弹性地基梁非线性振动的离散模型

Q2 Physics and Astronomy Advances in Acoustics and Vibration Pub Date : 2017-03-15 DOI:10.1155/2017/4740851
A. Khnaijar, R. Benamar
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引用次数: 4

摘要

本文提出了一个离散物理模型来处理弹性地基上梁的非线性振动问题。该模型由一根由几根均匀分布的小钢筋组成的梁组成。弯曲刚度采用螺旋弹簧建模,Winkler土壤刚度采用线性垂直弹簧建模。集中质量表示梁的惯性,位于杆端。最后,由于毕达哥拉斯定理引起的杆件长度的变化,杆件中的轴向力呈现出非线性效应,假定杆件表现为纵向弹簧。由于其离散性,该模型具有简化参数研究的优点,允许单独对质量矩阵、刚度矩阵和非线性张量进行任何修改。因此,一旦建立了模型,就可以进行各种实际应用,而不需要再次经历所有的公式。对非线性行为的研究使运动方程的求解变得更加复杂。通过考虑这个离散模型并使用线性化方法,可以实现对这个非线性问题的理想化方法,并很容易地获得近似解。
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A Discrete Model for Nonlinear Vibration of Beams Resting on Various Types of Elastic Foundations
This paper presents a discrete physical model to approach the problem of nonlinear vibrations of beams resting on elastic foundations. The model consists of a beam made of several small bars, evenly spaced. The bending stiffness is modeled by spiral springs, and the Winkler soil stiffness is modeled using linear vertical springs. Concentrated masses, presenting the inertia of the beam, are located at the bar ends. Finally, the nonlinear effect is presented by the axial forces in the bars, assumed to behave as longitudinal springs, due to the change in their length induced by the Pythagorean Theorem. This model has the advantage of simplifying parametric studies, because of its discrete nature, allowing any modification in the mass matrix, the stiffness matrix, and the nonlinearity tensor to be made separately. Therefore, once the model is established, various practical applications may be performed without the need of going through all the formulation again. The study of the nonlinear behavior makes the solution of the movement equation rise in complexity. By considering this discrete model and using the linearization method, one can achieve an idealized approach to this nonlinear problem and obtain quite easily approximate solutions.
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期刊介绍: The aim of Advances in Acoustics and Vibration is to act as a platform for dissemination of innovative and original research and development work in the area of acoustics and vibration. The target audience of the journal comprises both researchers and practitioners. Articles with innovative works of theoretical and/or experimental nature with research and/or application focus can be considered for publication in the journal. Articles submitted for publication in Advances in Acoustics and Vibration must neither have been published previously nor be under consideration elsewhere. Subject areas include (but are not limited to): Active, semi-active, passive and combined active-passive noise and vibration control Acoustic signal processing Aero-acoustics and aviation noise Architectural acoustics Audio acoustics, mechanisms of human hearing, musical acoustics Community and environmental acoustics and vibration Computational acoustics, numerical techniques Condition monitoring, health diagnostics, vibration testing, non-destructive testing Human response to sound and vibration, Occupational noise exposure and control Industrial, machinery, transportation noise and vibration Low, mid, and high frequency noise and vibration Materials for noise and vibration control Measurement and actuation techniques, sensors, actuators Modal analysis, statistical energy analysis, wavelet analysis, inverse methods Non-linear acoustics and vibration Sound and vibration sources, source localisation, sound propagation Underwater and ship acoustics Vibro-acoustics and shock.
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