DocumentCode :
1784248
Title :
Surface effect on the diffraction of horizontal shear waves near a nanosized cylindrical hole in half-plane
Author :
Yan Ru ; Xiao-shan Cao
Author_Institution :
Dept. of Eng. Mech., Xi´an Univ. of Technol., Xi´an, China
fYear :
2014
fDate :
Oct. 30 2014-Nov. 2 2014
Firstpage :
360
Lastpage :
365
Abstract :
At nanoscale, surface and interface have significant effects on the physical and mechanical properties of solids, due to the increasing ratio of surface area to volume. Diffraction of horizontal shear waves (SH-wave) around a nanosized cylindrical hole in a half-plane is presented in this paper. The surface elasticity theory is adopted to account for surface effects at nanoscale. Using the displacement potential and wave functions expansion methods, the elastic fields around the hole induced by incident SH-wave are studied analytically. For different incident wave frequencies and different separations between the surface of the half-plane and the hole, the effects of surface properties on the dynamic stress concentration is discussed in detail. The results show that surface effects play an important role in the diffractions of SH-wave as the radius of the hole shrinks to nanoscale. Generally speaking, with the increase of surface constant, the dynamic stress concentration will decrease almost in the whole range. When the separation between the hole and the surface of the half-plane gets larger, the dynamic stress concentration will also decline due to the constraint from surrounding medium. Moreover, surface effects also evidently alter the shape of surface of the half-plane, compared to the conventional analysis.
Keywords :
elastic waves; elasticity; wave functions; displacement potential method; dynamic stress concentration; elastic fields; half-plane surface shape; hole radius; hole surface; horizontal shear wave diffraction; incident wave frequencies; mechanical properties; nanosized cylindrical hole; physical properties; surface area-volume ratio; surface constant; surface elasticity theory; surface property effects; surrounding medium; wave function expansion method; Diffraction; Elasticity; Nanoscale devices; Solids; Stress; Surface acoustic wave devices; Surface waves; Dynamic stress concentration; Half-plane; Multiple diffraction; Surface effect;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Piezoelectricity, Acoustic Waves, and Device Applications (SPAWDA), 2014 Symposium on
Conference_Location :
Beijing
Print_ISBN :
978-1-4799-6424-6
Type :
conf
DOI :
10.1109/SPAWDA.2014.6998599
Filename :
6998599
Link To Document :
بازگشت