• DocumentCode
    533
  • Title

    Design and optimization of a modal- independent linear ultrasonic motor

  • Author

    Shengli Zhou ; Zhiyuan Yao

  • Author_Institution
    Key Lab. of Mech. & Control of Mech. Struct., Nanjing Univ. of Aeronaut. & Astronaut., Nanjing, China
  • Volume
    61
  • Issue
    3
  • fYear
    2014
  • fDate
    Mar-14
  • Firstpage
    535
  • Lastpage
    546
  • Abstract
    To simplify the design of the linear ultrasonic motor (LUSM) and improve its output performance, a method of modal decoupling for LUSMs is proposed in this paper. The specific embodiment of this method is decoupling of the traditional LUSM stator´s complex vibration into two simple vibrations, with each vibration implemented by one vibrator. Because the two vibrators are designed independently, their frequencies can be tuned independently and frequency consistency is easy to achieve. Thus, the method can simplify the design of the LUSM. Based on this method, a prototype modal-independent LUSM is designed and fabricated. The motor reaches its maximum thrust force of 47 N, maximum unloaded speed of 0.43 m/s, and maximum power of 7.85 W at applied voltage of 200 Vpp. The motor´s structure is then optimized by controlling the difference between the two vibrators´ resonance frequencies to reach larger output speed, thrust, and power. The optimized results show that when the frequency difference is 73 Hz, the output force, speed, and power reach their maximum values. At the input voltage of 200 Vpp, the motor reaches its maximum thrust force of 64.2 N, maximum unloaded speed of 0.76 m/s, maximum power of 17.4 W, maximum thrust-weight ratio of 23.7, and maximum efficiency of 39.6%.
  • Keywords
    linear motors; optimisation; stators; ultrasonic motors; LUSM stator; complex vibration; efficiency 39.6 percent; modal decoupling; modal-independent LUSM; modal-independent linear ultrasonic motor; motor structure; optimization; power 7.85 W; simple vibrations; specific embodiment; thrust force; unloaded speed; vibrators resonance; voltage 17.4 V; voltage 200 V; Acoustics; Ceramics; Force; Friction; Stators; Vibrations;
  • fLanguage
    English
  • Journal_Title
    Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-3010
  • Type

    jour

  • DOI
    10.1109/TUFFC.2014.2937
  • Filename
    6746332