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Equiaxed Ti-based Composites With High Strength And Large Plasticity Prepared By Sintering And Crystallizing Amorphous Powder

机译:非晶态粉末烧结结晶高强度大塑性等轴钛基复合材料

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摘要

High-performance titanium alloys with an equiaxed composite microstructure were achieved by sintering and crystallizing amorphous powder. By introducing a second phase in a β-Ti matrix, series of optimized Ti-Nb-Fe-Co-Al and Ti-Nb-Cu-Ni-Al composites, which have a microstructure composed of ultrafine-grained and equiaxed CoTi2 or (Cu,Ni)Ti2 precipitated phases surrounded by a ductile β-Ti matrix, were fabricated by sintering and crystallizing mechanically alloyed amorphous powder. The as-fabricated composites exhibit ultra-high ultimate compressive strength of 2585MPa and extremely large compressive plastic strain of around 40%, which are greater than the corresponding ones for most titanium alloys. In contrast, the alloy fabricated by sintering and crystallizing Ti-Zr-Cu-Ni-Al amorphous powder, which possesses significantly higher glass forming ability in comparison with the Ti-Nb-Fe-Co-Al and Ti-Nb-Cu-Ni-Al alloy systems, exhibits a complex microstructure with several intermetallic compounds and a typical brittle fracture feature. The deformation behavior and fracture mechanism indicate that the ultrahigh compressive strength and large plasticity of the as-fabricated equiaxed composites is induced by dislocations pinning effect of the CoTi2 or (Cu,Ni)Ti2 second phases and the interaction and multiplication of generated shear bands in the ductile β-Ti matrix, respectively. The results obtained provide basis guidelines for designing and fabricating titanium alloys with excellent mechanical properties by powder metallurgy.
机译:通过烧结和结晶无定形粉末,可以得到具有等轴复合组织的高性能钛合金。通过在β-Ti基质中引入第二相,可以得到一系列优化的Ti-Nb-Fe-Co-Al和Ti-Nb-Cu-Ni-Al复合材料,这些复合材料的微观结构由超细晶粒和等轴CoTi2或(通过对机械合金化的非晶态粉末进行烧结和结晶,可以制造出被延展性β-Ti基体包围的Cu,Ni)Ti2沉淀相。加工后的复合材料具有2585MPa的超高极限抗压强度和约40%的超大压缩塑性应变,这比大多数钛合金的抗压塑性应变大。相比之下,通过烧结和结晶化Ti-Zr-Cu-Ni-Al非晶态粉末制成的合金,与Ti-Nb-Fe-Co-Al和Ti-Nb-Cu-Ni相比,具有明显更高的玻璃形成能力。 -铝合金系统,具有多种金属间化合物的复杂微观结构和典型的脆性断裂特征。变形行为和断裂机理表明,CoTi2或(Cu,Ni)Ti2第二相的位错钉扎效应以及所产生的剪切带的相互作用和倍增作用导致了等轴复合材料的超高抗压强度和大塑性。延展性β-Ti基质。获得的结果为通过粉末冶金设计和制造具有优异机械性能的钛合金提供了基础指南。

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