研究目的
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.
研究成果
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.
研究不足
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.
1:Experimental Design and Method Selection:
The study involves the development of a novel superconvergent ?nite element formulation for analyzing longitudinal wave propagation in inhomogenous waveguides with sinusoidally varying depth. The formulation provides an exact stiffness matrix and is validated with the commercial ?nite element software Abaqus.
2:Sample Selection and Data Sources:
The study considers waveguides with three types of depth variations (Convex, Concave, and Full) modeled by a sine function with parameters ?? and p.
3:List of Experimental Equipment and Materials:
The study uses the commercial ?nite element software Abaqus for validation purposes.
4:Experimental Procedures and Operational Workflow:
The study involves static and free vibration analyses, followed by wave propagation analysis in the waveguides. The wave propagation analysis includes studying the effects of varying ?? and p, combining different waveguide segments, and inserting inhomogenous rods in uniform waveguides.
5:Data Analysis Methods:
The study uses the Newmark-?? time integration method for dynamic analysis and compares results with Abaqus for validation.
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