钨中位错克服孔隙形式障碍的模拟

A. Kazakov, Yu. R. Sharapova, R. Babicheva, A. V. Zivovev, D. Terentyev, A. S. Semenov
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引用次数: 0

摘要

钨作为一种能够承受核反应堆工作条件和其他极端条件的材料被广泛使用。在辐照作用下,金属中形成了Frenkel对、气孔、位错环等缺陷。因此,研究这些缺陷之间的相互作用及其对金属力学性能的影响是有意义的。本文采用分子动力学方法进行理论研究,探讨位错与孔隙相互作用下钨的应变硬化机理。作者利用LAMMPS软件包解决了这一问题,用四阶Verlet方法对原子运动方程进行了积分。研究的模型是沿基本X、Y、Z坐标轴相对具有一定取向[111]、[-1-12]、[1-10]的单晶,其中考虑了BCC金属主滑移体系中的边缘位错滑移及其与孔隙的相互作用。研究了孔径对剪应力大小的影响:孔径的增大与剪应力的增大成正比。计算了600 ~ 1400 K温度范围内剪切应力对剪切应变的依赖关系,其中温度变化对应力值的影响不显著。研究表明,位错切割了孔隙,并且在与孔隙反复相互作用后,观察到的峰值剪切应力值低于第一次相互作用时的峰值剪切应力值。孔隙的存在导致流变应力增大,且随着孔隙直径的增大,这种影响更为明显。直径为6 nm的孔隙比无孔材料的流动应力增加了三倍。讨论了剪切应力作用下边缘位错与孔隙相互作用的机理。
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Simulation of overcoming obstacles in the form of pores by dislocations in tungsten
Tungsten is widely used as a material capable of withstanding working conditions in nuclear reactors and other extreme conditions. Under the influence of irradiation, such defects as Frenkel pairs, pores, and dislocation loops are formed in the metal. Therefore, the research aimed at studying the interactions of these defects with each other and their influence on the mechanical properties of the metal are relevant. The paper presents the theoretical study based on the molecular dynamics method, the purpose of which is to investigate the mechanism of strain hardening of tungsten associated with the interaction of dislocations and pores. The authors solved this problem using the LAMMPS package, carried out the integration of atoms motion equations by the fourth order Verlet method. The model under the study is a single crystal of a certain [111], [–1–12], [1–10] orientation along the basic X, Y, and Z coordinate axis relatively, in which the slip of edge dislocations in the main slip system of BCC metals and their interaction with pores is considered. The authors studied the influence of a pore size on the shear stress magnitude: the growth of pore diameter is proportional to the stress growth. The dependences of shear stress on the shear strain in the temperature range of 600–1400 K are calculated, whereby the temperature change does not significantly influence the stress value. The study shows that dislocations cut the pores and, upon the repeated interaction with a pore, a lower value of peak shear stress is observed than during the first one. The presence of pores leads to the flow stress increase, and such an effect becomes more evident with the increasing pore diameter. The flow stress increases thrice for pores with a diameter of 6 nm compared to the material without pores. The authors described the mechanism of interaction between the edge dislocations and pores under the influence of shear stress.
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