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Turbulent Flow01:24

Turbulent Flow

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Turbulent flow is characterized by unpredictable fluctuations in velocity and pressure, which result in a chaotic fluid movement distinct from the orderly patterns of laminar flow. While laminar flow is governed by smooth, parallel layers with minimal mixing, turbulent flow exhibits highly irregular, three-dimensional patterns. This behavior arises due to instabilities in the fluid's velocity profile, and amplifies as the flow velocity increases. Minor disturbances, known as turbulent...
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Damped Oscillations01:07

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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...
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Forced Oscillations01:06

Forced Oscillations

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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.
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Standing Waves01:17

Standing Waves

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Sometimes waves do not seem to move; rather, they just vibrate in place. Unmoving waves can be seen on the surface of a glass of milk kept in a refrigerator, which is one example of standing waves. Vibrations from the refrigerator motor create waves on the milk that oscillate up and down but do not seem to move across the surface. These waves are formed or created by the superposition of two or more identical moving waves in opposite directions. The waves move through each other, with their...
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Shock Waves01:16

Shock Waves

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While deriving the Doppler formula for the observed frequency of a sound wave, it is assumed that the speed of sound in the medium is greater than the source's speed through it. When this condition is breached, a shock wave occurs.
When the source's speed approaches the speed of sound, constructive interference between successive wavefronts emitted by the source occurs immediately behind it. Initially, scientists believed that this constructive interference would result in such high...
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Oscillations about an Equilibrium Position01:04

Oscillations about an Equilibrium Position

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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...
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On Grid-Generated Quantum Turbulence.

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Modulated turbulent convection: a benchmark model for large scale natural flows driven by diurnal heating.

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Related Experiment Video

Updated: May 1, 2026

Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators
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Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators

Published on: May 30, 2014

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Quantum turbulence generated by oscillating structures.

William F Vinen1, Ladislav Skrbek

  • 1School of Physics and Astronomy, University of Birmingham, Birmingham B15 2TT, United Kingdom.

Proceedings of the National Academy of Sciences of the United States of America
|April 8, 2014
PubMed
Summary

Oscillating structures have advanced quantum turbulence research. New experiments and theories are needed to fully understand complex aspects of quantum turbulence.

Keywords:
quantized vortex linessuperfluid helium

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Area of Science:

  • Fluid dynamics
  • Quantum mechanics

Background:

  • Quantum turbulence is a complex phenomenon.
  • Oscillating structures have been instrumental in studying quantum turbulence.

Purpose of the Study:

  • To summarize successful studies of quantum turbulence using oscillating structures.
  • To identify challenges in interpreting current findings.
  • To highlight the need for novel experimental and theoretical approaches.

Main Methods:

  • Review of existing research on quantum turbulence.
  • Analysis of experimental data obtained with oscillating structures.

Main Results:

  • Successful application of oscillating structures to study certain quantum turbulence aspects.
  • Identification of specific areas in quantum turbulence that remain difficult to interpret.
  • Demonstration of limitations in current theoretical and computational models.

Conclusions:

  • Further advancements in quantum turbulence require new experimental designs.
  • Development of innovative theoretical and computational methods is crucial for progress.