Title :
Novel Universal Multistable Mechanism Based on Magnetic–Mechanical–Inertial Coupling Effects
Author :
Jian Zhao ; Yu Huang ; Renjing Gao ; Guoxi Chen ; Yintang Yang ; Shutian Liu ; Kefeng Fan
Author_Institution :
State Key Lab. of Struct. Anal. for Ind. Equip., Dalian Univ. of Technol., Dalian, China
Abstract :
Different from multistable mechanisms incorporating multiple bistable elements, a novel universal multistable mechanism possessing the capability of being triggered in all in-plane directions was first designed and fabricated by using symmetric 3-D magnetic structures, which mainly consists of one magnetic ring supported by a elastic rod and one axially magnetized pillar fixed on the aluminum case. The in-plane isotropic multistability was originated from the nonlinear interactions among the inertial force, the elastic force, and the magnetic force. According to the pseudo-rigid-body model and magnetic charge model theories, an accurate mathematical model was established for precisely analyzing the nonlinear magnetic-mechanical-inertial coupling mechanics. By considering the influence of the translational motion and the inclination angle of the magnetic ring on the magnetic field distribution and strength, the nonlinear force versus displacement relationship was obtained numerically and experimentally. The numerical results are in good accordance with those obtained by experiments, thus validating the design methodology for isotropic multistable mechanism.
Keywords :
elasticity; magnetic fields; magnetic forces; mechanical stability; rods (structures); aluminum case; axially magnetized pillar; bistable elements; design methodology; elastic force; elastic rod; in-plane isotropic multistability; inclination angle; inertial force; isotropic multistable mechanism; magnetic charge model theories; magnetic field distribution; magnetic field strength; magnetic force; magnetic ring; magnetic-mechanical-inertial coupling effects; mathematical model; nonlinear force-displacement relationship; nonlinear interactions; nonlinear magnetic-mechanical-inertial coupling mechanics; pseudorigid-body model; symmetric 3-D magnetic structures; translational motion; universal multistable mechanism; Force; Magnetic analysis; Magnetic forces; Magnetic separation; Magnetoelasticity; Perpendicular magnetic recording; Design model; isotropic multistability; magnetic–mechanical coupling; nonlinear mechanics; universal multistable mechanism;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2013.2273475