首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >On the fracture toughness behavior of in-situ Al-Ti composites produced via mechanical alloying and hot extrusion
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On the fracture toughness behavior of in-situ Al-Ti composites produced via mechanical alloying and hot extrusion

机译:机械合金化和热挤压制备原位Al-Ti复合材料的断裂韧性行为

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Mechanical alloying and hot extrusion techniques were employed to produce in-situ fully dens Al-Ti composites without applying any heat treatment. The focus of this study is the investigation of fracture toughness in produced composites in order to improve it and to explain the mechanisms responsible for the fracture. The morphology of milled powders was studied by Scanning Electron Microscopy (SEM). The microstructure of the extruded composites was examined by Optical Microscopy (OM) and Field Emission Scanning Electron Microscopy (FESEM). Moreover, the density and hardness of samples were investigated. Three point bending test of the single edge notched beam (SENB) samples was applied to examine the fracture toughness behavior under the quasi-static condition. In order to find the effective mechanism of fracture, the crack propagation paths and the fracture surfaces were studied using optical microscopy and SEM, respectively. The results showed that the morphology of the milled powders has a significant impact on the final mechanical properties of the extruded samples. The best bonding between particles corresponds to the powders with equiaxial morphology. The high energy vibratory mill was used to fabricate Al-20Ti-4hrV nano composite sample while low energy planetary mill was used to produce Al-20Ti-20hrP and Al-10Ti-60hrP composites. The results indicated the improved distribution of particles with steady state equiaxial morphology and the formation of in-situ nanometric intermetallics in the ultrafine Al matrix in Al-20Ti-4hrV sample. Accordingly, the highest density, the best mechanical properties and fracture toughness were obtained in Al-20Ti-4hrV sample. The use of low energy planetary mill led to the formation of flattened particles, low density and subsequently, poor mechanical properties in Al-20Ti-20hrP and Al-10Ti-60hrP composite samples. The fracture mechanism of Al-20Ti-4hrV sample was distinguished as micro void coalescence (MVC) whereas those of Al-20Ti-20hrP and Al-10Ti-60hrP samples were fracture and debonding of Ti particles, respectively. In addition, the good agreement between the experimental results of fracture toughness and the Rice & Johnson model predictions attained which confirms that this model is applicable for describing the fracture toughness of these composites. (C) 2016 Elsevier B.V. All rights reserved.
机译:机械合金化和热挤压技术被用于在不进行任何热处理的情况下原位生产完全致密的Al-Ti复合材料。这项研究的重点是研究生产的复合材料的断裂韧性,以改善复合材料并解释造成断裂的机理。通过扫描电子显微镜(SEM)研究了研磨粉末的形态。通过光学显微镜(OM)和场发射扫描电子显微镜(FESEM)检查挤出的复合材料的微观结构。此外,研究了样品的密度和硬度。采用单边切口梁(SENB)样品的三点弯曲试验,以检验准静态条件下的断裂韧性行为。为了找到有效的断裂机理,分别利用光学显微镜和SEM研究了裂纹的扩展路径和断裂表面。结果表明,研磨粉末的形态对挤出样品的最终机械性能有重大影响。颗粒之间的最佳结合对应于具有等轴形态的粉末。高能振动磨用于制备Al-20Ti-4hrV纳米复合材料样品,而低能行星磨用于制备Al-20Ti-20hrP和Al-10Ti-60hrP复合材料。结果表明,在Al-20Ti-4hrV样品中,超细Al基体中具有稳态等轴形态的颗粒分布得到改善,并形成了原位纳米金属间化合物。因此,在Al-20Ti-4hrV样品中获得了最高的密度,最佳的机械性能和断裂韧性。低能行星式磨粉机的使用导致了Al-20Ti-20hrP和Al-10Ti-60hrP复合样品中扁平颗粒的形成,低密度以及随后较差的机械性能。 Al-20Ti-4hrV样品的断裂机理为微空隙聚结(MVC),而Al-20Ti-20hrP和Al-10Ti-60hrP样品的断裂机理分别为Ti颗粒的断裂和脱胶。此外,断裂韧性的实验结果与Rice&Johnson模型的预测值之间有很好的一致性,这证实了该模型可用于描述这些复合材料的断裂韧性。 (C)2016 Elsevier B.V.保留所有权利。

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