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Study on the strengthening mechanisms of Cu/CNT nano-composites

机译:Cu / CNT纳米复合材料的强化机理研究

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摘要

Recent experimental studies by Chen et al. showed that copper (Cu) matrix reinforced by a small amount of carbon nanotubes (CNT, about 4% volume fraction) will increase material strength by about 300% while sacrificing some material ductility. The strengthening mechanisms of Cu/CNT nano-composites were firstly studied numerically using 2D axial symmetric unit cell finite element (FE) models in Ls-Dyna, which consist of both copper matrix and CNTs. The simulation results were verified by existing experimental data. A round of parametric studies was performed to investigate the effects of several modeling parameters in the FE simulations. These parameters include the volume fraction of CNTs, aspect ratio of CNTs, size of hardening zone, and the "equivalent" hardened plastic strain in the hardened zone. Two main strengthening mechanisms are found that affect CNTs reinforcement prediction. The first one is the load-bearing effect resulting from boundary condition imposed in the models. The CNTs significantly affect the plastic flow of copper around CNTs during plastic deformation, which is one important reinforcement mechanism because of high aspect ratio (H/D) of CNTs. The second strengthening mechanism is found to be the hardened zone of Cu matrix around CNTs, which is introduced by manufacturing processes and/or the Orowan effect. The Orowan effect plays a key role in reinforcement especially in the nano-scale, which results in a very small inter-particle spacing. The Orowan effect was also studied using analytical methods. Both analytical solution and unit cell FE modeling well correlated with the experimental results for various Cu/CNT composites with different CNT outside diameters.
机译:Chen等人最近的实验研究。研究表明,用少量碳纳米管(CNT,体积分数约为4%)增强的铜(Cu)基体将使材料强度提高约300%,同时牺牲一些材料的延展性。首先在Ls-Dyna中使用二维轴向对称晶胞有限元(FE)模型对Cu / CNT纳米复合材料的增强机理进行了数值研究,该模型由铜基体和CNT组成。现有的实验数据验证了仿真结果。进行了一轮参数研究,以研究有限元模拟中几个建模参数的影响。这些参数包括CNT的体积分数,CNT的长宽比,硬化区的大小以及硬化区中的“等效”硬化塑性应变。发现了影响碳纳米管增强预测的两个主要增强机制。第一个是模型中施加的边界条件引起的承载效应。碳纳米管在塑性变形过程中会显着影响铜在碳纳米管周围的塑性流动,这是重要的增强机制,因为碳纳米管的长径比(H / D)高。发现第二种增强机制是在CNT周围的Cu基体的硬化区,这是由制造工艺和/或Orowan效应引入的。 Orowan效应在增强中起着关键作用,尤其是在纳米尺度上,这导致非常小的粒子间距。还使用分析方法研究了Orowan效应。对于具有不同CNT外径的各种Cu / CNT复合材料,分析溶液和单位单元有限元模型都与实验结果紧密相关。

著录项

  • 来源
    《Materials Science and Engineering》 |2015年第1期|347-356|共10页
  • 作者单位

    Department of Mechanical and Aerospace of Engineering, University of Central Florida, 4000 Central Florida Boulevard, Orlando, FL 32816, USA;

    Department of Mechanical and Aerospace of Engineering, University of Central Florida, 4000 Central Florida Boulevard, Orlando, FL 32816, USA;

    Department of Mechanical and Aerospace of Engineering, University of Central Florida, 4000 Central Florida Boulevard, Orlando, FL 32816, USA;

    School of Mechanical Engineering, Chung-Ang University, Seoul 156-756, Republic of Korea;

    Department of Mechanical and Aerospace of Engineering, University of Central Florida, 4000 Central Florida Boulevard, Orlando, FL 32816, USA;

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

    Strengthening mechanism; Plasticity; Cu/CNT Nano-composites; Finite element simulation;

    机译:加强机制;可塑性;Cu / CNT纳米复合材料;有限元模拟;

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