Nonlinear MHD and 3D Magnetic Field Effects in Tokamaks

项目来源

美国国家能源科学基金(DOE)

项目主持人

Hegna, Chris

项目受资助机构

Board of Regents of the University of Wisconsin System, operating as University of Wisconsin-Madison

财政年度

2024,2022

立项时间

未公开

项目编号

DE-FG02-86ER53218

项目级别

国家级

研究期限

未知 / 未知

受资助金额

11090640.00美元

学科

Burning Plasma Science: Foundations: Theory & Simulation

学科代码

未公开

基金类别

Grant

关键词

未公开

参与者

Halfmoon, Michael

参与机构AI

中国科学技术大学

项目标书摘要:Nonlinear MHD and 3D Magnetic Field Effects in Tokamaks
        Principal Investigator-C.C.Hegna
        Department of Engineering Physics
        University of Wisconsin-Madison
        The proposed research in plasma theory addresses key issues in the areas of nonlinear extended MHD and 3D tokamak physics.The emphasis is on:the introduction of collisional kinetic effects in extended MHD codes,developing analytic descriptions of how disruptive neoclassical tearing modes(NTMs)are seeded in DIII-D,and understanding the properties of the pedestal region in the presence of externally applied 3D magnetic fields.The specific areas of proposed research include:
        1))ion kinetic closure calculations in extended MHD simulation,
        2)MHD-transient-induced seeding of disruptive NTMs in tokamak plasmas,
        3)local stability and gyrokinetic modeling of 3D edge pedestals.
        In the area of ion kinetic closure physics,we propose to compute neoclassical viscosity for tokamak applications using five-dimensional drift kinetic solutions that are directly coupled to NIMROD’s fluid evolution.This work is to be applied to field error penetration problems incorporating the effects of neoclassical flowing damping in tokamaks.In the area of NTM modeling,we propose to continue the development of analytic model descriptions for MHD-transient-induced seeding of robust NTM growth in tokamak plasmas in collaboration with experimentalists on DIII-D.The goal is develop reduced models for sensing the seeding and initial growth of m/n=2/1 NTMs in ITER baseline scenarios.The 3D pedestal work is focusing on the impact of applied 3D fields on the micro-instability and turbulent transport properties of tokamak pedestals in the presence of applied 3D magnetic perturbation.This work is to be carried out as a combination of analytic theory and gyrokinetic simulation.

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