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Proton acceleration at tearing coronal null-point current sheets
Ross Pallister (Lead / Corresponding author)
,
David Pontin
, P. F. Wyper
Mathematics
Research output
:
Contribution to journal
›
Article
›
peer-review
4
Citations (Scopus)
188
Downloads (Pure)
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Theses
(1)
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Dive into the research topics of 'Proton acceleration at tearing coronal null-point current sheets'. Together they form a unique fingerprint.
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Keyphrases
Acceleration Mechanism
14%
Current Sheet
100%
Energy Budget
14%
Explosive Events
14%
Field Geometry
14%
Flux Rope
42%
Fully Developed
14%
High-energy Protons
28%
High-energy Tail
14%
Kinetic Energy Distribution
14%
Magnetic null Points
14%
Magnetohydrodynamic Simulation
14%
Nonlinear Phase
14%
Null Point
100%
Parallel Electric Field
14%
Particle Acceleration
14%
Predictive Algorithm
14%
Proton
57%
Proton Acceleration
100%
Quasi-turbulent
14%
Reconnecting
14%
Reconnection
28%
Ribbon
14%
Solar Corona
14%
Solar Flares
14%
Spine
14%
Static Current
14%
Static Electric Field
14%
Substantial Part
14%
Tears
100%
Thermal Acceleration
14%
Turbulent Dynamics
14%
Engineering
Corrector
50%
Electric Field
50%
Energy Distribution
50%
Linear Phase
50%
Magnetohydrodynamics
50%
Main Body
50%
Null Point
100%
Static Field
50%
Earth and Planetary Sciences
Current Sheet
100%
Electric Field
14%
Energy Budget
14%
Energy Distribution
14%
Kinetic Energy
14%
Magnetohydrodynamic Simulation
14%
Particle Acceleration
14%
Proton Energy
28%
Solar Corona
14%
Solar Flare
14%
Physics
Current Sheet
100%
Electric Field
14%
Energy Distribution
14%
Kinetic Energy
14%
Magnetohydrodynamic Simulation
14%
Particle Acceleration
14%
Proton Energy
28%
Solar Corona
14%
Solar Flare
14%
Material Science
Magnetohydrodynamics
100%
Surface (Surface Science)
100%