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首页> 外文期刊>Modelling and simulation in materials science and engineering >Shear responses of [?1 1 0]-tilt {1 1 5}/{1 1 1} asymmetric tilt grain boundaries in fcc metals by atomistic simulations
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Shear responses of [?1 1 0]-tilt {1 1 5}/{1 1 1} asymmetric tilt grain boundaries in fcc metals by atomistic simulations

机译:通过原子模拟模拟[?1 1 0]-倾斜{1 1 5} / {1 1 1}的不对称倾斜晶界的剪切响应

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The shear response of the σ3 [?1 1 0]-tilt (?1 ?1 5)/(1 1 1) and σ9 [?1 1 0]-tilt (1 1 5)/(1 1 1) asymmetric tilt grain boundaries (GBs) in fcc metals Cu and Al has been studied by atomistic simulation methods with the embedded atom method interatomic potentials and with a bicrystal model. It is found that the structure of the GBs studied can be well described by the coincidence site lattice (CSL) theory. Shear of these GBs at room temperature along eight different directions within the GB plane shows that these two types of GBs can transform between each other by the formation of a coherent twin boundary. The structure transformation of the GBs can also take the form of GB sliding, GBsliding-migration coupled motion,GBfaceting, GB9Rstructure formation, etc, depending on the shear directions adopted and the material involved (Cu or Al). The detailed structure transformation mechanisms have been analyzed with the aid of the CSL-DSC (displacement shift complete) theory. Several structure transformation paths adherent to these two types of GBs have been identified for the activation of the GB sliding-migration coupled motion. It is concluded that, although CSL-DSC theory can be applied to describe the sliding-migration coupled motion of the GBs studied, some other effects such as the shear direction within the GB plane and the bonding characteristics of the materials should also play a significant role in the shear response of these GBs.
机译:σ3[?1 1 0]-倾斜(?1?1 5)/(1 1 1)和σ9[?1 1 0]-倾斜(1 1 5)/(1 1 1)不对称倾斜的剪切响应通过原子模拟方法,嵌入原子方法的原子间电势和双晶模型,研究了fcc金属Cu和Al中的晶界(GBs)。发现所研究的GB的结构可以通过重合位点格(CSL)理论很好地描述。这些GB在室温下沿GB平面内的八个不同方向的剪切表明,这两种类型的GB可以通过形成连贯的孪晶边界而在彼此之间转换。 GBs的结构转变还可以采用GB滑动,GBs滑动-迁移耦合运动,GBfaceting,GB9R结构形成等形式,具体取决于所采用的剪切方向和所涉及的材料(铜或铝)。详细的结构转换机制已借助CSL-DSC(位移位移完成)理论进行了分析。已经识别出了这两种类型的GB遵循的几种结构转换路径,以激活GB滑动迁移耦合运动。结论是,尽管CSL-DSC理论可用于描述所研究GB的滑动迁移耦合运动,但其他一些影响,例如GB平面内的剪切方向和材料的粘结特性也应发挥重要作用。在这些GBs的剪切响应中的作用。

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