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Journal ArticleDOI

Analytical and Experimental Analysis of a Self-Compensating Dynamic Balancer in a Rotating Mechanism

Jongkil Lee, +1 more
- 01 Sep 1996 - 
- Vol. 118, Iss: 3, pp 468-475
TLDR
In this paper, a theoretical and experimental approach was used to investigate the motion and effectiveness of a self-compensating dynamic balancer (SCDB), which is a device intended to minimize the effects of rotor imbalance and vibratory forces on a rotating system during normal operation.
Abstract
A theoretical and experimental approach was used to investigate the motion and effectiveness of a Self-Compensating Dynamic Balancer (SCDB). This is a device intended to minimize the effects of rotor imbalance and vibratory forces on a rotating system during normal operation. The basic concept of an automatic dynamic balancer has been described in many U.S. patents. The SCDB is composed of a circular disk with a groove containing massive balls and a low viscosity damping fluid. The objective of this research is to determine the motion of the balls and how this ball motion is related to the vibration of the rotating system using both theoretical and experimental methods. The equations of motion the balls were derived by the Lagrangian method. Static and dynamic solutions were derived from the analytic model. To consider dynamic stability of the motion, perturbation equations were investigated by two different methods: Floquet theory and direct computer simulation. On the basis of the results of the stability investigation, ball positions which result in a balance system are stable above the critical speed and unstable at critical speed and below critical speed. To determine the actual critical speed of the rotating system used in the experimental work, a modal analysis was conducted. Experimental results confirm the predicted ball positions. Based on the theoretical and experimental results, when the system operates below and near the first critical speed, the balls do not balance the system. However, when the system operates above the first critical speed the balls can balance the system.

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Citations
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Journal ArticleDOI

Dynamic analysis of an automatic dynamic balancer for rotating mechanisms

TL;DR: In this paper, the authors derived the non-linear equations of motion for an autonomous system with respect to the polar co-ordinate system using Lagrange's equation, and derived the equilibrium positions and the linear variational equations by the perturbation method.
Journal ArticleDOI

Bifurcation analysis of an automatic dynamic balancing mechanism for eccentric rotors

TL;DR: In this paper, a nonlinear bifurcation analysis of the dynamics of an automatic dynamic balancing mechanism for rotating machines is presented, where the principle of operation is to deploy two or more masses that are free to travel around a race at a fixed distance from the hub and, subsequently, balance any eccentricity in the rotor.
Journal ArticleDOI

Dynamic response and stability analysis of an automatic ball balancer for a flexible rotor

TL;DR: In this paper, the Stodola-Green rotor model with a flexible shaft was used to study the dynamic stability and time responses of an automatic ball balancer of a rotor with flexible shaft.
Journal ArticleDOI

Automatic two-plane balancing for rigid rotors

TL;DR: In this article, a two-plane automatic balancing device for rigid rotors is presented, where ball bearings, which are free to travel around a race, are used to eliminate imbalance due to shaft eccentricity or misalignment.
Journal ArticleDOI

Performance of an automatic ball balancer with dry friction

TL;DR: The balancing performance of an automatic ball balancer without fluid lubrication is investigated and it can be concluded that in parts of such equilibrium sets the balancing performance deteriorates when compared to the system without automatic ballBalancing performance is endangered by the presence of dry friction.
References
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Book

Stability of Motion

Wolfgang Hahn
Patent

Apparatus for dynamical balancing of rotating objects and method for making same

TL;DR: In this paper, the authors propose an apparatus for dynamically and constantly balancing rotating objects while they are in motion, such an apparatus can be applied to balancing wheels of automobiles or trucks or to balancing the shafts of rotating machinery.
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