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Reactions between a 1/2111 screw dislocation and 100 interstitial dislocation loops in alpha-iron modelled at atomic scale

机译:在原子尺度上模拟的α-铁中的1/2111螺钉位错和100个间隙位错环之间的反应

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Interstitial dislocation loops with Burgers vector of type are observed in α-iron irradiated by neutrons or heavy ions, and their population increases with increasing temperature. Their effect on motion of a edge dislocation was reported earlier 11. Terentyev , D , Grammatikopoulos , P , Bacon , DJ and Osetsky , YN . 2008 . Acta Mater. , 56 : 5034 [CrossRef], [Web of Science ®]View all references. Results are presented of a molecular dynamics study of interactions between a screw dislocation and loops in iron at temperature in the range 100 to 600 K. A variety of reaction mechanisms and outcomes are observed and classified in terms of the resulting dislocation configuration and the maximum stress required for the dislocation to break away. The highest obstacle resistance arises when the loop is absorbed to form a helical turn on the screw dislocation line, for the dislocation cannot glide away until the turn closes and a loop is released with the same Burgers vector as the line. Other than one situation found, in which no dislocation-loop reaction occurs, the weakest obstacle strength is found when the original loop is restored at the end of the reaction. The important role of the cross-slip and the influence of model boundary conditions are emphasised and demonstrated by examples.
机译:在由中子或重离子辐射的α-铁中观察到类型的汉堡向量的间质位错环,其人口随着温度的升高而增加。他们对边缘脱位运动的影响已有较早的报道。11. Terentyev,D,Grammatikopoulos,P,Bacon,DJ和Osetsky,YN。 2008年。物质学报。 ,56:5034 [CrossRef],[Web of Science®]查看所有参考。给出了在100至600 K的温度下铁中的螺丝位错与环之间相互作用的分子动力学研究结果。观察到了各种反应机理和结果,并根据位错构型和最大应力对其进行了分类。脱臼需要的。当线圈被吸收以在螺旋位错线上形成螺旋形转弯时,会产生最高的障碍阻力,因为位错在转弯关闭之前不会滑脱,并且会释放出与该线相同的Burgers向量的环。除了发现一种不发生位错环反应的情况以外,当在反应结束时恢复原始环时,发现最弱的障碍强度。实例强调并证明了交叉滑移的重要作用和模型边界条件的影响。

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    《Philosophical Magazine》 |2010年第8期|p.1019-1033|共15页
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    a SCK-CEN, RMO Department, Boeretang 200, B-2400 Mol, Belgium b Department of Engineering, The University of Liverpool, Brownlow Hill, Liverpool, L69 3GH, UK c Materials Science and Technology Division, ORNL, Oak Ridge, TN 37831, USA;

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