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seminar Date  
Date & Time May 31 (Tue.) 4 PM 
Venue #1323(E6-2, 1st fl.) 
Speaker Dr. Kimin Kim, KAIST 

Understanding 3D tokamak physics towards advanced control of toroidal plasma

 

Dr. Kimin Kim, KAIST
May 31 (Tue.) 4 PM, #1323(E6-2, 1st fl.)

 

Tokamaks that magnetically confine high-temperature toroidal plasmas are the most successful and promising fusion device. Tokamaks have been considered as 2D system due to toroidal symmetry along the magnetic axis, called axisymmetry. The axisymmetry, however, can never be perfect due to imperfections in the surrounding magnets and conductors, which produce toroidal non-axisymmetry.  Physics of the non-axisymmetric (3D) tokamaks has been of great importance in the recent fusion plasma research, as tokamaks are very sensitive to a small 3D magnetic field that can significantly degrade or improve the machine performance. This talk will introduce the research issues associated with the non-axisymmetry in tokamaks and describe the progress on the understanding of 3D tokamak physics. Plasma transport physics in the 3D tokamak will be presented along with numerical verifications using guiding-center particle simulation and experimental validations in the various devices. Control of plasma confinement and stability using externally applied 3D magnetic fields will be discussed.

번호 seminar Date Venue 제목
공지     Spring 2019: Physics Seminar Serises
공지     Spring 2019: Physics Colloquium
공지   Seminar Room #1323  Fall 2017: Physics Seminar Serises
공지   Seminar Room 1501  Fall 2017: Physics Colloquium
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124   #1323(E6-2. 1st fl.)  Harmonic oscillator physics with single atoms in a state-selective optical potential
123   #1323(E6-2. 1st fl.)  Symmetry Protected Kondo Metals and Their Phase Transitions
122   #1323(E6-2. 1st fl.)  Dynamical Resonance between Two Optical Cavities via Optomechanical Oscillator
121   #1323(E6-2. 1st fl.)  Entanglement area law in strongly-correlated systems
120   #1323(E6-2. 1st fl.)  Quantum electron optics using flying electrons
119   #1323(E6-2. 1st fl.)  “Progress in the comparison of ARPES to DMFT for d and f strongly correlated electron systems”
118   #1323(E6-2. 1st fl.)  Isostatic magnetism
117   #1323(E6-2. 1st fl.)  Bandgap Engineering of Black Phosphorus
116   #1323(E6-2. 1st fl.)  Dirac fermions in condensed matters
115   #1323(E6-2. 1st fl.)  Realizing Haldane Model in Fe-based Honeycomb Ferromagnetic Insulators
114   #1323(E6-2. 1st fl.)  Harmonic oscillator physics with single atoms in a state-selective optical potential
113   #1323(E6-2. 1st fl.)  Symmetry Protected Kondo Metals and Their Phase Transitions
112   #1323(E6-2. 1st fl.)  Dynamical Resonance between Two Optical Cavities via Optomechanical Oscillator
111   #1323(E6-2. 1st fl.)  Entanglement area law in strongly-correlated systems
110   #1323(E6-2. 1st fl.)  Quantum electron optics using flying electrons
109   #1323(E6-2. 1st fl.)  “Progress in the comparison of ARPES to DMFT for d and f strongly correlated electron systems”
108   #1323(E6-2. 1st fl.)  Bandgap Engineering of Black Phosphorus
107   #1323(E6-2. 1st fl.)  Dirac fermions in condensed matters
106   #1323(E6-2. 1st fl.)  Realizing Haldane Model in Fe-based Honeycomb Ferromagnetic Insulators