Snap-through and pull-in instabilities of an arch-shaped beam under an electrostatic loading


Autoria(s): 张吟; Wang YS; Li ZH; Huang YB; Li DC
Data(s)

2007

Resumo

The snap-through and pull-in instabilities of the micromachined arch-shaped beams under an electrostatic loading are studied both theoretically and experimentally. The pull-in instability that results in a system collision with an electrode substrate may lead to a system failure and, thus, limits the system maximum displacement. The beam/plate structure with a flat initial configuration under an electrostatic loading can only experience the pull-in instability. With the different arch configurations, the structure may experience either only the pull-in instability or the snap-through and pull-in instabilities together. As shown in our computation and experiment, those arch-shaped beams with the snap-through instability have the larger maximum displacement compared with the arch-shaped beams with only the pull-in stability and those with the flat initial configuration. The snap-through occurs by exerting a fixed load, and the structure experiences a discontinuous displacement jump without consuming power. Furthermore, after the snap-through jump, the structures are demonstrated to have the capacity to withstand further electrostatic loading without pull-in. Those properties of consuming no power and increasing the structure deflection range without pull-in is very useful in microelectromechanical systems design, which can offer better sensitivity and tuning range.

Identificador

http://dspace.imech.ac.cn/handle/311007/33967

http://www.irgrid.ac.cn/handle/1471x/2832

Idioma(s)

英语

Fonte

Journal of Microelectromechanical Systems.2007,16(3):684-693

Palavras-Chave #Actuators #Beams #Electrostatic Analysis #Modeling #Micromachined Beams #Shallow Arches #Bistable Mems #Microactuator #Parameters #Actuators #Stability #Model
Tipo

期刊论文