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Jong-Kyu Park

Seoul National University · Physics and Astronomy

About the Lab

Professor Jong-Kyu Park's research lab specializes in magnetic fusion energy, focusing on the theoretical and computational analysis of plasma response to nonaxisymmetric magnetic perturbations in spherical torus and tokamak devices. The lab develops advanced equilibrium models, particularly using the Ideal Perturbed Equilibrium Code (IPEC), to study how small magnetic field errors affect plasma confinement, island formation, and stability. Key research directions include understanding nonambipolar transport, neoclassical toroidal viscosity, and error field correction for next-step fusion devices like ITER. The lab bridges theory and experiment to improve performance and operational limits in fusion plasmas.

magnetic perturbationsplasma responseneoclassical toroidal viscositytokamak stabilityerror field correction

Research Overview

Papers
301
Total Citations
4,178
Papers (5y)
79
Primary Field
Physics and Astronomy

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
79total
2022
2023
2024
2025
2026
Citations per year (5y)
464total
20222023202420252026

Selected Papers

15
1
Article|216 citations·2007
Computation of three-dimensional tokamak and spherical torus equilibria
Jong-Kyu Park, Allen H. Boozer, A. H. Glasser
SJR Q2Physics of PlasmasOA

A nominally axisymmetric plasma configuration, such as a tokamak or a spherical torus, is highly sensitive to nonaxisymmetric magnetic perturbations due to currents outside of the plasma. The high sensitivity means that the primary interest is in the response of the plasma to very small perturbations, i.e., ∣b⃗∕B⃗∣≈10−2 to 10−4, which can be calculated using the theory of perturbed equilibria. The ideal perturbed equilibrium code (IPEC) is described and applied to the study of the plasma respons

Nuclear and High Energy PhysicsPhysics and Astronomy
2
Article|158 citations·2007
Control of Asymmetric Magnetic Perturbations in Tokamaks
Jong-Kyu Park, M. J. Schaffer, J. Ménard, Allen H. Boozer
SJR Q1Physical Review LettersOA

The sensitivity of tokamak plasmas to very small deviations from the axisymmetry of the magnetic field |deltaB/B| approximately 10{-4} is well known. What was not understood until very recently is the importance of the perturbation to the plasma equilibrium in assessing the effects of externally produced asymmetries in the magnetic field, even far from a stability limit. DIII-D and NSTX experiments find that when the deleterious effects of asymmetries are mitigated, the external asymmetric field

Nuclear and High Energy PhysicsPhysics and Astronomy
3
Article|133 citations·2009
Nonambipolar Transport by Trapped Particles in Tokamaks
Jong-Kyu Park, Allen H. Boozer, J. Ménard
SJR Q1Physical Review Letters

Small nonaxisymmetric perturbations of the magnetic field can greatly change the performance of tokamaks through nonambipolar transport. A number of theories have been developed, but the predictions were not consistent with experimental observations in tokamaks. This Letter provides a resolution, with a generalized analytic treatment of the nonambipolar transport. It is shown that the discrepancy between theory and experiment can be greatly reduced by two effects: (1) the small fraction of trapp

Nuclear and High Energy PhysicsPhysics and Astronomy
4
Article|120 citations·2018
3D field phase-space control in tokamak plasmas
Jong-Kyu Park, Y.M. Jeon, Y. In, Joon-Wook Ahn, R. Nazikian, Gunyoung Park, Jaehyun Kim, Hyungho Lee, W.H. Ko, Hyun-Seok Kim, N.C. Logan, Zhirui Wang
SJR Q1Nature PhysicsOA
Nuclear and High Energy PhysicsPhysics and Astronomy
5
Article|93 citations·2009
Importance of plasma response to nonaxisymmetric perturbations in tokamaks
Jong-Kyu Park, Allen H. Boozer, J. Ménard, A. M. Garofalo, M. J. Schaffer, R.J. Hawryluk, S. Kaye, S. P. Gerhardt, S.A. Sabbagh, NSTX Team
SJR Q2Physics of PlasmasOA

Tokamaks are sensitive to deviations from axisymmetry as small as δB/B0∼10−4. These nonaxisymmetric perturbations greatly modify plasma confinement and performance by either destroying magnetic surfaces with subsequent locking or deforming magnetic surfaces with associated nonambipolar transport. The Ideal Perturbed Equilibrium Code (IPEC) calculates ideal perturbed equilibria and provides important basis for understanding the sensitivity of tokamak plasmas to perturbations. IPEC calculations in

Nuclear and High Energy PhysicsPhysics and Astronomy
6
Article|90 citations·2008
Error field correction in ITER
Jong-Kyu Park, Allen H. Boozer, J. Ménard, M. J. Schaffer
SJR Q1Nuclear FusionOA

A new method for correcting magnetic field errors in the ITER tokamak is developed using the Ideal Perturbed Equilibrium Code. The dominant external magnetic field for driving islands is shown to be localized to the outboard midplane for three ITER equilibria that represent the projected range of operational scenarios. The coupling matrices between the poloidal harmonics of the external magnetic perturbations and the resonant fields on the rational surfaces that drive islands are combined for di

Nuclear and High Energy PhysicsPhysics and Astronomy
7
Article|76 citations·2017
Self-consistent perturbed equilibrium with neoclassical toroidal torque in tokamaks
Jong-Kyu Park, N.C. Logan
SJR Q2Physics of PlasmasOA

Toroidal torque is one of the most important consequences of non-axisymmetric fields in tokamaks. The well-known neoclassical toroidal viscosity (NTV) is due to the second-order toroidal force from anisotropic pressure tensor in the presence of these asymmetries. This work shows that the first-order toroidal force originating from the same anisotropic pressure tensor, despite having no flux surface average, can significantly modify the local perturbed force balance and thus must be included in p

Nuclear and High Energy PhysicsPhysics and Astronomy
8
Article|59 citations·2011
Error field correction in DIII-D Ohmic plasmas with either handedness
Jong-Kyu Park, M. J. Schaffer, R.J. La Haye, T. Scoville, J. Ménard
SJR Q1Nuclear FusionOA

Error field correction results in DIII-D plasmas are presented in various configurations. In both left-handed and right-handed plasma configurations, where the intrinsic error fields become different due to the opposite helical twist (handedness) of the magnetic field, the optimal error correction currents and the toroidal phases of internal(I)-coils are empirically established. Applications of the Ideal Perturbed Equilibrium Code to these results demonstrate that the field component to be minim

Nuclear and High Energy PhysicsPhysics and Astronomy
9
Article|45 citations·2013
Rotational Resonance of Nonaxisymmetric Magnetic Braking in the KSTAR Tokamak
Jong-Kyu Park, Y.M. Jeon, J. Ménard, W.H. Ko, S. G. Lee, Y.S. Bae, M. Joung, K.-I. You, K.-D. Lee, N.C. Logan, K. Kim, J. Ko
SJR Q1Physical Review Letters

One of the important rotational resonances in nonaxisymmetric neoclassical transport has been experimentally validated in the KSTAR tokamak by applying highly nonresonant n=1 magnetic perturbations to rapidly rotating plasmas. These so-called bounce-harmonic resonances are expected to occur in the presence of magnetic braking perturbations when the toroidal rotation is fast enough to resonate with periodic parallel motions of trapped particles. The predicted and observed resonant peak along with

Nuclear and High Energy PhysicsPhysics and Astronomy
10
Article|38 citations·2009
Shielding of external magnetic perturbations by torque in rotating tokamak plasmas
Jong-Kyu Park, Allen H. Boozer, J. Ménard, S. P. Gerhardt, S.A. Sabbagh
SJR Q2Physics of Plasmas

The imposition of a nonaxisymmetric magnetic perturbation on a rotating tokamak plasma requires energy and toroidal torque. Fundamental electrodynamics implies that the torque is essentially limited and must be consistent with the external response of a plasma equilibrium f⃗=j⃗×B⃗. Here magnetic measurements on National Spherical Torus Experiment device are used to derive the energy and the torque, and these empirical evaluations are compared with theoretical calculations based on perturbed scal

Nuclear and High Energy PhysicsPhysics and Astronomy
11
Article|32 citations·2011
Kinetic energy principle and neoclassical toroidal torque in tokamaks
Jong-Kyu Park
SJR Q2Physics of Plasmas

It is shown that when tokamaks are perturbed, the kinetic energy principle is closely related to the neoclassical toroidal torque by the action invariance of particles. Especially when tokamaks are perturbed from scalar pressure equilibria, the imaginary part of the potential energy in the kinetic energy principle is equivalent to the toroidal torque by the neoclassical toroidal viscosity. A unified description therefore should be made for both physics. It is also shown in this case that the pot

Nuclear and High Energy PhysicsPhysics and Astronomy
12
Article|30 citations·2004
Constitutive relations for piezoelectric benders under various boundary conditions
Jong-Kyu Park, Wonkyu Moon
SJR Q1Sensors and Actuators A Physical
Mechanics of MaterialsEngineering
13
Article|28 citations·2018
A study on piezoelectric energy harvester using kinetic energy of ocean
Yeong-min Na, Hyun‐Seok Lee, Jong-Kyu Park
SJR Q2Journal of Mechanical Science and Technology
Mechanical EngineeringEngineering
14
Article|27 citations·2012
Sensitivity to error fields in NSTX high β plasmas
Jong-Kyu Park, J. Ménard, S. P. Gerhardt, R. J. Buttery, S.A. Sabbagh, R. E. Bell, B.P. LeBlanc
SJR Q1Nuclear Fusion

It was found that error field threshold decreases for high β in NSTX, although the density correlation in conventional threshold scaling implies the threshold would increase since higher β plasmas in our study have higher plasma density. This greater sensitivity to error field in higher β plasmas is due to error field amplification by plasmas. When the effect of amplification is included with ideal plasma response calculations, the conventional density correlation can be restored and threshold s

Nuclear and High Energy PhysicsPhysics and Astronomy
15
Article|26 citations·2008
Spectral asymmetry due to magnetic coordinates
Jong-Kyu Park, Allen H. Boozer, J. Ménard
SJR Q2Physics of PlasmasOA

The use of magnetic coordinates is ubiquitous in toroidal plasma physics but the distortion in Fourier spectra produced by these coordinates is not well known. A spatial symmetry of the field is not always represented by a symmetry in the Fourier spectrum when magnetic coordinates are used because of the distortion of the toroidal angle. The practical importance of spectral distortion is illustrated with a tokamak example.

Nuclear and High Energy PhysicsPhysics and Astronomy

Research Areas

Nuclear and High Energy PhysicsElectrical and Electronic EngineeringMechanical EngineeringControl and Systems EngineeringAerospace EngineeringComputer Networks and Communications

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