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Types of Damping01:20

Types of Damping

If the amount of damping in a system is gradually increased, the period and frequency start to become affected because damping opposes, and hence slows, the back and forth motion (the net force is smaller in both directions). If there is a very large amount of damping, the system does not even oscillate; instead, it slowly moves toward equilibrium. In brief, an overdamped system moves slowly towards equilibrium, whereas an underdamped system moves quickly to equilibrium but will oscillate about...
Oscillations about an Equilibrium Position01:04

Oscillations about an Equilibrium Position

Stability is an important concept in oscillation. If an equilibrium point is stable, a slight disturbance of an object that is initially at the stable equilibrium point will cause the object to oscillate around that point. For an unstable equilibrium point, if the object is disturbed slightly, it will not return to the equilibrium point. There are three conditions for equilibrium points—stable, unstable, and half-stable. A half-stable equilibrium point is also unstable, but is named so because...
Damped Oscillations01:07

Damped Oscillations

In the real world, oscillations seldom follow true simple harmonic motion. A system that continues its motion indefinitely without losing its amplitude is termed undamped. However, friction of some sort usually dampens the motion, so it fades away or needs more force to continue. For example, a guitar string stops oscillating a few seconds after being plucked. Similarly, one must continually push a swing to keep a child swinging on a playground.
Although friction and other non-conservative...
Forced Oscillations01:06

Forced Oscillations

When an oscillator is forced with a periodic driving force, the motion may seem chaotic. The motions of such oscillators are known as transients. After the transients die out, the oscillator reaches a steady state, where the motion is periodic, and the displacement is determined.
Excess Pressure Inside a Drop and a Bubble01:13

Excess Pressure Inside a Drop and a Bubble

The shape of a small drop of liquid can be considered spherical, neglecting the effect of gravity. This drop can further be considered as two equal hemispherical drops put together due to surface tension. The forces acting on the spherical drop are due to the pressure of the liquid inside the drop, the pressure due to air outside the drop, and the force due to the surface tension acting on the two hemispherical drops.
Related Rates01:18

Related Rates

When two or more physical quantities are linked by a single relationship, a change in one variable necessarily affects the others. This interdependence forms the basis of related rates analysis, which examines how different quantities change with respect to time. A classic physical example is an expanding balloon, where the size of the balloon changes continuously as air is added.For a hot air balloon, the inflated envelope is commonly idealized as a perfect sphere to simplify mathematical...

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Related Experiment Video

Updated: Jun 10, 2026

Induction of Microstreaming by Nonspherical Bubble Oscillations in an Acoustic Levitation System
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Induction of Microstreaming by Nonspherical Bubble Oscillations in an Acoustic Levitation System

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Influence of the accommodation coefficient on nonlinear bubble oscillations.

Daniel Fuster1, Guillermo Hauke, Cesar Dopazo

  • 1Division of Engineering and Applied Science, California Institute of Technology, Pasadena, California 91125, USA. fuster@caltech.edu

The Journal of the Acoustical Society of America
|July 24, 2010
PubMed
Summary

Mass transfer significantly impacts bubble dynamics at high pressures (≥1 atm). Its importance varies with frequency and bubble size, requiring careful accommodation coefficient selection for accurate modeling.

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Area of Science:

  • Fluid Dynamics
  • Acoustics
  • Thermodynamics

Background:

  • Bubble dynamics are crucial in various scientific and engineering fields.
  • Understanding interfacial mass transfer is key to accurately modeling bubble behavior under pressure waves.

Purpose of the Study:

  • To numerically investigate the influence of mass transfer on spherical single bubble dynamics.
  • To determine the conditions under which mass transfer effects become significant.

Main Methods:

  • Numerical simulation of bubble behavior.
  • Application of the Hertz-Langmuir-Knudsen approximation for interfacial mass flux.
  • Parametric study varying pressure wave amplitude, frequency, and initial bubble radius.

Main Results:

  • Mass transfer effects are negligible for pressure amplitudes below 0.9 atm.
  • At higher amplitudes (≥1 atm), mass transfer significantly alters bubble dynamics, particularly dependent on frequency.
  • For frequencies 10^3-10^5 Hz and micron-sized bubbles, significant differences in implosion are observed with and without mass transfer.

Conclusions:

  • Accurate modeling of bubble dynamics at high pressures requires considering mass transfer.
  • The accommodation coefficient is critical for precise predictions in the 10^3-10^5 Hz range.
  • Mass transfer can be approximated as negligible at frequencies above 10^5 Hz.