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Mathematical models of gear rattle in Roots blower vacuum pumps

Mathematical models of gear rattle in Roots blower vacuum pumps
Mathematical models of gear rattle in Roots blower vacuum pumps
This paper is concerned with the modelling of gear rattle in Roots blower vacuum pumps. Analysis of experimental data reveals that the source of the noise and vibration problem is the backlash nonlinearity due to gear teeth losing and re-establishing contact. We derive simple non-smooth models for the lightly damped, lightly loaded dynamics of the pump. The models include a time-dependent forcing term which arises from the eccentric mounting of the gears acting at the gross rotation rate. We use a combination of explicit construction, asymptotic methods and numerical techniques to classify complicated dynamic behaviour in realistic parametric regimes. We first present a linear analysis of permanent-contact motions, and derive upper bounds on eccentricity for silent operation. We then develop a nonlinear analysis of ‘backlash oscillations’, where the gears lose and re-establish contact, corresponding to noisy pump operation. We show that noisy solutions can coexist with silent ones, explaining why geared systems can rattle intermittently. Finally, we consider possible design solutions, and show implications for pump design in terms of existence and stability of solutions.

0022-460X
431-440
Mason, Joanna
3717ff85-a2e2-4d89-b763-d4447784a857
Homer, Martin
753d241a-be74-4fd5-9d7e-aab4139f00ec
Wilson, R. Eddie
01d7f1f2-f8ee-4661-b713-dcefcddb89bd
Mason, Joanna
3717ff85-a2e2-4d89-b763-d4447784a857
Homer, Martin
753d241a-be74-4fd5-9d7e-aab4139f00ec
Wilson, R. Eddie
01d7f1f2-f8ee-4661-b713-dcefcddb89bd

Mason, Joanna, Homer, Martin and Wilson, R. Eddie (2007) Mathematical models of gear rattle in Roots blower vacuum pumps. Journal of Sound and Vibration, 308 (3-5), 431-440. (doi:10.1016/j.jsv.2007.03.071).

Record type: Article

Abstract

This paper is concerned with the modelling of gear rattle in Roots blower vacuum pumps. Analysis of experimental data reveals that the source of the noise and vibration problem is the backlash nonlinearity due to gear teeth losing and re-establishing contact. We derive simple non-smooth models for the lightly damped, lightly loaded dynamics of the pump. The models include a time-dependent forcing term which arises from the eccentric mounting of the gears acting at the gross rotation rate. We use a combination of explicit construction, asymptotic methods and numerical techniques to classify complicated dynamic behaviour in realistic parametric regimes. We first present a linear analysis of permanent-contact motions, and derive upper bounds on eccentricity for silent operation. We then develop a nonlinear analysis of ‘backlash oscillations’, where the gears lose and re-establish contact, corresponding to noisy pump operation. We show that noisy solutions can coexist with silent ones, explaining why geared systems can rattle intermittently. Finally, we consider possible design solutions, and show implications for pump design in terms of existence and stability of solutions.

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Published date: 4 December 2007

Identifiers

Local EPrints ID: 184249
URI: http://eprints.soton.ac.uk/id/eprint/184249
ISSN: 0022-460X
PURE UUID: e77a53f2-060f-44c3-a661-9f9aae149b09

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Date deposited: 12 May 2011 08:39
Last modified: 14 Mar 2024 03:07

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Contributors

Author: Joanna Mason
Author: Martin Homer
Author: R. Eddie Wilson

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