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Theoretical and experimental analysis of longitudinal wave propagation in cylindrical viscoelastic rods
Authors:A. Benatar  A.L. Yarin
Affiliation:a Department of Industrial, Welding and Systems Engineering, The Ohio State University, 1248 Arthur E. Adams Drive, Columbus, OH 43221-3560, USA
b Department of Mechanical Engineering, Faculty of Mechanical Engineering, Israel Institute of Technology, Technion, Haifa 32000, Israel
Abstract:Wave propagation in viscoelastic rods is encountered in many applications including studies of impact and fracture under high strain rates and characterization of the dynamic behavior of viscoelastic materials. For viscoelastic materials, both material and geometric dispersion are possible when the diameter of the rod is of the same order as the wavelength. In this work, we simplify the Pochhammer frequency equation for low and intermediate loss viscoelastic materials and formulate corrections for geometric dispersion for both the phase velocity and attenuation. The formulation is then experimentally verified with measurements of the phase velocity and attenuation in commercial polymethylmethacrylate rods that are 12 and View the MathML source in diameter. Without correcting for geometric dispersion, the usable frequency range for determining the phase velocity and attenuation for the View the MathML source rod is about View the MathML source, and about View the MathML source for the View the MathML source rod. Using the correction procedure developed here, it was possible to accurately determine the phase velocity and attenuation up to frequencies exceeding View the MathML source for the View the MathML source rod and View the MathML source for the View the MathML source rod. These corrections are applicable to many polymers and other viscoelastic materials. From thereon, the viscoelastic properties of the material can be determined over a wide range of frequencies.
Keywords:Wave propagation   Viscoelastic   Correction for geometric dispersion   Cylindrical rods
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