利用聚焦离子束(FIB)对hcp结构金属a-Ti进行纳米尺寸单晶拉伸样品定向切割, 利用特制的双金属片拉伸器在TEM中将单晶样品沿[2110]方向进行原位拉伸. 结果表明, 在拉伸过程中, 随着应变量的增加, a-Ti先后产生了3类不同Burgers矢量的滑移位错: 柱面位错及2类锥面
石晶 , 郭振玺 , 隋曼龄 . a-Ti在原位透射电镜拉伸变形过程中位错的滑移系确定*[J]. 金属学报, 2016 , 52(1) : 71 -77 . DOI: 10.11900/0412.1961.2015.00268
Titanium and its alloys have been widely used in automotive industry and aerospace field due to their high mechanical strength and low density. It has been known that a-Ti has an hcp crystal structure and silp in hcp structure is limited because of only 3 independent slip systems. Therefore, twinning is active in hcp structure and the deformation behavior of hcp metals is very complex by the presence of both dislocation slip and twinning. In sub-micron sized a-Ti sample, deformation twins are difficult to produce and the deformation mechanism is mainly dislocation slip. However, it is hard to identify the activated dislocation slip system in a-Ti, as a few avaliable slip planes is corresponding to one slip direction. Usually there are two ways to identify the activated slip systems. One is to deduce the slip plane and the slip direction based on the loading direction and the crystal orientation. But this method is not accurate because of many possible groups of slip planes and slip directions in hcp structure. The other one is judging the Burgers vector of the dislocation under certain diffraction vectors based on Bragg's law by using TEM. It takes time and can only determine the slip direction of dislocation. Therefore, it is important to find an effective method to identify the active slip system more simply and accurately during deformation process. In this work, a nanometer sized tensile sample of a-Ti single crystal was fabricated by using focused ion beam (FIB) technique. In situ tensile test was carried out along [2110] of a-Ti sample by using a homemade bimetal stretching device in TEM. It has been found that three types of the dislocations, one prismatic dislocation and two pyramidal
Key words: a-Ti; in situ tensile; TEM; hcp structure; dislocation slip; Schmid factor
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