DocumentCode :
325042
Title :
Magnetic plasma feedback stabilization design
Author :
Woolley, Robert D.
Author_Institution :
Plasma Phys. Lab., Princeton Univ., NJ, USA
Volume :
1
fYear :
1997
fDate :
6-10 Oct 1997
Firstpage :
523
Abstract :
Engineering issues relevant to the design of magnetic based systems for plasma feedback stabilization of internal tearing modes and resistive wall modes are discussed herein. Proposed design optimization methods are delineated, and are then illustrated in practice by applying them to the example design of a hypothetical experimental plasma feedback stabilization demonstration facility. In addition to the physical dynamics of the plasma itself and of the eddy current behavior of metallic structures close to the plasma, the plasma feedback system includes magnetic field sensors distributed spatially near the plasma, digital signal processing electronics to implement an optimal state-estimating “observer” and an optimal controller, and also electromagnets and their associated power circuitry. The magnetic field sensors must be sufficiently numerous and spatially well distributed so that each unstable plasma eigenmode can be resolved without spatial aliasing. Digital signal processing algorithms must be sufficiently fast to continually estimate the amplitude, phase, and rotation rate of each unstable eigenmode based on the magnetic field sensors´ signal histories. They must be sufficiently sophisticated to discriminate between field amplitude components produced directly by the plasma perturbations and the components produced in response to optimal controller commands, and they should be sufficiently robust for a range of plasma parameters. The electromagnets must be located close enough to the plasma to drive a controlled opposing field with the proper resolution of helical shapes, and their power circuitry must be capable of producing the commanded amplitude, phase, and rotation rates for the driven field
Keywords :
Tokamak devices; feedback; fusion reactor design; physical instrumentation control; plasma toroidal confinement; tearing instability; controlled opposing field; design optimization methods; digital signal processing electronics; eddy current behavior; electromagnets; field amplitude components; helical shapes; internal tearing modes; magnetic field sensors; magnetic plasma feedback stabilization design; metallic structures; optimal state-estimating observer; plasma feedback stabilization; plasma feedback stabilization demonstration facility; plasma perturbations; resistive wall modes; unstable plasma eigenmode; Design engineering; Design optimization; Digital signal processing; Eddy currents; Electromagnets; Feedback; Magnetic sensors; Optimal control; Plasma materials processing; Shape control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Fusion Engineering, 1997. 17th IEEE/NPSS Symposium
Conference_Location :
San Diego, CA
Print_ISBN :
0-7803-4226-7
Type :
conf
DOI :
10.1109/FUSION.1997.687093
Filename :
687093
Link To Document :
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