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首页> 外文期刊>Journal of Vibration and Acoustics >Nonlinear Transient Dynamics of Pendulum Torsional Vibration Absorbers—Part I: Theory
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Nonlinear Transient Dynamics of Pendulum Torsional Vibration Absorbers—Part I: Theory

机译:摆式扭振吸收器的非线性瞬态动力学—第一部分:理论

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011017.1-011017.10%Transient dynamics of centrifugal pendulum vibration absorbers, which are used for reducing torsional vibrations in rotating machines, are investigated using analysis and simulations of a dynamical model. These absorbers are being implemented in automotive engines to smooth vibrations and aid with fuel saving technologies, such as cylinder deactivation and torque converter lockup. In order for the absorbers to operate effectively with minimal mass, they must be designed to accommodate large amplitude, nonlinear responses, and in automotive engines they will experience a variety of transient environments. Here we consider the most severe transient environment, that of sudden activation near resonance, which leads to beating behavior of a nonlinear oscillator coupled to a driven rotor. An approximate method for predicting the percent overshoot of the beating transient response is derived, based on perturbation analysis of the system equations of motion. The main result is expressed in terms of the system and excitation parameters, and is found to accurately predict results from direct simulations of the model equations of motion. It is shown that absorbers with near-tautochronic paths behave much like linear absorbers, and when lightly damped and start from small initial conditions, they have an overshoot close to 100%. For absorbers with softening paths, such as the commonly used circular path absorbers, the overshoot can reach up to 173%, depending on system and input parameters, far exceeding predictions from linear analysis. These results provide a useful tool for design of absorbers to meet transient response specifications. In the following companion paper an experimental investigation is used to verify the analytical predictions.
机译:011017.1-011017.10%通过对动力学模型进行分析和仿真,研究了用于减少旋转机械扭转振动的离心摆式减振器的瞬态动力学特性。这些减震器已在汽车发动机中实现,以消除振动并借助节油技术(例如气缸停用和变矩器锁止)提供帮助。为了使吸收器以最小的质量有效运行,必须将它们设计为适应大振幅,非线性响应,并且在汽车发动机中,它们将经历各种瞬态环境。在这里,我们考虑最严重的瞬态环境,即共振附近突然激活的环境,这会导致耦合到从动转子的非线性振荡器的跳动行为。基于对系统运动方程的扰动分析,得出了一种用于预测跳动瞬态响应超调百分比的近似方法。主要结果以系统和激励参数的形式表示,并且可以准确预测运动模型方程的直接仿真结果。结果表明,具有近似自动时变路径的吸收器的行为与线性吸收器非常相似,当受到轻微阻尼并从较小的初始条件开始时,它们的超调量接近100%。对于具有软化路径的吸收器(例如常用的圆形路径吸收器),取决于系统和输入参数,过冲可高达173%,远远超出了线性分析的预测。这些结果为设计吸收器以满足瞬态响应规范提供了有用的工具。在下面的伴随论文中,将通过实验研究来验证分析预测。

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  • 来源
    《Journal of Vibration and Acoustics》 |2013年第1期|011017.1-011017.10|共10页
  • 作者

    Ryan J. Monroe; Steven W. Shaw;

  • 作者单位

    Air and Missile Defense Department,The Johns Hopkins University Applied Physics Laboratory,Laurel, MD 20723;

    Department of Mechanical Engineering,Michigan State University,East Lansing, Ml 48824;

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  • 正文语种 eng
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