Pressure potential and stability analysis in an acoustical noncontact transportation


如何引用文章

全文:

开放存取 开放存取
受限制的访问 ##reader.subscriptionAccessGranted##
受限制的访问 订阅存取

详细

Near field acoustic traveling wave is one of the most popular principles in noncontact manipulations and transportations. The stability behavior is a key factor in the industrial applications of acoustical noncontact transportation. We present here an in-depth analysis of the transportation stability of a planar object levitated in near field acoustic traveling waves. To more accurately describe the pressure distributions on the radiation surface, a 3D nonlinear traveling wave model is presented. A closed form solution is derived based on the pressure potential to quantitatively calculate the restoring forces and moments under small disturbances. The physical explanations of the effects of fluid inertia and the effects of non-uniform pressure distributions are provided in detail. It is found that a vibration rail with tapered cross section provides more stable transportation than a rail with rectangular cross section. The present study sheds light on the issue of quantitative evaluation of stability in acoustic traveling waves and proposes three main factors that influence the stability: (a) vibration shape, (b) pressure distribution and (c) restoring force/moment. It helps to provide a better understanding of the physics behind the near field acoustic transportation and provide useful design and optimization tools for industrial applications.

作者简介

J. Li

School of Mechanical and Power Engineering East China University of Science and Technology

编辑信件的主要联系方式.
Email: abbytotoro@sina.com
中国, Shanghai, 200237

C. Liu

School of Mechanical and Power Engineering East China University of Science and Technology

Email: abbytotoro@sina.com
中国, Shanghai, 200237

W. Zhang

Department of Mechanical Engineering University of Saskatchewan

Email: abbytotoro@sina.com
加拿大, Saskatoon, S7N5A9

补充文件

附件文件
动作
1. JATS XML

版权所有 © Pleiades Publishing, Ltd., 2017