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Micromechanism of Cold Deformation of Two-Phase Polycrystalline Ti–Al Alloy with Void

机译:气孔两相多晶Ti-Al合金冷变形的微观机制

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Cold deformation behavior of polycrystalline metallic material is affected by intrinsic defects such as dislocations, voids, inclusions etc. Existing studies on α 2 ( Ti 3 Al ) + γ ( TiAl ) two-phase Ti–Al alloy cover about deformation behavior mainly on macro scale. This paper focuses on the cold deformation mechanism of two-phase Ti–Al alloy at micro scale, and the role of voids in deformation process. Molecular dynamics simulations were performed to study the evolution of micro structure of material under uniaxial tension. Interaction between spherical nano voids with different size and position was also examined in the simulation. The results show that (1) In elastic stage, deformation of the two-phase is coordinated, but Ti 3 Al is more deformable; (2) In plastic stage, γ phase is the major dislocation source in two-phase alloy; (3) voids detracts the strength of the two-phase alloy, while the position of void affect the degree of this subtraction, voids located at the boundary of α 2 / γ phase have significant detraction to strength.
机译:多晶金属材料的冷变形行为受位错,空隙,夹杂物等固有缺陷的影响。关于α2(Ti 3 Al)+γ(TiAl)两相Ti-Al合金的现有研究涵盖了变形行为,主要涉及宏观规模。本文着重研究了两相Ti-Al合金的微观变形冷变形机理,以及空隙在变形过程中的作用。进行了分子动力学模拟,以研究材料在单轴张力下的微观结构的演变。在模拟中还检查了具有不同尺寸和位置的球形纳米空隙之间的相互作用。结果表明:(1)在弹性阶段,两相的变形是协调的,而Ti 3 Al更易变形; (2)在塑性阶段,γ相是两相合金的主要位错来源。 (3)空隙会降低两相合金的强度,而空隙的位置会影响这种相减的程度,位于α2 /γ相边界的空隙对强度的影响很大。

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