期刊文献+

Reflection and transmission of elastic waves at five types of possible interfaces between two dipolar gradient elastic half-spaces

Reflection and transmission of elastic waves at five types of possible interfaces between two dipolar gradient elastic half-spaces
下载PDF
导出
摘要 Reflection and transmission of an incident plane wave at five types of possible interfaces between two dipolar gradient elastic solids are studied in this paper. First, the explicit expressions of monopolar tractions and dipolar tractions are derived from the postulated function of strain energy density. Then, the displacements, the normal derivative of displacements, monopolar tractions, and dipolar tractions are used to create the nontraditional interface conditions. There are five types of possible interfaces based on all possible combinations of the displacements and the normal derivative of displacements. These interfacial conditions with consideration of microstructure effects are used to determine the amplitude ratio of the reflection and transmission waves with respect to the incident wave. Further, the energy ratios of the reflection and transmission waves with respect to the incident wave are calculated. Some numerical results of the reflection and transmission coefficients are given in terms of energy flux ratio for five types of possible interfaces. The influences of the five types of possible interfaces on the energy partition between the refection waves and the transmission waves are discussed, and the concept of double channels of energy transfer is first proposed to explain the different influences of five types of interfaces. Reflection and transmission of an incident plane wave at five types of possible interfaces between two dipolar gradient elastic solids are studied in this paper. First, the explicit expressions of monopolar tractions and dipolar tractions are derived from the postulated function of strain energy density. Then, the displacements, the normal derivative of displacements, monopolar tractions, and dipolar tractions are used to create the nontraditional interface conditions. There are five types of possible interfaces based on all possible combinations of the displacements and the normal derivative of displacements. These interfacial conditions with consideration of microstructure effects are used to determine the amplitude ratio of the reflection and transmission waves with respect to the incident wave. Further, the energy ratios of the reflection and transmission waves with respect to the incident wave are calculated. Some numerical results of the reflection and transmission coefficients are given in terms of energy flux ratio for five types of possible interfaces. The influences of the five types of possible interfaces on the energy partition between the refection waves and the transmission waves are discussed, and the concept of double channels of energy transfer is first proposed to explain the different influences of five types of interfaces.
出处 《Acta Mechanica Sinica》 SCIE EI CAS CSCD 2017年第1期173-188,共16页 力学学报(英文版)
基金 supported by the Fundamental Research Funds for the Central Universities (Grant FRF-BR-15-026A) the State science and technology support program (Grant 2013BAK12B08) the Hei Long Jiang Natural Science Fund (Grant B2015019) the National Natural Science Foundation of China (Grant 10972029)
关键词 Gradient elasticity Interfacial condition Energy flux ratio Amplitude ratio Dipolar traction Gradient elasticity Interfacial condition Energy flux ratio Amplitude ratio Dipolar traction
  • 相关文献

参考文献1

二级参考文献10

  • 1Eringen,A. C.Theory of thermo-microstretch fluids and bubbly liquids[].International Journal of Engineering Science.1990
  • 2Eringen,A. C.Electrodynamics of microstretch and micropolar fluids[].ARI.1998
  • 3Eringen,A. C.Electromagnetic theory of microstretch elasticity and bone modeling[].International Journal of Engineering Science.2004
  • 4Kumar, R,Sharma, N,Ram, P.Reflection and transmission of micropolar elastic waves at an imperfect boundary[].Multidiscip Model Mater Struct.2008
  • 5Kumar, R,Singh, B.Reflection and transmission of elastic waves at a loosely bonded interface between an elastic and micropolar elastic solid[].Indian Journal of Pure and Applied Mathematics.1997
  • 6Eringen,AC.Theory of thermo-microstretch elastic solids[].International Journal of Engineering Science.1990
  • 7Eringen A C.Continuum theory of micromorphic electromagnetic thermoelastic solids[].International Journal of Engineering Science.2003
  • 8Eringen.A,C.Mechanics of Continua[]..1980
  • 9Jones,J. P.,Whittier,J. P.Waves in a flexible bonded interface[].Journal of Applied Mechanics.1967
  • 10Rajneesh Kumar.Rupender.Propagation of waves in an electro-microstretch generalized thermoelastic semi-space[J].Acta Mechanica Sinica,2009,25(5):619-628. 被引量:2

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部