Free Vibration of Thermally Loaded FG-GPLRC Nanoplates Integrated with Magneto-Electro-Elastic Layers in Contact with Fluid

被引:5
|
作者
Saffari, Pouyan Roodgar [1 ]
Thongchom, Chanachai [1 ]
Saffari, Peyman Roodgar [2 ]
Lawongkerd, Jintara [2 ]
Keawsawasvong, Suraparb [3 ]
Senjuntichai, Teerapong [4 ]
机构
[1] Thammasat Univ, Dept Civil Engn, Fac Engn Thammasat,Sch Engn, Res Unit Struct & Fdn Engn, Pathum Thani 12120, Thailand
[2] Thammasat Univ, Dept Civil Engn, Res Unit Adv Mech Solids & Vibrat, Thammasat Sch Engn,Fac Engn, Pathum Thani 12120, Thailand
[3] Thammasat Univ, Fac Engn Thammasat, Dept Civil Engn, Res Unit Sci & Innovat Technol Civil Engn Infrastr, Pathum Thani 12120, Thailand
[4] Chulalongkorn Univ, Fac Engn, Ctr Excellence Appl Mech & Struct, Dept Civil Engn, Bangkok 10330, Thailand
关键词
Fluid-structure interaction; thermal loading; graphene platelet; magneto-electro-elastic; nonlocal strain gradient theory; STRESSES; PLATES;
D O I
10.1142/S0219455425501135
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This work investigates the free vibrations of innovative thermally loaded nanoplates constructed by integrating magneto-electro-elastic (MEE) layers with functionally-graded graphene platelet-reinforced composite cores (FG-GPLRC) and accounting for viscous fluid interactions. An advanced multiphysics model is developed using the Navier-Stokes equations to capture fluid structure coupling effects, Halpin-Tsai, and the rule of mixtures micromechanics to predict the non-uniform effective properties, third-order shear deformation plates theory (TSDPT) to incorporate thickness stretching, and the nonlocal strain gradient theory (NSGT) to characterize size dependencies. The Galerkin technique is used to solve the governing equations, which are derived from the Hamilton's principle. Parametric analyses quantify the influences of fluid depth, temperature fluctuations, temperature profiles, nonlocal and strain gradient parameters, electric and magnetic potentials, graphene distribution patterns, graphene weight fractions, and boundary conditions on the vibration response. The outcomes of this study provide design guidelines and predictive tools enabling active vibration control systems for next-generation thermally-loaded nanocomposite structures with widespread applications from aerospace vehicles to nanoelectronics.
引用
收藏
页数:40
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