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Seyyed M. Hasheminejad

Researcher at Iran University of Science and Technology

Publications -  170
Citations -  2505

Seyyed M. Hasheminejad is an academic researcher from Iran University of Science and Technology. The author has contributed to research in topics: Boundary value problem & Scattering. The author has an hindex of 24, co-authored 157 publications receiving 2140 citations. Previous affiliations of Seyyed M. Hasheminejad include Islamic Azad University & Sharif University of Technology.

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Surface effects on nonlinear free vibration of nanobeams

TL;DR: In this paper, the nonlinear flexural vibrations of micro-and nanobeams in the presence of surface effects are studied within the framework of Euler-Bernoulli beam theory including the von Karman geometric nonlinearity.
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Sloshing characteristics in half-full horizontal elliptical tanks with vertical baffles

TL;DR: In this paper, the effects of surface-piercing or bottom-mounted vertical baffles on two-dimensional liquid sloshing characteristics in a half-full non-deformable horizontal cylindrical container of elliptical cross section is investigated.
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Active vortex-induced vibration control of a circular cylinder at low Reynolds numbers using an adaptive fuzzy sliding mode controller

TL;DR: In this article, an adaptive fuzzy sliding mode control (AFSMC) scheme is applied to actively suppress the two-dimensional vortex-induced vibrations (VIV) of an elastically mounted circular cylinder, free to move in in-line and cross-flow directions.
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Free transverse vibrations of cracked nanobeams with surface effects

TL;DR: In this article, the flexural vibrations of cracked micro-and nanobeams in the presence of surface effects are studied, and the cracked-beam model is set up by dividing the classical cracked beam element into two segments connected by a rotational spring located at the cracked section.
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Vibration analysis of piezoelectric nanowires with surface and small scale effects

TL;DR: In this paper, an analytical model for predicting surface effects on the free transverse vibrations of piezoelectric nanowires (NWs) is developed based on the non-local Euler-Bernoulli beam theory.