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A variable material property approach for elastic-plastic analysis of proportional and nonproportional loading.

机译:用于比例和非比例载荷的弹塑性分析的可变材料属性方法。

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摘要

A linear elastic solution of a boundary value problem is used as the basis to generate the corresponding inelastic solution. This method treats the material parameters as field variables, and their distribution is obtained as part of the solution in an iterative manner. Five different schemes to update these material parameters are discussed and compared. A procedure for the calculation of the residual stress field is presented.;In this context, a general axisymmetric method of elastic-plastic analysis is proposed. Application of this method to the residual stress prediction for an autofrettaged cylinder and a cold worked fastener hole is presented. Lame's linear-elastic solution is used in these applications. Residual stress calculations based on the actual material curve, isotropic or kinematic hardening models, and a variable Bauschinger effect factor (BEF) is carried out. It is concluded that the consideration of the dependency of the BEF on plastic strain makes significant changes to the residual hoop stress near the bore for low-level autofrettage. However, this dependency is insignificant for high level autofrettage. Results obtained here are shown to be in good agreement with experiment, and finite element results.;A total deformation theory capable of analyzing a sequence of linear nonproportional loading is proposed. Each linear loading path is defined with reference to its previous loading path, analogous to proportional loading. The application of the proposed formulation to tension-torsion loading of thin tubes and pressure-torsion loading of thick-walled cylinders is carried out. It is shown that for stress controlled processes, the proposed method gives the same plastic strain field as does incremental plasticity. For load controlled processes, where stresses are not known a priori, a method to estimate the plastic strain for linear hardening materials is proposed. This method calculates the necessary stress fields using conventional deformation plasticity. These stresses are then used in the proposed total deformation formulation to predict plastic strains. The plastic strain field resulting from this method is compared with finite element results using incremental plasticity. The results are in very good agreement. The proposed method significantly reduces computation time.
机译:边值问题的线性弹性解被用作生成相应非弹性解的基础。该方法将材料参数视为场变量,并以迭代方式将其分布作为解决方案的一部分获得。讨论并比较了五个更新这些材料参数的不同方案。提出了计算残余应力场的程序。在此背景下,提出了一种通用的轴对称弹塑性分析方法。提出了该方法在汽缸和冷作紧固件孔残余应力预测中的应用。在这些应用中使用了Lame的线弹性解决方案。根据实际材料曲线,各向同性或运动学硬化模型以及可变的包辛格效应因子(BEF)进行残余应力计算。结论是,对于低水平自动强化,考虑到BEF对塑性应变的依赖性,使孔附近的残余环向应力发生了重大变化。但是,这种依赖关系对于高级别的自动强化是微不足道的。所得结果与实验结果和有限元结果吻合良好。提出了一种能够分析线性非比例载荷序列的总变形理论。每个线性加载路径均参照其先前的加载路径进行定义,类似于比例加载。将该建议的公式应用于薄管的拉扭载荷和厚壁圆筒的压扭载荷。结果表明,对于应力控制过程,所提出的方法具有与增量塑性相同的塑性应变场。对于先验未知应力的负载控制过程,提出了一种估算线性硬化材料塑性应变的方法。该方法使用常规变形可塑性计算必要的应力场。然后,将这些应力用于建议的总变形公式中,以预测塑性应变。使用增量塑性将这种方法产生的塑性应变场与有限元结果进行比较。结果非常吻合。所提出的方法大大减少了计算时间。

著录项

  • 作者

    Jahed, Hamid.;

  • 作者单位

    University of Waterloo (Canada).;

  • 授予单位 University of Waterloo (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 228 p.
  • 总页数 228
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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