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http://dx.doi.org/10.12989/anr.2020.8.2.157

Dynamic characteristics of multi-phase crystalline porous shells with using strain gradient elasticity  

Ahmed, Ridha A. (Al-Mustansiriah University, Engineering Collage)
Al-Maliki, Ammar F.H. (Al-Mustansiriah University, Engineering Collage)
Faleh, Nadhim M. (Al-Mustansiriah University, Engineering Collage)
Publication Information
Advances in nano research / v.8, no.2, 2020 , pp. 157-167 More about this Journal
Abstract
This paper studies forced vibrational behavior of porous nanocrystalline silicon nanoshells under radial dynamic loads using strain gradient theory (SGT). This type of material contains many pores inside it and also there are nano-size grains which define the material character. The formulation for nanocrystalline nanoshell is provided by first order shell theory and a numerical approach is used in order to solve nanoshell equations. SGT gives a scale factor related to stiffness hardening provided by nano-grains. For more accurate description of size effects due to nano-grains or nano-pore, their surface energy influences have been introduced. Surface energy of inclusion exhibit extraordinary influence on dynamic response of the nanoshell. Also, dynamic response of the nanoshell is affected by the scale of nano-grain and nano-pore.
Keywords
nanocrystalline material; forced vibration; porous nanoshell; strain gradient; Mori-Tanaka scheme;
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Times Cited By KSCI : 23  (Citation Analysis)
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