• DocumentCode
    1433724
  • Title

    Analyses of the temperature field of traveling-wave rotary ultrasonic motors

  • Author

    Xiaolong Lu ; Junhui Hu ; Chunsheng Zhao

  • Author_Institution
    State Key Lab. of Mech. & Control of Mech. Struct., Nanjing Univ. of Aeronaut. & Astronaut., Nanjing, China
  • Volume
    58
  • Issue
    12
  • fYear
    2011
  • fDate
    12/1/2011 12:00:00 AM
  • Firstpage
    2708
  • Lastpage
    2719
  • Abstract
    In this paper, the transient and steady-state temperature field of a traveling-wave rotary ultrasonic motor is analyzed by the finite element method, based on a theoretical model of power loss of this motor in rated operation. Using this model, the temperature field of this motor is calculated and the effects of the heat conductivity of friction material, motor size, ambient temperature, and pressure on the temperature field are estimated. The calculated temperature distribution and transient temperature change agree with the experimental results. The variation of heat conductivity of the friction material has little effect on the minimum temperature in the motor but this variation seriously affects the maximum temperature in the motor when the heat conductivity of the friction material is lower than 0.5 W/(m°C). Two indices are defined to express the non-uniformity of temperature field and how quickly the temperature field reaches its steady state for traveling-wave ultrasonic motors of different sizes. It is found that traveling-wave ultrasonic motors with different sizes have different nonuniformity of temperature field and take different amounts of time to reach thermal steady state. The maximum temperature rise is lower when the ambient temperature is higher; the maximum temperature increases as the vacuum degree increases and it is not affected by the vacuum degree when the vacuum degree is too high (<;10-3 Pa).
  • Keywords
    finite element analysis; friction; rotary convertors; temperature distribution; thermal conductivity; ultrasonic motors; ambient temperature distribution; finite element method; friction material; heat conductivity; power loss; thermal steady state temperature field nonuniformity; transient temperature change; traveling wave rotary ultrasonic motor size; Acoustics; Damping; Friction; Heating; Rotors; Stators; Temperature; Computer Simulation; Energy Transfer; Equipment Design; Equipment Failure Analysis; High-Energy Shock Waves; Models, Theoretical; Rotation; Temperature; Transducers;
  • fLanguage
    English
  • Journal_Title
    Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-3010
  • Type

    jour

  • DOI
    10.1109/TUFFC.2011.2133
  • Filename
    6141161