Aeroelastic characteristics of magneto-rheological fluid sandwich beams in supersonic airflow

被引:39
|
作者
Asgari, Mojtaba [1 ]
Kouchakzadeh, Mohammad Ali [1 ]
机构
[1] Sharif Univ Technol, Dept Aerosp Engn, Azadi St,POB 11155-8639, Tehran, Iran
关键词
Sandwich beam; Magneto-rheological fluid; Supersonic flow; Flutter; DYNAMIC STABILITY; PANEL FLUTTER; VIBRATION SUPPRESSION; COMPOSITE PLATES; MODEL; CORE;
D O I
10.1016/j.compstruct.2016.02.015
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Supersonic aeroelastic instability of a three-layered sandwich beam of rectangular cross section with an adaptive magneto-rheological fluid (MRF) core layer is investigated. The panel is excited by an airflow along it's longitudinal direction. The problem formulation is based on classical beam theory for the face layers, magnetic field dependent complex modulus approach for viscoelastic material model and the linear first-order piston theory for aerodynamic pressure. The classical Hamilton's principle and the assumed mode method are used to set up the equations of motion. The validity of the derived formulation is confirmed through comparison with the available results in the literature. The effects of applied magnetic field, core layer thickness and constraining layer thickness on the critical aerodynamic pressure are studied. The onset of instability in terms of the critical value of the nondimensional aerodynamic pressure for the sandwich beam is calculated using the p-method scheme. Simply supported, clamped-clamped and clamped-free boundary conditions are considered. The results show that the magnetic field intensity and thickness ratios have significant effects on the instability bounds. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:93 / 102
页数:10
相关论文
共 50 条
  • [21] Flexible Fixture Based on Magneto-rheological Fluid
    Zhao, C.
    Liu, D. D.
    Tang, C. R.
    MANUFACTURING AUTOMATION TECHNOLOGY, 2009, 392-394 : 518 - 522
  • [22] Fabrication of Magneto-rheological Fluid with Double Frameworks
    Guojie, Lee
    Huang Jie
    Pang Xuedong
    Chen Xingchi
    2018 13TH ANNUAL IEEE INTERNATIONAL CONFERENCE ON NANO/MICRO ENGINEERED AND MOLECULAR SYSTEMS (NEMS 2018), 2018, : 627 - 630
  • [23] Experimental research of Magneto-rheological fluid clutch
    Shen, YL
    Yang, SP
    Pan, CZ
    2005 IEEE International Conference on Vehicular Electronics and Safety Proceedings, 2005, : 104 - 107
  • [24] Magneto-rheological fluid behavior in squeeze mode
    Farjoud, Alireza
    Cavey, Ryan
    Ahmadian, Mehdi
    Craft, Michael
    SMART MATERIALS AND STRUCTURES, 2009, 18 (09)
  • [25] Magneto-rheological fluid under magnetic disturbances
    Sandoval, U.
    Carrillo, J. L.
    Donado, F.
    REVISTA MEXICANA DE FISICA E, 2010, 56 (01): : 123 - 133
  • [26] Magneto-rheological fluid dampers for control of bridges
    Gordaninejad, F
    Saiidi, M
    Hansen, BC
    Ericksen, EO
    Chang, FK
    JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, 2002, 13 (2-3) : 167 - 180
  • [27] Magneto-rheological fluid shock absorbers for HMMWV
    Gordaninejad, F
    Kelso, SP
    SMART STRUCTURES AND MATERIALS 2000: DAMPING AND ISOLATION, 2000, 3989 : 266 - 273
  • [28] Design of magneto-rheological fluid based device
    Kim, JH
    Lee, CW
    Jung, BB
    Park, Y
    Cao, GZ
    KSME INTERNATIONAL JOURNAL, 2001, 15 (11): : 1517 - 1523
  • [29] Design of Magneto-Rheological fluid based device
    Jeong-Hoon Kim
    Chong-Won Lee
    Byung-Bo Jung
    Youngjin Park
    Guangzhong Cao
    KSME International Journal, 2001, 15 : 1517 - 1523
  • [30] Rheological properties of micro-nano magneto-rheological fluid
    Wang, Hongbo
    Liang, Xinyi
    Guo, Jifan
    Zhu, Chungeng
    MATERIALS EXPRESS, 2019, 9 (07) : 827 - 830