凹槽棒中挠性波传播的特殊性

IF 0.9 4区 物理与天体物理 Q4 ACOUSTICS
A. A. Agafonov, M. Yu. Izosimova, R. A. Zhostkov, A. I. Kokshayskiy, A. I. Korobov, N. I. Odina
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引用次数: 0

摘要

摘要--我们介绍了近似于声学黑洞效应的矩形横截面缺口金属棒中弹性波传播的数值模拟和实验研究结果。样品是有缺口的棒材;缺口深度根据指数为 4/3 的幂律增加。实验结果和数值模拟结果证实,这种棒材会减慢弹性波向棒材末端的传播速度。实验结果表明,这种结构中的挠性波表现出分散性,在某些特征频率下,挠性波在杆端处的振幅高于实心杆中的振幅。比较了实心棒材和缺口棒材的特征模形状以及挠曲波振幅沿棒材的分布。研究了波向有缺口钢筋末端传播时挠曲波长度的频率依赖性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Peculiarities of Flexural Wave Propagation in a Notched Bar

Peculiarities of Flexural Wave Propagation in a Notched Bar

Peculiarities of Flexural Wave Propagation in a Notched Bar

We present the results of numerical simulation and experimental studies of the propagation of fle-xural elastic waves in a notched metal bar with a rectangular cross section that approximates the acoustic black hole effect. The sample is a notched bar; the depth of notches increases according to a power law with an exponent of 4/3. The experimental results and the results of numerical simulation confirm that such bars slow the propagation velocity of an elastic wave towards the end of the bar. It is demonstrated that flexural waves in such structures exhibit dispersion and their amplitude at the end of the bar for some eigenfrequencies is higher than that in a solid bar. The eigenmode shapes of a solid and notched bar are compared together with the distribution of the flexural wave amplitude along the bars. The frequency dependence of the flexural wave length is studied during wave propagation towards the end of the notched bar.

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来源期刊
Acoustical Physics
Acoustical Physics 物理-声学
CiteScore
1.60
自引率
50.00%
发文量
58
审稿时长
3.5 months
期刊介绍: Acoustical Physics is an international peer reviewed journal published with the participation of the Russian Academy of Sciences. It covers theoretical and experimental aspects of basic and applied acoustics: classical problems of linear acoustics and wave theory; nonlinear acoustics; physical acoustics; ocean acoustics and hydroacoustics; atmospheric and aeroacoustics; acoustics of structurally inhomogeneous solids; geological acoustics; acoustical ecology, noise and vibration; chamber acoustics, musical acoustics; acoustic signals processing, computer simulations; acoustics of living systems, biomedical acoustics; physical principles of engineering acoustics. The journal publishes critical reviews, original articles, short communications, and letters to the editor. It covers theoretical and experimental aspects of basic and applied acoustics. The journal welcomes manuscripts from all countries in the English or Russian language.
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