Journal of Northeastern University(Natural Science) ›› 2025, Vol. 46 ›› Issue (5): 46-53.DOI: 10.12068/j.issn.1005-3026.2025.20230251

• Mechanical Engineering • Previous Articles     Next Articles

Dynamic Self-balancing Mechanism of Double Balls Solved by Variation Amplitude Method

Xiao-zhe CHEN(), Shan ZHONG, Bai-tong ZHOU, Wei-ye SHI   

  1. School of Control Engineering,Northeastern University at Qinhuangdao,Qinhuangdao 066004,China.
  • Received:2023-08-29 Online:2025-05-15 Published:2025-08-07
  • Contact: Xiao-zhe CHEN

Abstract:

The dynamic self-balancing mechanism of a dual-ball automatic balancing device based on a single-disc rotor model is investigated using the variation amplitude method. The system control equations are established through Lagrange equations, and the amplitude-frequency characteristic equations under four working conditions are derived. The Jacobian matrix is directly constructed based on the solution form of the variable amplitude method, avoiding the case-by-case discussion of steady-state equations in the traditional methods, and the system stability conditions are obtained using the Routh-Hurwitz criterion. Numerical analysis reveals that: system vibration intensifies in the lower resonance region; in the upper resonance region, zero-amplitude motion occurs only when parameters satisfy the complete balancing condition, at which point the balls jump to the opposite side of the mass center, achieving complete or partial balance. The research results are validated through time-domain simulations, providing a theoretical basis for the design and optimization of ball-type automatic balancing devices.

Key words: variation amplitude method, rotor, ball, stability, resonance

CLC Number: