Enhanced damping of lightweight structures by semi-active joints

被引:0
|
作者
Lothar Gaul
S. Hurlebaus
J. Wirnitzer
H. Albrecht
机构
[1] University of Stuttgart,Institute of Applied and Experimental Mechanics
[2] Texas A&M University,Zachry Department of Civil Engineering
[3] Daimler AG,undefined
[4] Robert Bosch GmbH,undefined
来源
Acta Mechanica | 2008年 / 195卷
关键词
Shuttle Radar Topography Mission; Friction Joint; Truss Structure; Vibration Suppression; Lightweight Structure;
D O I
暂无
中图分类号
学科分类号
摘要
Lightweight structures typically have low inherent structural damping. Effective vibration suppression is required, for example, in certain applications involving precision positioning. The present approach is based on friction damping in semi-active joints which allow relative sliding between the connected parts. The energy dissipation due to interfacial slip in the friction joints can be controlled by varying the normal pressure in the contact area using a piezo-stack actuator. This paper focuses on the optimal placement of semi-active joints for vibration suppression. The proposed method uses optimality criteria for actuator and sensor locations based on eigenvalues of the controllability and observability gramians. Optimal sensor/actuator placement is stated as a nonlinear multicriteria optimization problem with discrete variables and is solved by a stochastic search algorithm. At optimal locations, conventional rigid connections of a large truss structure are replaced by semi-active friction joints. Two different concepts for the control of the normal forces in the friction interfaces are implemented. In the first approach, each semi-active joint has its own local feedback controller, whereas the second concept uses a global, clipped-optimal controller. Simulation results for a 10-bay truss structure show the potential of the proposed semi-active concept.
引用
收藏
页码:249 / 261
页数:12
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