Investigation on the Static Performance of Surface-Throttling Frictionless Pneumatic Cylinder through Finite Element Method

Author:

Xu Jingfeng1,Gao Siyu1,Qi Lizi1,Gao Qiang12,Zhu Min23,Yang Hongbin1,Li Yinze1,Wei Wenyuan1,Lu Lihua1

Affiliation:

1. School of Mechatronics Engineering, Harbin Institute of Technology, Harbin 150001, China

2. Chongqing Research Institute of HIT, Chongqing 401151, China

3. School of Electrical Engineering and Automation, Harbin Institute of Technology, Harbin 150001, China

Abstract

The equilibrium system is essential for the high-precision movement of the ultra-precision vertical axis. However, the complex assembly process makes orifice-throttling frictionless cylinders difficult to manufacture and prone to air hammering. Surface-throttling frictionless pneumatic cylinders effectively avoid these problems. This paper establishes an improved finite element method (FEM) model of a novel surface-throttling frictionless pneumatic cylinder to investigate its static performance. Furthermore, the static equilibrium calculation of the dual-cylinder system is concerned. The radial bearing capacity and support force requirements for the surface-throttling aerostatic bearings are obtained. The outcomes provide theoretical guidance for optimizing cylinder parameters. It ensures that the ultimately optimized cylinder meets the requirements for radial bearing capacity and support force of the ultra-precision vertical axis while minimizing air consumption. Finally, the accuracy of the proposed method is verified through computational fluid dynamics (CFD) calculation and experiments.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Key research and development program of Heilongjiang Province

Manufacturing science and technology innovation talent project of Harbin

Publisher

MDPI AG

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