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Wave propagation and vibration of spring-mass systems.

机译:弹簧质量系统的波传播和振动。

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摘要

The main focus of this research was to study wave propagation and modeling techniques of spring-mass systems. The purpose is to show that by engineering a materials microstructure, the material can have wave filtering capabilities. Numerical solutions were obtained for the steady-state response of a uniform, alternating, and branched spring-mass chain. The spring-mass chains studied were excited by harmonic forces; it is shown how gaps exist in the frequency ranges which can be applied to the chain, to filter wave propagation. The spring-mass chains were modeled as a continuum being governed by the wave equation or higher order models such as Love's rod theory. It was concluded that the best agreement was found between the spring-mass chain and the continuum models when excited by very low frequencies.;Transient response problems are addressed for uniform materials, sandwiched materials, laminates, and graded materials. Analytical solutions for the response to these problems are presented along with numerical solutions using the finite element method. Step and impulse loading cases are studied to monitor if and how the initial wave pulse distorts upon propagation through a material. Underwater blast loading cases are studied which model water as a uniform bar transmitting waves into the hull of a sea going vessel.;Results are presented for one-dimensional cloaking scenarios. Cloaking models are created from basic two component models and increased to four component models. Analytical and numerical solutions are obtained proving that the magnitude of reflected waves can be reduced by gradually decreasing the wave speed with each added layer. All of the results obtained throughout this research agree that the microstructure of a material can be engineered to control wave propagation.
机译:这项研究的主要重点是研究弹簧质量系统的波传播和建模技术。目的是表明通过对材料的微观结构进行工程设计,材料可以具有滤波功能。获得了均匀,交替和分支的弹簧-质量链的稳态响应的数值解。所研究的弹簧质量链被谐波力激发。它显示了在可应用于链条的频率范围内如何存在间隙,以过滤波传播。弹簧质量链被建模为一个连续体,该连续体由波动方程或诸如洛夫棒理论的高阶模型控制。结论是,弹簧-质量链和连续体模型在非常低的频率激励下找到了最佳的协议。均匀材料,夹层材料,层压材料和渐变材料的瞬态响应问题得到解决。提出了针对这些问题的解析解决方案以及使用有限元方法的数值解。研究了阶跃和脉冲加载情况,以监视初始波脉冲在通过材料传播时是否以及如何变形。研究了水下爆炸载荷的情况,这些情况将水建模为将波浪传输到海船船体的均匀条形模型。给出了一维隐身方案的结果。隐藏模型是从基本的两个组件模型创建的,并增加到四个组件模型。获得了解析和数值解,证明了通过在每个附加层处逐渐降低波速可以减小反射波的大小。在整个研究过程中获得的所有结果都同意,可以对材料的微观结构进行设计以控制波的传播。

著录项

  • 作者

    Langenfeld, Jonathan Wayne.;

  • 作者单位

    Southern Illinois University at Carbondale.;

  • 授予单位 Southern Illinois University at Carbondale.;
  • 学科 Engineering Mechanical.
  • 学位 M.S.
  • 年度 2010
  • 页码 164 p.
  • 总页数 164
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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