TY - JOUR
T1 - Suppression of nonlinear aeroelastic responses for a cantilevered trapezoidal plate in hypersonic airflow using an energy harvester enhanced nonlinear energy sink
AU - Tian, Wei
AU - Li, Yueming
AU - Yang, Zhichun
AU - Li, Ping
AU - Zhao, Tian
N1 - Publisher Copyright:
© 2020 Elsevier Ltd
PY - 2020/4/15
Y1 - 2020/4/15
N2 - A nonlinear energy sink (NES) enhanced by a giant magnetostrictive material (GMM) energy harvester is proposed to suppress the nonlinear aeroelastic responses of a cantilevered trapezoidal plate in hypersonic airflow. An analytical model of a cantilevered trapezoidal plate coupled to the NES-GMM system is obtained using the Rayleigh-Ritz approach and the affine transformation. Nonlinear aerodynamic loadings are obtained by applying the third-order piston theory. Comparisons of the dynamic bifurcation behaviors exhibited by plates with only the NES and by those with NES-GMM show that the latter has a better suppression effect. Using an energy-based analysis approach, the energy transfer mechanism between the plate and the NES-GMM system is examined. Numerical results show that the aeroelastic responses of the plate can be controlled substantially by the targeted energy transfer of the NES in the post-flutter regime. Some of the captured energy can be converted into magnetic energy by the Villari effect and then transformed into electric energy. Furthermore, a parametric design strategy is proposed to improve the nonlinear aeroelastic response suppression and enhance the performance of the NES-GMM. Numerical results indicate that the installation position, mass, damping, and nonlinear stiffness coefficients of the NES-GMM system significantly affect its suppression performance. This parametric design strategy can achieve the desired objectives of nonlinear aeroelastic response suppression.
AB - A nonlinear energy sink (NES) enhanced by a giant magnetostrictive material (GMM) energy harvester is proposed to suppress the nonlinear aeroelastic responses of a cantilevered trapezoidal plate in hypersonic airflow. An analytical model of a cantilevered trapezoidal plate coupled to the NES-GMM system is obtained using the Rayleigh-Ritz approach and the affine transformation. Nonlinear aerodynamic loadings are obtained by applying the third-order piston theory. Comparisons of the dynamic bifurcation behaviors exhibited by plates with only the NES and by those with NES-GMM show that the latter has a better suppression effect. Using an energy-based analysis approach, the energy transfer mechanism between the plate and the NES-GMM system is examined. Numerical results show that the aeroelastic responses of the plate can be controlled substantially by the targeted energy transfer of the NES in the post-flutter regime. Some of the captured energy can be converted into magnetic energy by the Villari effect and then transformed into electric energy. Furthermore, a parametric design strategy is proposed to improve the nonlinear aeroelastic response suppression and enhance the performance of the NES-GMM. Numerical results indicate that the installation position, mass, damping, and nonlinear stiffness coefficients of the NES-GMM system significantly affect its suppression performance. This parametric design strategy can achieve the desired objectives of nonlinear aeroelastic response suppression.
KW - Energy harvest
KW - Giant magnetostrictive material
KW - Nonlinear energy sink
KW - Nonlinear flutter suppression
KW - Targeted energy transfer
UR - http://www.scopus.com/inward/record.url?scp=85077757158&partnerID=8YFLogxK
U2 - 10.1016/j.ijmecsci.2020.105417
DO - 10.1016/j.ijmecsci.2020.105417
M3 - 文章
AN - SCOPUS:85077757158
SN - 0020-7403
VL - 172
JO - International Journal of Mechanical Sciences
JF - International Journal of Mechanical Sciences
M1 - 105417
ER -