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High tensile ductility of Ti-based amorphous matrix composites modified from conventional Ti-6Al-4V titanium alloy

机译:传统Ti-6Al-4V钛合金改性Ti基非晶基复合材料的高拉伸延展性

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摘要

Three Ti-based amorphous matrix composites containing ductile dendrites were fabricated by adding alloying elements of Ti, Zr, V, Ni, Al and Be into a conventional Ti-6Al-4V alloy, and the deformation mechanisms related to the improvement of tensile ductility were investigated by focusing on how the effective size of ductile dendrites affected the initiation and propagation of deformation bands or shear bands. The composites contained ~73-76 vol. dendrites ~63-103 nm in size, and had excellent tensile properties with a yield strength of over 1.3 GPa and an elongation of over 7. In the composite containing very large dendrites, deformation bands were formed at dendrites in the same direction. In the composite containing small dendrites, however, many deformation bands were actively formed inside dendrites in the several directions, and cross each other to form widely deformed areas. This wide and homogeneous deformation in both dendrites and amorphous matrix enhances the tensile ductility, resulting in high strength and elongation occurring simultaneously. In order to theoretically explain the enhanced tensile ductility, a finite-element method (FEM) analysis based on the real micro-structures considering dendrite crystal orientations was performed. The FEM simulation results of deformation bands or shear bands were in good agreement with the experimental findings. The reasons for such a good match between the simulation and experimental results are discussed in detail.
机译:在常规的Ti-6Al-4V合金中加入Ti、Zr、V、Ni、Al和Be合金元素,制备了3种含延性枝晶的Ti基非晶基复合材料,并通过关注韧性枝晶有效尺寸如何影响变形带或剪切带的萌生和扩展,研究了与提高拉伸延性相关的变形机理。复合材料含有~73-76 vol.%的枝晶,尺寸为~63-103 nm,具有优异的拉伸性能,屈服强度超过1.3 GPa,伸长率超过7%。在含有非常大树晶的复合材料中,树晶处形成相同方向的变形带。然而,在含有小枝晶的复合材料中,树晶内部在多个方向上主动形成许多变形带,并相互交叉形成广泛的变形区域。枝晶和非晶基体中的这种广泛而均匀的变形增强了拉伸延展性,从而同时实现了高强度和伸长率。为了从理论上解释增强的拉伸延展性,在考虑枝晶晶体取向的情况下,基于真实微观结构进行了有限元法(FEM)分析。变形带或剪切带的有限元模拟结果与试验结果吻合较好。详细讨论了仿真结果与实验结果如此匹配的原因。

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