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    Effect of mode shape switching on the loss factor of sandwich cylinders

    , Article AIAA Journal ; Volume 58, Issue 8 , August , 2020 , Pages 3577-3592 Mokhtari, M ; Asgari, M ; Haddadpour, H ; Sharif University of Technology
    American Institute of Aeronautics and Astronautics Inc  2020
    Abstract
    Damping characteristics of three-layered sandwich cylindrical shells with the focus on mode switching phenomenon are investigated in the present study. All layers of the sandwich cylinder are formulated based on the first-order shear deformation theory. Considering the von Karman strain displacement relations, the nonlinear equations of motion are derived through Hamilton’s principle. By separating the displacement components into previbration and vibration states and substituting in the obtained nonlinear equations of motion, the previbration equilibrium equations and vibration equations of motion are obtained. The acquired equations are solved by applying the generalized differential... 

    Buckling of laminated composite plates with elastically restrained boundary conditions

    , Article Structural Engineering and Mechanics ; Volume 74, Issue 5 , June , 2020 , Pages 577-588 Kouchakzadeh, M. A ; Rahgozar, M ; Bohlooly, M ; Sharif University of Technology
    Techno-Press  2020
    Abstract
    A unified solution is presented for the buckling analysis of rectangular laminated composite plates with elastically restrained edges. The plate is subjected to biaxial in-plane compression, and the boundary conditions are simulated by employing uniform distribution of linear and rotational springs at all edges. The critical values of buckling loads and corresponding modes are calculated based on classical lamination theory and using the Ritz method. The deflection function is defined based on simple polynomials without any auxiliary function. The verifications of the current study are carried out with available combinations of classic boundary conditions in the literature. Through... 

    Ductile steel plate external end diaphragms for steel tub girder straight highway bridges

    , Article Earthquake Engineering and Engineering Vibration ; Volume 19, Issue 3 , July , 2020 , Pages 759-777 Maleki, S ; Dolati, A ; Sharif University of Technology
    Institute of Engineering Mechanics (IEM)  2020
    Abstract
    The end diaphragm of bridges are normally designed to resist lateral seismic forces imposed on the superstructure in earthquake prone regions. Using ductile diaphragms with high deformation capacity could reduce the seismic demands on the substructure and prevent costly damage under strong ground motions. The end diaphragms of steel tub girder bridges with high lateral stiffness and dominant shear behavior have a potential to be used as ductile fuse elements. In this study, a steel plate shear diaphragm (SPSD) is introduced as an external end diaphragm of tub girder steel bridges to reduce the seismic demands imposed on the substructure. Quasi static nonlinear analyses were conducted to... 

    A general multi-scale modeling framework for two-phase simulation of multi-stream plate-fin heat exchangers

    , Article International Journal of Heat and Mass Transfer ; Volume 156 , 2020 Niroomand, R ; Saidi, M. H ; Hannani, S. K ; Sharif University of Technology
    Elsevier Ltd  2020
    Abstract
    Compact heat exchangers are among the vital components used in various industries. In this study, a general framework has been developed with a multi-scale point of view for three-dimensional simulation of multi-stream plate-fin heat exchangers. The most important features in the MSPFHEs simulation, such as phase change phenomena, multi-component mixtures, multiple streams, transversal, lateral and longitudinal conduction, non-uniformity of inlet flow, variable fluid properties, and heat leakage are simultaneously considered in this model. The modular form of the model structure has facilitated layer-by-layer simulation of cross flow heat exchangers as well as parallel flow ones. Our model... 

    Unsteady preconditioned characteristic boundary conditions for direct numerical simulation of incompressible flows

    , Article AIAA Journal ; Volume 58, Issue 4 , 2020 , Pages 1476-1489 Parseh, K ; Hejranfar, K ; Sharif University of Technology
    American Institute of Aeronautics and Astronautics Inc  2020
    Abstract
    The unsteady preconditioned characteristic boundary conditions (UPCBCs) based on the artificial compressibility (AC) method are formulated and applied at artificial boundaries for the direct numerical simulation (DNS) of incompressible flows. The compatibility equations including the unsteady terms are mathematically derived in the generalized curvilinear coordinates and then incorporated as boundary conditions (BCs) in a high-order accurate incompressible flowsolver. The spatial derivative terms of the systemof equations are discretized using the fourth-order compact finite difference (FD) scheme, consistent with the high-order accuracy required for the DNS. The time integration is carried... 

    Modeling of magnetic shape memory alloy plates for pressure sensor application

    , Article Journal of Intelligent Material Systems and Structures ; 2020 Sayyaadi, H ; Naderi, H ; Sharif University of Technology
    SAGE Publications Ltd  2020
    Abstract
    This article investigates the basis for pressure sensor application based on the magnetic shape memory effect in membranes. Von Karmans nonlinear terms are considered in strain–displacement relationships of thin films, and a new method is presented for solution of large deflections of thin films with arbitrary boundary condition. In this study, the equations of motion of magnetic shape memory alloys are extended. In pressurized membranes, the complex distribution of mechanical stress can cause the martensitic reorientation, which is the underlying mechanism for sensing applications in magnetic shape memory alloys. To examine the obtained model, the governing equations of magnetic shape... 

    Free vibration of a functionally graded annular sector plate integrated with piezoelectric layers

    , Article Applied Mathematical Modelling ; Volume 79 , 2020 , Pages 341-361 Shahdadi, A ; Rahnama, H ; Sharif University of Technology
    Elsevier Inc  2020
    Abstract
    Based on the first order shear deformation theory, free vibration behavior of functionally graded (FG) annular sector plates integrated with piezoelectric layers is investigated. The distribution of electric potential along the thickness direction of piezoelectric layers which is assumed to be a combination of linear and sinusoidal functions, satisfies both open and closed circuit electrical boundary conditions. Through a reformulation of governing equations and harmonic motion assumption, a novel decoupling method is suggested to transform the six second order coupled partial differential equations of motion into two eighth order and fourth order equations. A Fourier series method is then... 

    Viscoelastic dynamics and static responses of a graphene nanoplatelets-reinforced composite cylindrical microshell

    , Article Mechanics Based Design of Structures and Machines ; 2020 Shokrgozar, A ; Ghabussi, A ; Ebrahimi, F ; Habibi, M ; Safarpour, H ; Sharif University of Technology
    Taylor and Francis Inc  2020
    Abstract
    In this study, a cylindrical microshell stability reinforced by graphene nanoplatelets is investigated while an axial load is applied uniformly. In addition, viscoelastic foundation covers the composite nanostructure. Therefore, the impacts of the small scale parameter are studied while nonlocal strain gradient theory (NSGT) is considered. The present research deals for the first time with the consideration of viscoelastic, strain–stress size-dependent parameters along with taking into account of various boundary conditions (BCs), especially C-F ones put into effect on the proposed theory. The governing equations (G.Eqs) and BCs have been obtained utilizing energy method and solved with... 

    Influence of system parameters on buckling and frequency analysis of a spinning cantilever cylindrical 3D shell coupled with piezoelectric actuator

    , Article Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science ; Volume 234, Issue 2 , 2020 , Pages 512-529 Shokrgozar, A ; Safarpour, H ; Habibi, M ; Sharif University of Technology
    SAGE Publications Ltd  2020
    Abstract
    In this research, buckling and vibrational characteristics of a spinning cylindrical moderately thick shell covered with piezoelectric actuator carrying spring-mass systems are performed. This structure rotates about axial direction and the formulations include the Coriolis and centrifugal effects. In addition, various cases of thermal (uniform, linear, and nonlinear) distributions are studied. The modeled cylindrical moderately thick shell covered with piezoelectric actuator, its equations of motion, and boundary conditions are derived by the Hamilton's principle and based on a moderately cylindrical thick shell theory. For the first time in the present study, attached mass-spring systems... 

    On size-dependent nonlinear free vibration of carbon nanotube-reinforced beams based on the nonlocal elasticity theory: Perturbation technique

    , Article Mechanics Based Design of Structures and Machines ; 2020 Taati, E ; Borjalilou, V ; Fallah, F ; Ahmadian, M. T ; Sharif University of Technology
    Taylor and Francis Inc  2020
    Abstract
    Based on the first-order shear deformation (FSD) model and nonlocal elasticity theory, the simultaneous effects of shear and small scale on the nonlinear vibration behavior of functionally graded carbon nanotube-reinforced composite (FG-CNTRC) beams are investigated for the first time. To this end, the governing equations of bending and stretching with von Kármán geometric nonlinearity are decoupled into one fourth-order partial differential equation in terms of transverse deflection. A closed-form solution of the nonlinear natural frequency, which can be used in conceptual design and optimization algorithms of FG- CNTRC beams with different boundary conditions, is developed using a hybrid... 

    Dynamic stability analysis of a sandwich beam with magnetorheological elastomer core subjected to a follower force

    , Article Acta Mechanica ; Volume 231, Issue 9 , 2020 , Pages 3715-3727 Rokn Abadi, M ; Yousefi, M ; Haddadpour, H ; Sadeghmanesh, M ; Sharif University of Technology
    Springer  2020
    Abstract
    In the present study, the effect of using magnetorheological elastomer materials and a magnetic field on the dynamic stability of a sandwich beam under a follower force has been investigated for various boundary conditions. The considered sandwich beam consists of a magnetorheological elastomer core constrained by elastic layers. The structural governing equations are derived using Hamilton’s principle and solved by the finite element method. The validity of the result is examined by comparison with those in the literature. The effects of variation in the parameters such as magnetic field intensity and the thickness of the layers on the stability of the sandwich beam are studied. Finally,... 

    Exact solution for frequency response of sandwich microbeams with functionally graded cores

    , Article JVC/Journal of Vibration and Control ; Volume 25, Issue 19-20 , 2019 , Pages 2641-2655 ; 10775463 (ISSN) Taati, E ; Fallah, F ; Sharif University of Technology
    SAGE Publications Inc  2019
    Abstract
    Based on the Euler–Bernoulli beam model and the modified strain gradient theory, the size-dependent forced vibration of sandwich microbeams with a functionally graded (FG) core is presented. The equation of motion and the corresponding classical and nonclassical boundary conditions are derived using the Hamilton’s principle. An exact solution of the governing equation is developed for sandwich beams with various boundary conditions and subjected to an arbitrarily distributed harmonic transverse load. Finally, parametric studies are presented to investigate the effects of geometric ratios, length scale parameters, power index, boundary conditions, layup, and thickness of the FG layer on the... 

    An exact analytical model for fluid flow through finite rock matrix block with special saturation function

    , Article Journal of Hydrology ; Volume 577 , 2019 ; 00221694 (ISSN) Izadmehr, M ; Abbasi, M ; Ghazanfari, M. H ; Sharifi, M ; Kazemi, A ; Sharif University of Technology
    Elsevier B.V  2019
    Abstract
    An exact analytical solution for one-dimensional fluid flow through rock matrix block is presented. The nonlinearity induced from flow functions makes the governing equations describing this mechanism difficult to be analytically solved. In this paper, an analytical solution to the infiltration problems considering non-linear relative permeability functions is presented for finite depth, despite its profound and fundamental importance. Elimination of the nonlinear terms in the equation, as a complex and tedious task, is done by applying several successive mathematical manipulations including: Hopf-Cole transformation to obtain a diffusive type PDE; an exponential type transformation to get a... 

    Buckling and frequency analysis of the nonlocal strain–stress gradient shell reinforced with graphene nanoplatelets

    , Article JVC/Journal of Vibration and Control ; Volume 25, Issue 19-20 , 2019 , Pages 2627-2640 ; 10775463 (ISSN) Mohammadgholiha, M ; Shokrgozar, A ; Habibi, M ; Safarpour, H ; Sharif University of Technology
    SAGE Publications Inc  2019
    Abstract
    In this study, buckling and vibrational characteristics of a nanoshell reinforced with graphene nanoplatelets under uniform axial load are investigated. The material properties of the piece-wise graphene-reinforced composites (GPLRCs) are assumed to be graded in the thickness direction of a nanoshell and are estimated using a nanomechanical model. The effects of the small scale are analyzed based on nonlocal stress–strain gradient theory (NSGT). The governing equations and boundary conditions (BCs) are developed using Hamilton’s principle and are solved with assistance of the generalized differential quadrature method. The novelty of the current study is the consideration of GPLRC and size... 

    Lattice Boltzmann simulation of convective flow and heat transfer in a nanofluid-filled hollow cavity

    , Article International Journal of Numerical Methods for Heat and Fluid Flow ; Volume 29, Issue 9 , 2019 , Pages 3075-3094 ; 09615539 (ISSN) Pu, Q ; Aalizadeh, F ; Aghamolaei, D ; Masoumnezhad, M ; Rahimi, A ; Kasaeipoor, A ; Sharif University of Technology
    Emerald Group Publishing Ltd  2019
    Abstract
    Purpose: This paper aims to to simulate the flow and heat transfer during free convection in a square cavity using double-multi-relaxation time (MRT) lattice Boltzmann method. Design/methodology/approach: The double-MRT lattice Boltzmann method is used, and the natural convection fluid flow and heat transfer under influence of different parameters are analyzed. The D2Q5 model and D2Q9 model are used for simulation of temperature field and flow field, respectively. The cavity is filled with CuO-water nanofluid; in addition, the thermo-physical properties of nanofluid and the effect of nanoparticles’ shapes are considered using Koo–Kleinstreuer–Li (KKL) model. On the other hand, the cavity is... 

    Analytical study of micro-rotating disks with angular acceleration on the basis of the strain gradient elasticity

    , Article Acta Mechanica ; Volume 230, Issue 9 , 2019 , Pages 3259-3278 ; 00015970 (ISSN) Bagheri, E ; Asghari, M ; Danesh, V ; Sharif University of Technology
    Springer-Verlag Wien  2019
    Abstract
    The small-scale effects on the mechanical responses of micro-rotating disks with angular acceleration are investigated based on the strain gradient theory, as one of the powerful non-classical continuum theories which have been developed to justify the empirical observations of mechanical behavior in small-scale structures and components. The differential equations governing motion of the micro-disk elements in radial and circumferential direction together with the corresponding boundary conditions are derived. Then, an analytical solution is presented for the components of the displacement field which can be used as a base for determination of the components of the stress field. In a... 

    A study on the extent of the contact and stick zones in multiple contacts

    , Article Archive of Applied Mechanics ; Volume 89, Issue 9 , 2019 , Pages 1825-1836 ; 09391533 (ISSN) Ghanati, P ; Adibnazari, S ; Sharif University of Technology
    Springer Verlag  2019
    Abstract
    In this paper, we analyze a general quasi-static two-dimensional multiple contact problem between two elastically similar half-planes under the constant normal (including applied moments) and oscillatory tangential loading utilizing the classical singular integral equations approach. Boundary conditions at nonsingular edges of discrete contact zones are applied and new side conditions are extracted and named “the consistency conditions” for multiple contacts. These conditions are mandatory for determination of the positions of the nonsingular edges of the contact and stick zones, when the number of them exceeds the number of the discrete contact and stick zones, respectively. Consequently, a... 

    Dielectrophoretic interaction of two particles in a uniform electric field

    , Article Microsystem Technologies ; Volume 25, Issue 7 , 2019 , Pages 2699-2711 ; 09467076 (ISSN) Javidi, R ; Moghimi Zand, M ; Dastani, K ; Sharif University of Technology
    Springer Verlag  2019
    Abstract
    The local electric field distorsion induced by a dielectric particle leads to particle–particle interactions and assembly which is very interesting for their useful applications on microfluidic devices. Particles behavior becomes more complicated if several particles interact at the same time. This paper presents a comprehensive numerical analysis of the assembly and particle–particle interactions for two similar and dissimilar dielectric particles immersed in a dielectric fluid using the immersed interface method based on two-dimensional direct-current dielectrophoresis. The immersed interface method is a finite-difference (or finite element) based numerical method which its key advantage... 

    A quasi-three-dimensional thermal model for multi-stream plate fin heat exchangers

    , Article Applied Thermal Engineering ; Volume 157 , 2019 ; 13594311 (ISSN) Niroomand, R ; Saidi, M. H ; Hannani, S. K ; Sharif University of Technology
    Elsevier Ltd  2019
    Abstract
    In this study, a novel pseudo-three-dimensional model is developed to find out both fluid and solid temperature distributions in multi-stream plate fin heat exchangers. In this simulation algorithm, heat exchangers can be in either parallel flow or cross flow configuration. The model considerations include: heat leakage of cap plates and side plates, conduction throughout the solid matrix of the heat exchanger, variable physical properties, and inlet mass flow rate maldistribution. Using the computational code, the effects of different factors such as: the number of layers, mass flow variation, inlet mass flow rate maldistribution, and stacking pattern on the thermal performance of the heat... 

    Influence of spring-mass systems on frequency behavior and critical voltage of a high-speed rotating cantilever cylindrical three-dimensional shell coupled with piezoelectric actuator

    , Article JVC/Journal of Vibration and Control ; Volume 25, Issue 9 , 2019 , Pages 1543-1557 ; 10775463 (ISSN) Safarpour, H ; Pourghader, J ; Habibi, M ; Sharif University of Technology
    SAGE Publications Inc  2019
    Abstract
    In this article, vibrational behavior and critical voltage of a spinning cylindrical thick shell covered with piezoelectric actuator (PIAC) carrying spring-mass systems are investigated. It should be noted that, the installed sensors on the proposed systems are considered as a tip mass. This structure rotates about axial direction and the formulations include the Coriolis and centrifugal effects. In addition, various cases of thermal (uniform, linear, and nonlinear) distributions are studied. The modeled cylindrical thick shell covered with PIAC, its equations of motion, and boundary conditions are derived by the principle of minimum total potential energy and based on a new...