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DEVELOPMENT OF BOUNDARY/MIXED FRICTION MODELS FOR CYLINDER BLOCK/VALVE PLATE INTERFACE IN A NOVEL AEROSPACE ELECTRO-HYDROSTATIC MODULE

  • Dingchong Lyu
  • , Jian Fu
  • , Shoujun Zhao
  • , Siyuan Chen
  • Beihang University
  • Beijing Institute of Precision Mechatronics and Controls
  • Innovation Centor for Control Actuators

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

The highly compact Electro-Hydrostatic Module (EHM) is the key technology of future Electro-Hydrostatic Actuation (EHA) in the aerospace industry. Improving the frictional performance of the critical friction pairs is crucial for EHM. To address this issue, this study develops a specific friction model for the cylinder block/valve plate interface that combines rotor dynamics with boundary/mixed friction characteristics. The boundary/mixed friction properties of the interface are characterized by combining a viscous friction model based on Reynolds lubrication theory and the measurement results of a special simulated friction experiment of cylinder block/valve plate. A finite element model for the rotor dynamics is developed, and the rotor models under a wide range of rotational speeds are determined by harmonic response analysis. By merging the rotor dynamics model with the friction model through the exchange of rotor model data and bearing parameters, the coupling effects of rotor vortices and oil film hydrodynamics at the cylinder block/valve plate interface are simulated. The model's accuracy is verified through experiments to be 85%. It is found that the integrated structure has a critical speed near 20000 rpm through simulation analysis, and the interface friction characteristics near the critical speed are significantly increased. From the perspective of the two critical attributes of reliability and efficiency, this study provides theoretical reference points for the structural optimization of the novel EHM.

Original languageEnglish
Title of host publicationProceedings of BATH/ASME 2024 Symposium on Fluid Power and Motion Control, FPMC 2024
PublisherAmerican Society of Mechanical Engineers (ASME)
ISBN (Electronic)9780791888193
DOIs
StatePublished - 2024
EventBATH/ASME 2024 Symposium on Fluid Power and Motion Control, FPMC 2024 - Bath, United Kingdom
Duration: 11 Sep 202413 Sep 2024

Publication series

NameProceedings of BATH/ASME 2024 Symposium on Fluid Power and Motion Control, FPMC 2024

Conference

ConferenceBATH/ASME 2024 Symposium on Fluid Power and Motion Control, FPMC 2024
Country/TerritoryUnited Kingdom
CityBath
Period11/09/2413/09/24

Keywords

  • electric motor
  • electrohydrostatic actuator
  • hydraulic pump
  • hydrodynamics
  • rotor dynamics

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