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Microstructural evolution and strengthening mechanisms in Al7075/ graphene nano-plates/ carbon nano-tubes composite processed through accumulative roll bonding

机译:Al7075 /石墨烯纳米板/碳纳氟纳米板通过累积辊粘合处理的微结构进化和强化机理

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摘要

In the present research, A17075 matrix composites containing carbon nano-tubes (CNTs) and graphene nano-plates (GNPs) processed through accumulative roll bonding (ARB). Accumulative roll bonding carried out up to 3 passes at 400 °C with 50% thickness reduction per pass. The effect of CNTs and GNPs on the microstructural evolution and strengthening mechanisms were investigated. Microstructural evolutions in processed composites were characterized by using field emission scanning electron microscopy (FE-SEM), energy dispersive spec-troscopy (EDS), and electron backscatter diffraction (EBSD). The grain orientation spread (GOS) analysis shows that the volume fraction of recrystallization in deformed grains depends on the level of particle stimulated nucleation (PSN) in the interface between matrix and reinforcement. The occurrence of PSN is affected by the type of reinforcement and the number of ARB passes. The level of PSN depends directly on the extent of the plastic deformation zone (PDZ) in the vicinity of the matrix/ reinforcements. In the hybrid composite, the PSN mechanism was restrained due to Zener pinning of grain boundaries. Texture evolution is mainly carried out through β fiber for the composites subjected to the ARB process. In all ARBed samples, the main texture components include one or two of S, Brass, and Copper. The presence of CNTs and GNPs in the composite led to a change in both intensity and type of the main texture components formed during the ARB. In the composite containing GNPs, with increasing of ARB passes the volume fraction of PSN decreased remarkably due to strain hardening and consequently recrystallization was limited. It was found that the most significant strengthening mechanism which has the key role in the increase yield strength is the load transfer mechanism. The role of coefficient of thermal expansion mismatch and Orowan mechanisms in the increase yield strength and hardness of processed composites is less and the effect of the Hall-Petch mechanism is negligible.
机译:在本研究中,通过累积辊粘合(ARB)处理含有碳纳米管(CNT)和石墨烯纳米板(GNP)的A17075基质复合材料。累积辊粘合在400℃下进行,每次通过50%的厚度减小。研究了CNT和GNP对微观结构演化和强化机制的影响。通过使用现场发射扫描电子显微镜(Fe-SEM),能量分散规格轨道(EDS)和电子反向散射衍射(EBSD)的微观结构演进。晶粒取向扩散(GOS)分析表明,变形晶粒中重结晶的体积分数取决于基质和增强件之间的界面中的颗粒刺激核(PSN)的水平。 PSN的发生受加强类型的影响和ARB通行证的数量。 PSN的水平直接取决于基质/增强件附近的塑性变形区(PDZ)的程度。在杂交复合材料中,由于晶界的齐纳钉扎而受到PSN机构。纹理演化主要通过β纤维进行,用于对ARB过程进行的复合材料进行。在所有Albed样品中,主要质地部件包括S,黄铜和铜中的一两种。复合材料中的CNT和GNP的存在导致在ARB期间形成的主要纹理部件的两个强度和类型的变化。在含有GNP的复合材料中,随着ARB的增加,由于应变硬化,PSN的体积分数显着降低,因此重结晶受到限制。结果发现,最重要的加强机制在屈服强度提高的主要作用是负载转移机制。热膨胀系数和砧料机构在加工复合材料的增加屈服强度和硬度中的作用较小,霍尔铺设机制的效果可忽略不计。

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  • 来源
    《Materials Science and Engineering》 |2021年第11期|140877.1-140877.14|共14页
  • 作者单位

    Faculty of Materials Engineering Sahand University of Technology P.O. Box: 51335-1996 Tabriz Iran;

    Faculty of Materials Engineering Sahand University of Technology P.O. Box: 51335-1996 Tabriz Iran;

    Department of Electromechanical Systems and Metal Engineering Research Group Materials Science and Technology Ghent University Tech Lane Science Park Campus A 46 9062 Gent Belgium Department of Materials Science and Engineering Delft University of Technology Mekelweg 2 Delft the Netherlands;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    ARB; Recrystallization; Texture; PSN; Strengthening mechanisms; CNTs; GNPs;

    机译:arb;重结晶;质地;PSN;加强机制;CNT;GNPS.;

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