Recent experiments in RFX-mod have demonstrated that m=1,n=7 helical equilibria can be sustained by imposing helical boundary conditions by means of magnetic feedback [1]. The optimization of these equilibria consists on the one hand in the identification of the optimal feedback parameters in the mode controller and the amplitude and phase of applied helical magnetic fields; on the other hand in the characterization of the wall dynamic response to external magnetic fields, produced by active coils. The 1,7 mode dynamics has been initially investigated with the RFXlocking code, adopting an optimization approach similar to the one described in [2]. Moreover, dry shots have revealed that, when doing magnetic feedback, magnetic field errors are produced by 3D wall structures. A dynamic decoupler algorithm, which accounts for the mutual couplings between active coils and magnetic sensors, has been implemented and tested in real time. Experimental results show that error fields can be strongly suppressed thanks to this tool. \\[4pt] [1] P. Piovesan \textit{et al}, 2011 Plasma Phys. Control. Fusion \textbf{53} 084005 \\[0pt] [2] L. Piron \textit{et al}, 2010 Nucl. Fusion \textbf{50} 115011

Optimization of helical equilibria control in RFX-mod

L Marrelli;P Piovesan;A Soppelsa;
2011

Abstract

Recent experiments in RFX-mod have demonstrated that m=1,n=7 helical equilibria can be sustained by imposing helical boundary conditions by means of magnetic feedback [1]. The optimization of these equilibria consists on the one hand in the identification of the optimal feedback parameters in the mode controller and the amplitude and phase of applied helical magnetic fields; on the other hand in the characterization of the wall dynamic response to external magnetic fields, produced by active coils. The 1,7 mode dynamics has been initially investigated with the RFXlocking code, adopting an optimization approach similar to the one described in [2]. Moreover, dry shots have revealed that, when doing magnetic feedback, magnetic field errors are produced by 3D wall structures. A dynamic decoupler algorithm, which accounts for the mutual couplings between active coils and magnetic sensors, has been implemented and tested in real time. Experimental results show that error fields can be strongly suppressed thanks to this tool. \\[4pt] [1] P. Piovesan \textit{et al}, 2011 Plasma Phys. Control. Fusion \textbf{53} 084005 \\[0pt] [2] L. Piron \textit{et al}, 2010 Nucl. Fusion \textbf{50} 115011
2011
Istituto gas ionizzati - IGI - Sede Padova
Inglese
Bulletin of the American Physical Society - 53rd Annual Meeting of the APS Division of Plasma Physics
53rd Annual Meeting of the APS Division of Plasma Physics (APS 2011)
http://meetings.aps.org/Meeting/DPP11/Event/152776
November 14-18, 2011
Salt Lake City, Utah, USA
Abstract ID: BAPS.2011.DPP.PO4.6; ISSN Rivista 0003-0503 (print and linking); To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2011.DPP.PO4.6
3
info:eu-repo/semantics/conferenceObject
none
274
04 Contributo in convegno::04.02 Abstract in Atti di convegno
Piron L.; D. Fabris; L. Marrelli; P. Piovesan; A. Soppelsa; P. Zanca
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/221361
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