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Role of powder preparation route on microstructure and mechanical properties of Al-TiB_2 composites fabricated by accumulative roll bonding (ARB)

机译:粉末制备路线对累积辊压结合制备Al-TiB_2复合材料组织和力学性能的影响

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Accumulative roll bonding (ARB) was conducted up to seven cycles to fabricate Al-TiB_2 particulate metal matrix composites. The reinforcing particles were prepared and used in three different processing conditions: as-received TiB_2, mixed TiB_2-Al and in-situ synthesized TiB_2-Al. The mixed TiB_2-Al powder was produced by milling of TiB_2 with Al powder and in-situ synthesized TiB_2-Al powder was prepared by mechanical alloying (MA) through inducing TiB_2 particles in the Al with various composition of 10, 20 and 30 wt% Al. Transmission electron microscope (TEM) and scanning electron microscope (SEM) were used to evaluate the microstructure of the produced composites. The composite obtained from the in-situ TiB_2-Al powder showed the most uniform distribution of particles and exhibited the highest tensile strength of about 177 MPa in comparison with the composites reinforced with the as-received TiB_2 (156 MPa) and mixed TiB_2-Al powder (160 MPa). After seven ARB cycles, an ultra-fine grained structure with the average size of about 300 nm was obtained in the composite reinforced with in-situ TiB_2-Al powder. The appearance of dimples in tensile fracture surfaces revealed a ductile-type fracture in the produced composites.
机译:进行多达七个循环的累积辊压粘合(ARB),以制造Al-TiB_2颗粒金属基复合材料。制备增强颗粒并将其用于三种不同的加工条件:原样TiB_2,混合TiB_2-Al和原位合成TiB_2-Al。通过将TiB_2与Al粉进行研磨来制备混合的TiB_2-Al粉,并通过在Al中诱导TiB_2颗粒的组成为10、20和30 wt%的各种成分,通过机械合金化(MA)制备原位合成的TiB_2-Al粉。铝使用透射电子显微镜(TEM)和扫描电子显微镜(SEM)评估所生产复合材料的微观结构。与原样TiB_2(156 MPa)和混合TiB_2-Al增强的复合材料相比,由原位TiB_2-Al粉末获得的复合材料显示出最均匀的颗粒分布,并显示出约177 MPa的最高拉伸强度。粉末(160 MPa)。经过七个ARB循环后,在原位TiB_2-Al粉末增强的复合材料中获得了平均尺寸约为300 nm的超细晶粒结构。在拉伸断裂表面上出现凹痕表明所生产的复合材料具有延性断裂。

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