DocumentCode :
129643
Title :
Time-causal material modeling in the simulation of guided waves in circular viscoelastic waveguides
Author :
Bause, Fabian ; Schroder, Arne ; Rautenberg, Jens ; Henning, Bernd ; Gravenkamp, Hauke
Author_Institution :
Meas. Eng. Group, Univ. of Paderborn, Paderborn, Germany
fYear :
2014
fDate :
3-6 Sept. 2014
Firstpage :
1348
Lastpage :
1351
Abstract :
For the description of linear viscoelasticity, the fractional Zener model may be used. Based on the spectral decomposition of the elasticity matrix as proposed by Theocaris, we generalize the one-dimensional analysis of the material model into three dimensions and discuss appropriate simplifications to reduce the amount of unknowns for the material description. Then, a decomposition approach that considers the real valued frequency dependence of the viscoelastic moduli and the real valued frequency dependence of their attenuation separately is proposed. The Scaled Boundary Finite Element Method is used for the efficient computation of the phase velocity dispersion and the modal wave fields given a frequency dependent but real valued viscoelasticity matrix. Utilizing the modal expansion approach, the transmitting and receiving transducer are taken into account to compute the modal amplitudes. Combining these modal amplitudes, the phase velocity dispersion and re-introducing the viscoelastic attenuation results in a transfer function of the viscoelastic waveguide including excitation and receiving conditions. The performance of the proposed simulation model is shown by comparison to measurements taken on a polypropylene sample.
Keywords :
acoustic waveguides; boundary-elements methods; finite element analysis; polymers; ultrasonic absorption; ultrasonic transducers; viscoelasticity; circular viscoelastic waveguides; elasticity matrix; fractional Zener model; guided waves; linear viscoelasticity; modal expansion approach; modal wave fields; phase velocity dispersion; polypropylene sample; real valued frequency dependence; receiving transducer; scaled boundary finite element method; spectral decomposition; time-causal material modeling; transfer function; transmitting transducer; viscoelastic attenuation; viscoelastic moduli; Acoustics; Attenuation; Dispersion; Frequency dependence; Materials; Mathematical model; Transmission line matrix methods;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium (IUS), 2014 IEEE International
Conference_Location :
Chicago, IL
Type :
conf
DOI :
10.1109/ULTSYM.2014.0333
Filename :
6932100
Link To Document :
بازگشت