Graph explorer

Self-oscillation

Physicists are very familiar with forced and parametric resonance, but usually not with self-oscillation, a property of certain dynamical systems that gives rise to a great variety of vibrations, both useful and destructive. In a self-oscillator, the driving force is controlled by the oscillation itself so that it acts in phase with the velocity, causing a negative damping that feeds energy into the vibration: no external rate needs to be adjusted to the resonant frequency. The famous collapse of the Tacoma Narrows bridge in 1940, often attributed by introductory physics texts to forced resonance, was actually a self-oscillation, as was the swaying of the London Millennium Footbridge in 2000. Clocks are self-oscillators, as are bowed and wind musical instruments. The heart is a "relaxation oscillator," i.e., a non-sinusoidal self-oscillator whose period is determined by sudden, nonlinear switching at thresholds. We review the general criterion that determines whether a linear system can self-oscillate. We then describe the limiting cycles of the simplest nonlinear self-oscillators, as well as the ability of two or more coupled self-oscillators to become spontaneously synchr

6 nodes5 linksoverview mapSelf-oscillation
6 nodes5 links
Self-oscillation6 visible / 6 total nodes / 5 links
AuthorshipTopic signalTopic signalTopic signalTopic signalWSelf-oscillationpreprint / 2012AAlejandro JenkinsResearcherTphysics.class-ph1014 worksTnlin.AO838 worksTphysics.hist-ph641 worksTphysics.pop-ph277 works
PaperSignal 105 links

Self-oscillation

preprint / 2012

Open