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The magnetosphere is the region where cosmic rays and the solar wind interact with the Earth's magnetic field, creating such phenomena as the northern lights and other aurorae. The configuration and dynamics of the magnetosphere are of interest to planetary physicists, geophysicists, plasma astrophysicists, and to scientists planning space missions. The circulation of solar wind plasma in the magnetosphere and substorms have long been used as the principle paradigms for studying this vital region. Charles F. Kennel, a leading scientist in the field, here presents a synthesis of the convection and substorm literatures, and an analysis of convection and substorm interactions; he also suggests that the currently accepted steady reconnection model may be advantageously replaced by a model of multiple tail reconnection events, in which many mutually interdependent reconnections occur. Written in an accessible, non-mathematical style, this book introduces the reader to the exciting discoveries in this fast-growing field.
This book investigates whether the established steady reconnection model of the Earth's magnetosphere should be replaced by a framework of multiple, interdependent tail reconnection events. Charles F. Kennel, a prominent researcher in plasma physics, synthesizes decades of literature regarding solar wind plasma circulation and magnetospheric substorms. By evaluating the interaction between convection and substorms, the author provides a critical analysis of current phenomenological paradigms and proposes a shift in how scientists interpret magnetospheric dynamics.
What You Will Find
Experts recognize this work as a significant synthesis of magnetospheric phenomenology that challenges traditional steady-state models. Readers frequently note that the text successfully bridges complex plasma physics concepts with a more accessible, non-mathematical narrative style suitable for researchers and students alike.
Page Count:
432
Publication Date:
1996-02-08
Publisher:
Oxford University Press
ISBN-10:
0195085299
ISBN-13:
9780195085297
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