Study and design of the ion cyclotron resonance heating system for the stellarator Wendelstein 7-X
Journal article, 2014

The current status of the mechanical and electromagnetic design for the ICRF antenna system for W7-X is presented. Two antenna plugins are discussed: one consisting of a pair of straps with pre-matching to cover the first frequency band, 25–38 MHz, and a second one consisting of two short strap triplets to cover a frequency band around 76 MHz. This paper focusses on the two strap antenna for the lower frequency band. Power coupling of the antenna to a reference plasma profile is studied with the help of the codes TOPICA and Microwave Studio that deliver the scattering matrix needed for the optimization of the geometric parameters of the straps and antenna box. Radiation power spectra for different phasings of the two straps are obtained using the code ANTITER II and different heating scenario are discussed. The potential for heating, fast particle generation, and current drive is discussed. The problem of RF coupling through the plasma edge and of edge power deposition is summarized. Important elements of the complete ion cyclotron resonance heating system are discussed: a resonator circuit with tap feed to limit the maximum voltage in the system, and a decoupler to counterbalance the large mutual coupling between the 2 straps. The mechanical design highlights the challenges encountered with this antenna: adaptation to a large variety of plasma configurations, the limited space within the port to accommodate the necessary matching components and the watercooling needed for long pulse operation.

Author

J Ongena

Royal Military Academy

A Messiaen

Royal Military Academy

D Van Eester

Royal Military Academy

B Schweer

Royal Military Academy

P Dumortier

Royal Military Academy

F Durodie

Royal Military Academy

Yevgen Kazakov

Royal Military Academy

F Louche

Royal Military Academy

M Vervier

Royal Military Academy

R Koch

Royal Military Academy

A Krivska

Royal Military Academy

A Lyssoivan

Royal Military Academy

M Van Schoor

Royal Military Academy

T Wauters

Royal Military Academy

V Borsuk

Forschungszentrum Jülich

O Neubauer

Forschungszentrum Jülich

O Schmitz

Forschungszentrum Jülich

G Offermans

Forschungszentrum Jülich

Y Altenburg

Max Planck Society

C Baylard

Max Planck Society

D Birus

Max Planck Society

S Bozhenkov

Max Planck Society

D A Hartmann

Max Planck Society

J P Kallmeyer

Max Planck Society

S Renard

Max Planck Society

R C Wolf

Max Planck Society

Tünde Fülöp

Chalmers, Applied Physics, Nuclear Engineering

Physics of Plasmas

1070-664X (ISSN) 1089-7674 (eISSN)

Vol. 21 6 061514- 061514

Driving Forces

Sustainable development

Areas of Advance

Energy

Roots

Basic sciences

Subject Categories

Fusion, Plasma and Space Physics

DOI

10.1063/1.4884377

More information

Latest update

4/30/2018