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سعید امیر

سعید امیر

دانشیار

دانشکده: دانشکده مهندسی مکانیک

گروه: مهندسی مکانیک - طراحی جامدات

مقطع تحصیلی: دکترای تخصصی

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سعید امیر

دانشیار سعید امیر

دانشکده: دانشکده مهندسی مکانیک - گروه: مهندسی مکانیک - طراحی جامدات مقطع تحصیلی: دکترای تخصصی |

 

زمینه های تحقیقاتی مورد علاقه:۲>

 

  • Stability, vibration and Buckling of structures
  • Analysis of Plates, beams and shells
  • Analysis of Micro & Nano Structures
  • Functionally Graded Materials
  • Porous Material
  • Numerical Methods
  • Plasticity and Creep
  • Smart Materials
  • Viscoelasticity
  • Elasticity

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

My affiliation

samir@kashanu.ac.ir

نمایش بیشتر

Dynamic Response of Viscoelastic CNT Conveying Pulsating Fluid Considering Surface Stress and Magnetic Field

نویسندگانعلی قربانپور-محسن یوسفی رامندی-سعید امیر-پدرام دشتی گوهری-چهره
نشریهARAB J SCI ENG
تاریخ انتشار0-0-01
نمایه نشریهSCOPUS

چکیده مقاله

A viscoelastic carbon nanotube (CNT) conveying pulsating fluid is presented which is based on Euler– Bernoulli beam theory. Runge–Kutta scheme is chosen in order to illustrate the transverse and longitudinal behavior of structure. The effects of surface stress, magnetic field and nonlocal small-scale theory on motion of structure are expressed in this study. Equilibrium equations of CNT conveying pulsating fluid are obtained using energy method. Galerkin, differential quadrature and Runge–Kutta methods are applied to solve equations of motion. In this paper, the effect of pulsating fluid on longitudinal behavior of CNT and transverse displacement of CNT are presented. The static and dynamic transverse distributed loads and their effects on CNT are expressed. In this study, regions of CNT with chaotic, quasi-periodic and periodic behaviors are presented. Also the effects of various parameters such as distributed loads, surface stress and magnetic field on those regions are demonstrated. The results of this work could be helpful in design and manufacturing of nano-/micromechanical system in advanced medical applications such as drug delivery systems with magnetic field as a parametric controller.