Dou Suguang, Strachan B Scott, Shaw Steven W, Jensen Jakob S
Department of Mechanical Engineering, Technical University of Denmark, Kgs. Lyngby, Denmark.
Department of Mechanical Engineering, Michigan State University, East Lansing, MI, USA Department of Electrical and Computer Engineering, Michigan State University, East Lansing, MI, USA.
Philos Trans A Math Phys Eng Sci. 2015 Sep 28;373(2051). doi: 10.1098/rsta.2014.0408.
Much is known about the nonlinear resonant response of mechanical systems, but methods for the systematic design of structures that optimize aspects of these responses have received little attention. Progress in this area is particularly important in the area of micro-systems, where nonlinear resonant behaviour is being used for a variety of applications in sensing and signal conditioning. In this work, we describe a computational method that provides a systematic means for manipulating and optimizing features of nonlinear resonant responses of mechanical structures that are described by a single vibrating mode, or by a pair of internally resonant modes. The approach combines techniques from nonlinear dynamics, computational mechanics and optimization, and it allows one to relate the geometric and material properties of structural elements to terms in the normal form for a given resonance condition, thereby providing a means for tailoring its nonlinear response. The method is applied to the fundamental nonlinear resonance of a clamped-clamped beam and to the coupled mode response of a frame structure, and the results show that one can modify essential normal form coefficients by an order of magnitude by relatively simple changes in the shape of these elements. We expect the proposed approach, and its extensions, to be useful for the design of systems used for fundamental studies of nonlinear behaviour as well as for the development of commercial devices that exploit nonlinear behaviour.
人们对机械系统的非线性共振响应已经了解很多,但对于优化这些响应特性的结构进行系统设计的方法却很少受到关注。在微系统领域,这方面的进展尤为重要,因为非线性共振行为正被用于传感和信号调节等多种应用中。在这项工作中,我们描述了一种计算方法,该方法为操纵和优化由单个振动模式或一对内部共振模式描述的机械结构的非线性共振响应特性提供了一种系统手段。该方法结合了非线性动力学、计算力学和优化技术,它允许人们将结构元件的几何和材料特性与给定共振条件下的正规形中的项联系起来,从而提供一种调整其非线性响应的方法。该方法应用于两端固定梁的基本非线性共振和框架结构的耦合模式响应,结果表明,通过相对简单地改变这些元件的形状,可以将基本正规形系数改变一个数量级。我们期望所提出的方法及其扩展对于用于非线性行为基础研究的系统设计以及开发利用非线性行为的商业设备是有用的。