The traditional ball-type automatic balancer consisting of several balls moving on a circular orbit is widely used in the optical disk drive industry for vibration reduction. Under proper working conditions, the balls can counterbalance the imbalance of a disk by positioning to appropriate angles relative to the mass center of the disk. This particular equilibrium position is referred to as the perfect balancing position. The proper working conditions are closely related to the stability of the perfect balancing position, which, in turn, depends on the parameters of the system, such as rotational speed, imbalance ratio, and damping ratios. To achieve perfect balancing, the system parameters must lie in the stable region of the perfect balancing position in the parameter space. An automatic balancer with a wider stable region can tolerate a larger amount of variations in the system parameters and hence is more robust. In this study, we propose a modified ball-type balancer composed of several ball-rod-spring units. In each unit, the ball can slide along the rod while the rod rotates freely about the spindle. The ball’s displacement along the rod is restrained by a radial spring. The additional degree of freedom in the radial direction could broaden the stable region of the perfect balancing position. To understand the fundamental properties of the modified balancer, we studied the dynamic characteristics of a modified balancer with one ball-rod-spring unit. Specifically, we built a theoretical model for an optical disk drive packed with the modified balancer, and investigated how equilibrium positions and the associated stability are related to primary system parameters and the effects of the stiffness of the radial spring on the stable region of the perfect balancing position. Numerical results indicate that the ball-rod-spring balancer may possess a larger stable region of the perfect balancing position compared to the traditional fixed-orbit balancer.
Skip Nav Destination
e-mail: cjlu@ntu.edu.tw
Article navigation
August 2007
Technical Briefs
Dynamic Characteristics of a One-Unit Ball-Rod-Spring Balancer
Ming-Cheng Wang,
Ming-Cheng Wang
Graduate Student
Department of Mechanical Engineering,
National Taiwan University
, No. 1 Roosevelt Rd. Sec. 4, Taipei 10617, Taiwan, Republic of China
Search for other works by this author on:
Chung-Jen Lu
Chung-Jen Lu
Associate Professor
Department of Mechanical Engineering,
e-mail: cjlu@ntu.edu.tw
National Taiwan University
, No. 1 Roosevelt Rd. Sec. 4, Taipei 10617, Taiwan, Republic of China
Search for other works by this author on:
Ming-Cheng Wang
Graduate Student
Department of Mechanical Engineering,
National Taiwan University
, No. 1 Roosevelt Rd. Sec. 4, Taipei 10617, Taiwan, Republic of China
Chung-Jen Lu
Associate Professor
Department of Mechanical Engineering,
National Taiwan University
, No. 1 Roosevelt Rd. Sec. 4, Taipei 10617, Taiwan, Republic of Chinae-mail: cjlu@ntu.edu.tw
J. Vib. Acoust. Aug 2007, 129(4): 520-524 (5 pages)
Published Online: April 16, 2007
Article history
Received:
November 14, 2005
Revised:
April 16, 2007
Citation
Wang, M., and Lu, C. (April 16, 2007). "Dynamic Characteristics of a One-Unit Ball-Rod-Spring Balancer." ASME. J. Vib. Acoust. August 2007; 129(4): 520–524. https://doi.org/10.1115/1.2748462
Download citation file:
Get Email Alerts
Cited By
Related Articles
Stability Analysis of a Three-Ball Automatic Balancer
J. Vib. Acoust (October,2008)
Nonlinear Vibration Signature Analysis of a High Speed Rotor Bearing System Due to Race Imperfection
J. Comput. Nonlinear Dynam (January,2012)
Stability Analysis of a Single-Ball Automatic Balancer
J. Vib. Acoust (February,2006)
Related Proceedings Papers
Related Chapters
Experimental and Statistical Study on the Noise Generated by Surface Defects of Bearing Rolling Bodies
Bearing and Transmission Steels Technology
Fundamentals of Structural Dynamics
Flow Induced Vibration of Power and Process Plant Components: A Practical Workbook
Research on Autobody Panels Developmental Technology Based on Reverse Engineering
Proceedings of the 2010 International Conference on Mechanical, Industrial, and Manufacturing Technologies (MIMT 2010)