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首页> 外文期刊>Journal of Applied Physics >Dynamical Dislocation Theory of Crystal Plasticity. I. The Yield Stress
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Dynamical Dislocation Theory of Crystal Plasticity. I. The Yield Stress

机译:晶体可塑性的动态位错理论。一,屈服应力

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摘要

The derivation is outlined of a general relation connecting the macroscopic plastic strain rate with the configuration and velocity distribution of dislocations in a monocrystal with a single active glide system. This can be simplified for particular cases, the most simple being the case of parallel straight dislocation lines. A new form of the dynamical theory of plasticity is applied to detailed calculations and compared with previous work. The major modification is the use of the equation v=v* exp[-D/τ] to express the quasi‐viscous behavior of dislocation velocities. Here, v=dislocation velocity, v*= terminal velocity, D=characteristic drag stress, and τ=resolved shear stress. Also, a physical relation between dislocation density and plastic strain is derived. The nonlinear differential equation that results from combining the strain‐rate equation with an equation that describes the loading machine is integrated. Approximate analytic solutions, and numerical calculations, are given for the upper yield stress and the initial portion of the stress‐strain curve. The effects of initial dislocation density, characteristic drag stress, crosshead speed, machine stiffness, and dislocation multiplication rate on the upper yield stress are calculated. It is shown that the upper yield stress exceeds the cohesive stress at a critical crosshead speed. Delay times are also calculated for rapid load application followed by constancy of the load and compared with experiments for LiF. The effects of strain hardening are considered in a companion paper.
机译:该推导概述了将宏观塑性应变速率与具有单个主动滑移系统的单晶中位错的构型和速度分布联系起来的一般关系。对于特定情况,可以简化此操作,最简单的情况是平行的直线位错线。一种新形式的可塑性动力学理论被应用于详细的计算并与以前的工作进行了比较。主要的修改是使用方程v = v * exp [-D /τ]表示位错速度的准粘性行为。在此,v =位错速度,v * =末端速度,D =特征阻力,τ=分解剪切应力。另外,导出位错密度与塑性应变之间的物理关系。将应变率方程与描述装载机的方程相结合而产生的非线性微分方程被积分。给出了较高屈服应力和应力应变曲线初始部分的近似解析解和数值计算。计算了初始位错密度,特征拉应力,十字头速度,机器刚度和位错倍增率对上屈服应力的影响。结果表明,在临界十字头速度下,上屈服应力超过了内聚应力。还计算了延迟时间,以便快速施加负载,然后保持负载恒定,并与LiF实验进行比较。伴随论文中考虑了应变硬化的影响。

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  • 来源
    《Journal of Applied Physics 》 |1965年第11期| 共11页
  • 作者单位

    Department of Engineering Mechanics, University of Kentucky, Lexington, Kentucky;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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  • 关键词

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