Modeling and Verification of an Innovative Active Pneumatic Vibration Isolation System

Author:

Porumamilla H.1,Kelkar A. G.2,Vogel J. M.3

Affiliation:

1. Department of Mechanical Engineering, Calpoly, San Luis Obispo, CA 93410

2. Department of Mechanical Engineering, Iowa State University, Ames, IA 50011

3. Department of Aerospace Engineering, Iowa State University, Ames, IA 50011

Abstract

This paper presents a novel concept in active pneumatic vibration isolation. The novelty in the concept is in utilizing an air-spring-orifice-accumulator combination to vary the natural frequency as well as inject damping into the system per requirement, thereby eliminating the need for a hydraulic cylinder or a magnetorheological damper. This continuously variable natural frequency and damping (CVNFD) technology is aimed at achieving active vibration isolation. For analysis purposes, a particular application in the form of pneumatic seat suspension for off-road vehicles is chosen. A mathematical model representing the system is derived rigorously from inertial dynamics and first principles in thermodynamics. Empirical corelations are also used to include nonlinearities such as friction that cannot be accounted for in the thermodynamic equations. An exhaustive computational study is undertaken to help understand the physics of the system. The computational study clearly depicts the CVNFD capability of the vibration isolation system. An experimental test rig is built to experimentally validate analytical and simulation modeling of the system. Experimental verification corroborated the variable natural frequency and damping characteristic of the system observed through computational simulations.

Publisher

ASME International

Subject

Computer Science Applications,Mechanical Engineering,Instrumentation,Information Systems,Control and Systems Engineering

Reference23 articles.

1. Absorption of Energy During Whole-Body Vibration Exposure;Lundström;J. Sound Vib.

2. Effect of Magnitude of Vertical Whole-Body Vibration on Absorbed Power for the Seated Human Body;Mansfield;J. Sound Vib.

3. On the Health Risk of the Lumbar Spine Due to Whole-Body Vibration-Theoretical Approach, Experimental Data and Evaluation of Whole-Body Vibration;Seidel;J. Sound Vib.

4. International Organisation for Standardisation, 1997, “ISO 2631-1:1997, Mechanical Vibration and Shock-Evaluation of Human Exposure to Whole-Body Vibration,” Part, 1, General Requirements, ISO, Switzerland.

5. Vibration Control of an ER Seat Suspension for a Commercial Vehicle;Choi;ASME J. Dyn. Syst., Meas., Control

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