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Longitudinal wave propagation in one-dimensional waveguides with sinusoidally varying depth

DOI:10.1016/j.jsv.2019.114945 期刊:Journal of Sound and Vibration 出版年份:2019 更新时间:2025-09-11 14:15:04
摘要: In this paper, longitudinal elastic wave propagation in one-dimensional waveguides with sinusoidally varying depth is investigated. Furthermore, different types of such waveguide designs are explored to understand their capability to attenuate the group speeds as well as the velocity amplitudes. The plane waveguide con?gurations with sinusoidally varying depth, of three types, namely Convex, Concave and Full, along with their combinations and variants, whose segmental depth along the length of the waveguide is modeled by a sine function having an amplitude parameter ?? and the half-period p, which leads to a governing differential equation with variable coe?cients, are considered in this study. To study the longitudinal wave propagation in these inhomogenous waveguides, a novel superconvergent ?nite element formulation is developed, which gives an exact stiffness matrix. In addition to the wave propagation analysis, static and free vibration behaviors in these waveguides are also studied. The implemented superconvergent ?nite element formulation for these studies is validated with the commercial ?nite element software Abaqus. In the ?rst part of the wave propagation analysis, abilities of the three plane waveguide con?gurations with sinusoidally varying depth to attenuate high amplitude and frequency waves are investigated for different values of ??. Next, four different waveguides composed of Convex-Concave combinations are studied with an aim to get better attenuation. Following this, the waveguides’ segmental parameters, ?? and p, are varied across the segments along the length of the waveguide, using a sine function and polynomial power law to see if such graded variations give better energy absorption properties compared to the plane waveguides whose parameters are unvarying. In the last part, a developed inhomogenous rod of a certain length is inserted in the middle of a uniform waveguide to study the possibility of changing the longitudinal wave propagation characteristics of the uniform waveguide. The results from the analyses show that the group speed and amplitude of the longitudinal wave in these con?gurations change signi?cantly with space as well as with frequencies, especially for high values of ??. The Concave and Full waveguides delay the propagation of longitudinal waves signi?cantly, which translates into the re?ected waves appearing later in the chosen large time window. The Convex waveguide and its variants reduce the wave amplitudes signi?cantly. Building on these results, some waveguides with notable attenuation characteristics are proposed.
作者: S. Gopalakrishnan,Manish Suresh Raut
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To investigate longitudinal elastic wave propagation in one-dimensional waveguides with sinusoidally varying depth and explore different types of such waveguide designs to understand their capability to attenuate the group speeds as well as the velocity amplitudes.

The study concludes that waveguides with sinusoidally varying depth can significantly alter wave propagation characteristics, including group speeds and amplitudes. The Convex waveguide is effective in amplitude reduction, while the Concave and Full waveguides are effective in slowing down wave propagation. Combining different waveguide segments can achieve synergistic effects in reducing both group speeds and amplitudes. The findings suggest potential applications in blast mitigation.

The analysis assumes the material to be elastic and isotropic. The study does not consider viscoelastic material models, which could introduce damping and further affect wave propagation characteristics.

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