A novel rotor internal bend actuator for the wireless compensation of inherent eccentricities

Gauthier Fieux, Nicola Bailey, Patrick Keogh

Research output: Contribution to journalArticlepeer-review

1 Citation (SciVal)

Abstract

A novel internal rotor bend actuator is presented that enables compensating strains to be applied about the rotor centre. Axial reaction tubes are used to maintain the structural stability of the bend actuator and to provide feedback on the level of actuation. The system is powered by an onboard battery and the actuation is derived from the operation of lead screw motors. The actuation is commanded wirelessly, thus providing the functionality for an autonomous rotor. The integrated rotor is demonstrated in isolation via laser tracker measurements and for the rotating prototype system. Actuated bending gave rise to radial displacements at the central point relative to shaft ends of approximately 50 µm peak-to-peak. These results validate a finite element deformation model. The rotor was levitated on active magnetic bearings, then rolling elements bearings, to demonstrate the synchronous vibration control achievable by static internal bending. The potential now exists for the commanded actuation to compensate for rotor eccentricities arising from manufacturing errors and dynamically induced unbalance for the cancellation of underlying synchronous vibration.
Original languageEnglish
Article number111306
Number of pages26
JournalMechanical Systems and Signal Processing
Volume213
Early online date16 Mar 2024
DOIs
Publication statusPublished - 1 May 2024

Data Availability Statement

Data will be made available on request.

Funding

This research was funded by EPSRC Future Advanced Metrology Hub, EP/P006930/1 and a University of Bath URS award for Gauthier Fieux's Ph.D. study. This research was funded by EPSRC Future Advanced Metrology Hub , EP/P006930/1 and a University of Bath URS award for Gauthier Fieux’s Ph.D. study.

FundersFunder number
University of Bath URS
Engineering and Physical Sciences Research CouncilEP/P006930/1

Keywords

  • Active control
  • Smart rotor
  • Vibration control

ASJC Scopus subject areas

  • Mechanical Engineering
  • Aerospace Engineering
  • Signal Processing
  • Control and Systems Engineering
  • Computer Science Applications
  • Civil and Structural Engineering

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