This thesis describes the studies on the solar interior where turbulent thermal convection plays an important role. The author solved, for the first time, one of the long-standing issues in solar physics, i.e., the maintenance mechanism of the solar differential rotation in the near-surface shear layer. The author attacked this problem with a newly developed approach, the reduced speed of sound technique, which enabled him to investigate the surface and deep solar layers in a self-consistent manner. This technique also made it possible to achieve an unprecedented performance in the solar convection simulations for the usage of the massively parallel supercomputers such as the RIKEN K system. It was found that the turbulence and the mean flows such as the differential rotation and the meridional circulation mutually interact with each other to maintain the flow structures in the Sun. Recent observations by helioseismology support the author's proposed theoretical mechanism. The book also addresses the generation of the magnetic field in such turbulent convective motions, which is an important step forward for solar cyclic dynamo research.

Read more

This thesis describes the studies on the solar interior where turbulent thermal convection plays an important role. The author solved, for the first time, one of the long-standing issues in solar physics, i.e., the maintenance mechanism of the solar differential rotation in the near-surface shear layer.

Read more
General Introduction.- Basic Equations and Development of Numerical Code.- Structure of Convection and Magnetic Field without Rotation.- Reproduction of Near Surface Shear Layer with Rotation.- Concluding Remarks.- Appendix.
Read more

This thesis describes the studies on the solar interior where turbulent thermal convection plays an important role. The author solved, for the first time, one of the long-standing issues in solar physics, i.e., the maintenance mechanism of the solar differential rotation in the near-surface shear layer. The author attacked this problem with a newly developed approach, the reduced speed of sound technique, which enabled him to investigate the surface and deep solar layers in a self-consistent manner. This technique also made it possible to achieve an unprecedented performance in the solar convection simulations for the usage of the massively parallel supercomputers such as the RIKEN K system. It was found that the turbulence and the mean flows such as the differential rotation and the meridional circulation mutually interact with each other to maintain the flow structures in the Sun. Recent observations by helioseismology support the author's proposed theoretical mechanism. The book also addresses the generation of the magnetic field in such turbulent convective motions, which is an important step forward for solar cyclic dynamo research.

Read more
This is a prize winning thesis, nominated for Springer Theses by the University of Tokyo Reveals for the first time in the research filed, the understanding of the solar mechanism near surface shear layer Provides detailed description of the development of numerical code Contains numerical calculation of solar convection zone with highest number of grid points to help readers understand Includes supplementary material: sn.pub/extras
Read more

Product details

ISBN
9784431553984
Published
2015-01-26
Publisher
Vendor
Springer Verlag, Japan
Height
235 mm
Width
155 mm
Age
Research, UP, 05
Language
Product language
Engelsk
Format
Product format
Innbundet