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A numerical method of lower bound dynamic shakedown analysis for 3D structures

机译:3D结构下界动态Shakedrown分析的数值方法

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摘要

PurposeThe safety assessment of engineering structures under repeated variable dynamic loads such as seismic and wind loads can be considered as a dynamic shakedown problem. This paper aims to extend the stress compensation method (SCM) to perform lower bound dynamic shakedown analysis of engineering structures and a double-closed-loop iterative algorithm is proposed to solve the shakedown load.Design/methodology/approachThe construction of the dynamic load vertexes is carried out to represent the loading domain of a structure under both dynamic and quasi-static load. The SCM is extended to perform lower bound dynamic shakedown analysis of engineering structures, which constructs the self-equilibrium stress field by a series of direct iteration computations. The self-equilibrium stress field is not only related to the amplitude of the repeated variable load but also related to its frequency. A novel double-closed-loop iterative algorithm is presented to calculate the dynamic shakedown load multiplier. The inner-loop iteration is to construct the self-equilibrated residual stress field based on the certain shakedown load multiplier. The outer-loop iteration is to update the dynamic shakedown load multiplier. With different combinations of dynamic load vertexes, a dynamic shakedown load domain could be obtained.FindingsThree-dimensional examples are presented to verify the applicability and accuracy of the SCM in dynamic shakedown analysis. The example of cantilever beam under harmonic dynamic load with different frequency shows the validity of the dynamic load vertex construction method. The shakedown domain of the elbow structure varies with the frequency under the dynamic approach. When the frequency is around the resonance frequency of the structure, the area of shakedown domain would be significantly reduced.Research limitations/implicationsIn this study, the dynamical response of structure is treated as perfect elastoplastic. The current analysis does not account for effects such as large deformation, stochastic external load and nonlinear vibration conditions which will inevitably be encountered and affect the load capacity.Originality/valueThis study provides a direct method for the dynamical shakedown analysis of engineering structures under repeated variable dynamic load.
机译:在反复可变动态载荷如地震和风力荷载的重复变量动态载荷下的工程结构的安全评估可以被认为是动态的震中问题。本文旨在扩展应力补偿方法(SCM)来执行工程结构的下限动态升起分析,并提出了一种双闭环迭代算法来解决Shakedown Load.design/Methodology/Approach的动态负荷顶点的构造进行以代表动态和准静态负载下的结构的装载域。 SCM扩展以执行工程结构的下限动态Shakedrown分析,其通过一系列直接迭代计算构建自平衡应力场。自平衡应力场不仅与重复的可变负载的幅度有关,而且与其频率有关。提出了一种新型的双闭环迭代算法来计算动态Shakedown负载倍增器。内部回路迭代是基于特定的Shakedown负载乘数构建自平衡的残余应力场。外环迭代是为了更新动态Shakbleown负载乘数。利用不同的动态载荷顶点的组合,可以获得动态升起的负载域。提出了一种尺寸尺寸示例以验证SCM在动态Shakedown分析中的适用性和准确性。具有不同频率的谐波动态负载下的悬臂梁的示例显示了动态载荷顶点施工方法的有效性。肘部结构的Shakedown领域随着动态方法的频率而变化。当频率围绕结构的谐振频率时,Shakedown结构域的区域将显着降低。研究限制/影响本研究,结构的动态响应被视为完美的弹塑性塑料。目前的分析不考虑大变形,随机外部负荷和非线性振动条件,这将不可避免地遇到并影响负载能力。virceCity / ValueShis研究为重复变量下的工程结构进行了直接的方法动态负载。

著录项

  • 来源
    《Engineering Computations》 |2021年第7期|3077-3103|共27页
  • 作者单位

    Tsinghua Univ Dept Engn Mech Beijing Peoples R China|Tsinghua Univ Key Lab Appl Mech Beijing Peoples R China|North China Univ Technol Sch Elect & Control Engn Beijing Peoples R China;

    Tsinghua Univ Dept Engn Mech Beijing Peoples R China|Tsinghua Univ Key Lab Appl Mech Beijing Peoples R China;

    North China Univ Technol Sch Civil Engn Beijing Peoples R China;

    Sigma Simulat Technol Co Beijing Peoples R China;

    Tsinghua Univ Dept Engn Mech Beijing Peoples R China|Tsinghua Univ Key Lab Appl Mech Beijing Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Dynamic shakedown; Lower bound; Dynamic load vertex; Frequency; Stress compensation method (SCM);

    机译:动态Shakedown;下限;动态载荷顶点;频率;应力补偿方法(SCM);

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