DocumentCode :
1297677
Title :
Chiral composites as underwater acoustic attenuators
Author :
Yang, Shiuh-Kuang ; Hsia, Shao-Yi
Author_Institution :
Dept. of Mech. Eng., Nat. Sun Yat-Sen Univ., Kaohsiung, Taiwan
Volume :
25
Issue :
1
fYear :
2000
Firstpage :
139
Lastpage :
145
Abstract :
A plane-wave propagation in an elastic matrix containing the structural chiral microstructures is employed to model the dynamic response of a particles-mixture composite. Two nondispersive longitudinal wavenumbers and four dispersive circularly polarized transverse wavenumbers result from the dispersion equation of the so-called effective chiral (isotropic, noncentrosymmetric) composite. Our previous research indicated both that two transition frequencies divide the frequency spectrum of the transverse wavenumbers into three varying groups and that the four transverse modes can be distinguished only in a specified frequency range. This study illustrates the reflected and transmitted characteristics at a fluid-chiral interface at certain frequencies. The reflected and transmitted fields at the fluid-isotropic interface are solved to depict the effects of the chirality. The chiral material should instigate a reducible reflected plane wave and may be used as an anechoic coating to "absorb" sound underwater, due to the mode conversion of the chirality in the chiral medium.
Keywords :
acoustic wave absorption; acoustic wave reflection; acoustic wave transmission; chirality; dynamic response; echo; filled polymers; intelligent materials; underwater acoustic propagation; active material; anechoic coating; chiral composites; dispersion equation; dispersive circularly polarized transverse wavenumbers; dynamic response; echo reduction; elastic matrix; fluid-chiral interface; frequency spectrum; isotropic noncentrosymmetric composite; micropolar theory; mode conversion; nondispersive longitudinal wavenumbers; plane-wave propagation; reducible reflected plane wave; structural chiral microstructures; transverse modes; underwater acoustic attenuators; underwater sound absorption; Acoustic materials; Acoustic propagation; Attenuators; Coatings; Dispersion; Equations; Frequency conversion; Microstructure; Polarization; Underwater acoustics;
fLanguage :
English
Journal_Title :
Oceanic Engineering, IEEE Journal of
Publisher :
ieee
ISSN :
0364-9059
Type :
jour
DOI :
10.1109/48.820746
Filename :
820746
Link To Document :
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