Jove
Visualize
Contact Us

Related Concept Videos

Turbulent Flow01:24

Turbulent Flow

921
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...
921
Laminar and Turbulent Flow01:07

Laminar and Turbulent Flow

9.7K
Fluid dynamics is the study of fluids in motion. Velocity vectors are often used to illustrate fluid motion in applications like meteorology. For example, wind—the fluid motion of air in the atmosphere—can be represented by vectors indicating the speed and direction of the wind at any given point on a map. Another method for representing fluid motion is a streamline. A streamline represents the path of a small volume of fluid as it flows. When the flow pattern changes with time, the...
9.7K
Introduction to Types of Flows01:23

Introduction to Types of Flows

1.9K
Fluid flows are categorized by dimensionality and behavior, with one-dimensional flow being the simplest form, where properties like velocity and pressure change only along a single axis. Water moving through straight pipes exemplifies this flow type, as variations in other directions are minimal. One-dimensional analysis helps simplify understanding such flows, focusing solely on changes along the pipe's length.
Two-dimensional flow involves changes in both length and height, as seen in...
1.9K
Irrotational Flow01:28

Irrotational Flow

1.3K
Irrotational flow is characterized by fluid motion where particles do not rotate around their axes, resulting in zero vorticity. For a flow to be irrotational, the curl of the velocity field must be zero. This imposes specific conditions on velocity gradients. For instance, to maintain zero rotation about the z-axis, the gradient condition:
1.3K
Boundary Layer Characteristics01:18

Boundary Layer Characteristics

945
When a fluid encounters a solid surface, a boundary layer forms due to the interaction between the fluid's motion and the stationary surface. This phenomenon is characterized by a thin region adjacent to the surface where viscous forces dominate, influencing the fluid's velocity profile. The development of the boundary layer begins at the leading edge of the surface and evolves as the fluid moves downstream.As the fluid flows over the surface, friction between the fluid and the wall slows down...
945
Plane Potential Flows01:23

Plane Potential Flows

1.2K
Plane potential flows simplify fluid motion by assuming the fluid to be irrotational and incompressible. These characteristics allow these flows to be described by a velocity potential function, ϕ, representing the flow speed in a given direction, and a stream function, ψ, that visualizes the flow path, both governed by Laplace's equation. These parameters help in estimating flow patterns, velocity distributions, and pressure fields around various hydraulic structures.
Uniform...
1.2K

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Turbulent Multiscale Interactions between Tearing Modes, Trapped-Electron Modes, and Zonal Flows.

Physical review letters·2026
Same author

Large-scale dynamos driven by shear-flow-induced jets.

Nature·2026
Same author

Enhanced Transport at High Plasma Pressure and Subthreshold Kinetic Ballooning Modes in Wendelstein 7-X.

Physical review letters·2023
Same author

Comparing pedestal structure in JET-ILW H-mode plasmas with a model for stiff ETG turbulent heat transport.

Philosophical transactions. Series A, Mathematical, physical, and engineering sciences·2023
Same author

Regimes of cosmic-ray diffusion in Galactic turbulence.

SN applied sciences·2021
Same author

Uncovering turbulent plasma dynamics via deep learning from partial observations.

Physical review. E·2021
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Experiment Video

Updated: May 1, 2026

Induction of Microstreaming by Nonspherical Bubble Oscillations in an Acoustic Levitation System
08:19

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

Published on: May 9, 2021

2.5K

Subdominant modes in zonal-flow-regulated turbulence.

K D Makwana1, P W Terry1, M J Pueschel1

  • 1Department of Physics, University of Wisconsin-Madison, Madison, Wisconsin 53706, USA.

Physical Review Letters
|March 25, 2014
PubMed
Summary

Zonal flows regulate ion temperature gradient turbulence by facilitating energy transfer to damped modes via three-wave interactions. This process, involving spectral components of zonal flow and subdominant modes, is a novel mechanism for turbulence control.

More Related Videos

Experimental Investigation of Secondary Flow Structures Downstream of a Model Type IV Stent Failure in a 180° Curved Artery Test Section
11:00

Experimental Investigation of Secondary Flow Structures Downstream of a Model Type IV Stent Failure in a 180° Curved Artery Test Section

Published on: July 19, 2016

10.3K
Investigating the Three-dimensional Flow Separation Induced by a Model Vocal Fold Polyp
09:58

Investigating the Three-dimensional Flow Separation Induced by a Model Vocal Fold Polyp

Published on: February 3, 2014

7.8K

Related Experiment Videos

Last Updated: May 1, 2026

Induction of Microstreaming by Nonspherical Bubble Oscillations in an Acoustic Levitation System
08:19

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

Published on: May 9, 2021

2.5K
Experimental Investigation of Secondary Flow Structures Downstream of a Model Type IV Stent Failure in a 180° Curved Artery Test Section
11:00

Experimental Investigation of Secondary Flow Structures Downstream of a Model Type IV Stent Failure in a 180° Curved Artery Test Section

Published on: July 19, 2016

10.3K
Investigating the Three-dimensional Flow Separation Induced by a Model Vocal Fold Polyp
09:58

Investigating the Three-dimensional Flow Separation Induced by a Model Vocal Fold Polyp

Published on: February 3, 2014

7.8K

Area of Science:

  • Plasma physics
  • Fusion energy research
  • Computational physics

Background:

  • Ion temperature gradient (ITG) turbulence is a key driver of energy transport in fusion plasmas.
  • Understanding the nonlinear dynamics of ITG turbulence is crucial for predicting and controlling plasma confinement.
  • Zonal flows are coherent structures that can influence turbulent transport, but their precise role in nonlinear saturation is still debated.

Purpose of the Study:

  • To investigate the dominant nonlinear coupling mechanisms in ITG turbulence.
  • To elucidate the role of zonal flows in the energy transfer pathways of ITG turbulence.
  • To identify new aspects of turbulence regulation by zonal flows.

Main Methods:

  • Numerical solutions of a gyrokinetic model for ITG turbulence.
  • Analysis of three-wave interaction dynamics.
  • Spectral component analysis including zonal flow and damped subdominant modes.

Main Results:

  • Nonlinear coupling is dominated by three-wave interactions involving zonal flow and damped subdominant modes.
  • Zonal flows minimally dissipate instability energy but facilitate its transfer to dissipative subdominant modes.
  • Energy is transferred to higher wavenumbers and a significant fraction goes to damped subdominant modes within the instability range.

Conclusions:

  • Three-wave interactions, including zonal flows and damped modes, are central to ITG turbulence saturation.
  • Zonal flows play a significant role in regulating turbulence by channeling energy to dissipative pathways.
  • This study reveals a new mechanism for zonal flow-induced turbulence regulation through energy transfer to damped subdominant modes.