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Updated: May 5, 2026

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Thermocapillary Convection Space Experiment on the SJ-10 Recoverable Satellite
Published on: March 11, 2020
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Giant convection cells found on the Sun
David H Hathaway1, Lisa Upton, Owen Colegrove
1NASA Marshall Space Flight Center, Huntsville, AL 35812, USA.
Summary
Giant cellular flows in the Sun
Area of Science:
- Solar physics
- Helioseismology
- Plasma physics
Background:
- Convective motions transport heat in the Sun's outer layers.
- Granules and supergranules are surface manifestations of solar convection.
- Evidence for larger convective cells has been sought for decades.
Purpose of the Study:
- To investigate the existence and characteristics of giant cellular flows in the Sun.
- To understand the role of these flows in solar dynamics and angular momentum transport.
Main Methods:
- Tracking the motion of solar supergranules over extended periods.
- Analyzing observational data to identify persistent flow patterns.
Main Results:
- Evidence found for giant cellular flows persisting for months.
- Observed flows exhibit rotation-induced directionality (clockwise in the north, counterclockwise in the south).
- These flows transport angular momentum towards the solar equator.
Conclusions:
- Giant cellular flows are a significant feature of solar convection.
- These flows play a crucial role in maintaining the Sun's rapid equatorial rotation.
- The findings reconcile theoretical predictions with observational evidence of large-scale solar dynamics.
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