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Featured researches published by S. Illy.


international conference on plasma science | 2003

A 2 MW, 170 GHz coaxial cavity gyrotron

Bernhard Piosczyk; H. Budig; G. Dammertz; O. Dumbrajs; O. Drumm; S. Illy; W. Leonhardt; M. Schmid; M. Thumm

The feasibility of manufacturing a 2-MW CW coaxial cavity gyrotron at 170 GHz has been demonstrated and data required for fabrication of an industrial tube have been obtained. An engineering design of a prototype started recently with the goal to provide gyrotrons with 2-MW microwave output power for International Thermonuclear Experimental Reactor (ITER). The design of critical components of the prototype tube as electron gun, cavity and RF output system will be verified under realistic conditions at short pulses using the experimental coaxial gyrotron at Forschungszentrum Karlsruhe.


IEEE Transactions on Plasma Science | 2002

Development of a 140-GHz 1-MW continuous wave gyrotron for the W7-X stellarator

G. Dammertz; S. Alberti; E. Borie; V. Erckmann; G. Gantenbein; E. Giguet; Roland Heidinger; Jean-Philippe Hogge; S. Illy; W. Kasparek; K. Koppenburg; M. Kuntze; H. P. Laqua; G. Lecloarec; Y. Legoff; W. Leonhardt; C. Lievin; R. Magne; G. Michel; G. Müller; G. Neffe; B. Piosczyk; M. Schmid; K. Schwörer; M. Thumm; M. Q. Tran

The development of high-power gyrotrons (118 GHz, 140 GHz) in continuous-wave (CW) operation for heating nuclear fusion plasmas has been in progress for several years in a joint collaboration between different European research institutes and industrial partners. The 140-GHz gyrotron being under development for the installation at the W7-X stellarator now under construction at the IPP Greifswald, Germany, operates in the TE/sub 28,8/ mode and is equipped with a diode type magnetron injection electron gun, an improved beam tunnel, a high mode-purity low-Ohmic loss cavity, an optimized nonlinear up-taper, a highly efficient internal quasi-optical mode converter, a single-stage depressed collector and an edge-cooled, single disk CVD-diamond window. RF measurements at pulse duration of a few milliseconds yielded an RF output power of 1.15 MW at a beam current of 40 A and a beam voltage of 84 kV. Depressed collector operation has been possible up to decelerating voltages of 33 kV without any reduction of the output power. Long pulse operation (10 s at 1 MW) was possible without any signs of a limitation caused by the tube. For this output power the efficiency of the tube could be increased from about 30% without to about 50% with depression voltage. The best performance reached so far has produced an energy per pulse as high as 90 MJ (power 0.64 MW, pulse length 140 s) which is the highest value achieved in gyrotrons operating at this frequency and power level. The pulse-length limitations so far are mainly due to the external system.


IEEE Transactions on Plasma Science | 2010

2.2-MW Record Power of the 170-GHz European Preprototype Coaxial-Cavity Gyrotron for ITER

T. Rzesnicki; Bernhard Piosczyk; Stefan Kern; S. Illy; J. Jin; A. Samartsev; A. Schlaich; M. Thumm

A 2-MW continuous-wave (CW) 170-GHz coaxial-cavity gyrotron for electron cyclotron heating and current drive in the International Thermonuclear Experimental Reactor (ITER) is under development within the European Gyrotron Consortium (EGYC1), a cooperation between European research institutions. To support the development of the industrial prototype of a CW gyrotron, a short-pulse tube (preprototype) is used at KIT Karlsruhe (former FZK) for experimental verification of the design of critical components, like the electron gun, beam tunnel, cavity, and quasi-optical RF output coupler. Significant progress has been achieved recently. In particular, RF output power of up to 2.2 MW with 30% output efficiency has been obtained in single-mode operation at 170 GHz. Furthermore, a new RF output system has been designed, with an efficient conversion of the generated RF power into a Gaussian RF output beam. The results have been successful, yielding a Gaussian mode content ~96%.


IEEE Transactions on Plasma Science | 2010

Experimental Investigations and Analysis of Parasitic RF Oscillations in High-Power Gyrotrons

Gerd Gantenbein; Günter Dammertz; J. Flamm; S. Illy; Stefan Kern; George P. Latsas; Bernhard Piosczyk; T. Rzesnicki; A. Samartsev; A. Schlaich; M. Thumm; Ioannis G. Tigelis

Megawatt gyrotrons are found to suffer from various parasitic oscillations, in particular, RF oscillations in the beam tunnel prior to the desired interaction zone (the cavity). This paper describes the experimental results from a gyrotron experiment which was dedicated to investigate parasitic oscillations in the beam tunnel and to verify improved beam-tunnel structures. A system for improved spectral measurements and a new analysis method are presented. The results verify theoretical predictions on the parasitic oscillations, and in effect validate the corresponding improved beam-tunnel structure. In addition, other types of parasitic oscillations were observed and explained.


international conference on plasma science | 2006

EU megawatt-class 140 GHZ CW gyrotron

M. Thumm; S. Alberti; A. Arnold; P. Brand; H. Braune; G. Dammertz; V. Erckmann; G. Gantenbein; E. Giguet; R. Heidinger; J.-P. Hogge; S. Illy; W. Kasparek; H. P. Laqua; F. Legrand; W. Leonhardt; C. Lievinlievin; G. Michel; G. Neffe; B. Piosczyk; M. Schmid; K. Schworer; M. Q. Tran

The first series tube of the gyrotrons for the 10-MW electron cyclotron resonance heating system of the stellarator W7-X was tested at Forschungszentrum Karlsruhe (FZK) and yielded a total output power of 0.98 MW, with an efficiency of 31% (without a single-stage depressed collector) in short-pulse operation and of 0.92 MW in pulses of 180 s (efficiency of almost 45% at a depression voltage of 29 kV). The Gaussian mode output power was 0.91 MW. The pulselength at full power (1 MW) is limited at FZK by the available power supply. At a reduced electron beam current, it is possible to operate at longer pulselengths. At an output power of 0.57 MW (electron beam current of 29 A), the pulselength was increased to 1893 s. There was no physical reason for a limitation of this pulse: The pressure increase during the pulse was less than a factor of two and ended up at a very low value in the 10-9 mbar range. The tube was delivered to Max-Planck-Institut fuumlr Plasmaphysik Greifswald for tests at full power and up to 30-min pulselength. The Gaussian mode RF output power, measured in a calorimetric load after a 25-m-long quasi-optical transmission line (seven mirrors), was 0.87 MW at a total output power of 0.92 MW in 30-min pulses. Again, no indications for a limitation in pulselength were found. The second series tube was tested in short-pulse operation and showed a strange behavior concerning a mode hopping which has not yet been understood. The third series gyrotron delivers up to now 0.65 MW at a pulse duration of 180 s. Preliminary operation of the prototype tube as a two-frequency gyrotron delivered 0.41 MW in 10-s pulses at 103.8 GHz (TE21,6 mode)


Fusion Engineering and Design | 2001

European high-power CW gyrotron development for ECRH systems

S Albertia; A Arnold; E Borie; G. Dammertz; V. Erckmann; Pascal Garin; E. Giguet; S. Illy; G. Le Cloarec; Y. Le Goff; R. Magne; G. Michel; B. Piosczyk; C Tran; M.Q. Tran; M. Thumm; D Wagner

The development of high power CW gyrotrons for ECRH heating of fusion relevant plasmas has been in progress for several years in a joint collaboration between different European research institutes and an industrial partner. Two development are on going, aiming, respectively, towards a 0.51-MW-210-s gyrotron at 118 GHz for the tokamaks TCV of CRPP (2 s pulse length) and Tore Supra of CEA (210 s pulse length), and towards a 1 MW-CW gyrotron at 140 GHz for the stellarator W7-X under construction in Greifswald. Series 118 GHz gyrotrons have been delivered to CRPP and CEA. Long pulse results (15.5 s at 400 kW) as well as considerations on power modulation capabilities of the tube and on long pulse effects are discussed. In a second development program, a 1-MW/CW 140 GHz gyrotron with a CVD diamond window and a single-stage depressed collector has been designed and constructed as a first prototype for the 10-MW ECRH (Elecron Cyclotion Resonance Heating) system of the new stellarator experiment Wendelstein 7-X of IPP Greifswald/Germany. The gyrotron operates in the TE28.8 cavity mode and provides a linearly polarized, TEM0.0 Gaussian RF beam. It is composed of a diode MIG gun, an improved beam tunnel, a high-mode purity low-ohmic loss cavity, an optimized non-linear up-taper, a highly efficient internal quasi-optical mode converter employing an improved launcher together with one quasi-elliptical and two beam shaping reflectors, a large single stage depressed collector at ground potential with a beam sweeping magnet, and a horizontal RF output


Fusion Science and Technology | 2009

First experimental results from the European Union 2 MW coaxial cavity ITER gyrotron prototype

Jean-Philippe Hogge; T. P. Goodman; S. Alberti; F. Albajar; K. A. Avramides; P. Benin; S. Bethuys; W. Bin; T. Bonicelli; A. Bruschi; S. Cirant; E. Droz; O. Dumbrajs; D. Fasel; F. Gandini; Gerd Gantenbein; S. Illy; S. Jawla; J. Jin; Stefan Kern; P. Lavanchy; C. Lievin; B. Marletaz; P. Marmillod; A. Perez; B. Piosczyk; Ioannis Gr. Pagonakis; L. Porte; T. Rzesnickl; U. Siravo

Abstract The European Union is working toward providing 2-MW, coaxial-cavity, continuous-wave (cw) 170-GHz gyrotrons for ITER. Their design is based on results from an experimental preprototype tube having a pulse length of several milliseconds, in operation at Forschungszentrum Karlsruhe (FZK) for several years now. The first industrial prototype tube was designed for cw operation but, in a first phase, aimed at a pulse length of 1 s at the European Gyrotron Test Facility in Lausanne, Switzerland, as part of a phased testing/development program (1 s, 60 s, cw). The first experimental results of the operation of this prototype gyrotron are reported here. The microwave generation was characterized at very short pulse length (<0.01 s) using a load on loan from FZK, and the highest measured output power was 1.4 MW, at a beam energy significantly lower than the design value (83 kV instead of 90 kV), limited by arcing in the tube. The radio-frequency (rf) beam profile was measured to allow reconstruction of the phase and amplitude profile at the window and to provide the necessary information permitting proper alignment of the compact rf loads prior to pulse extension. Arcs in the tube limited the pulse length extension to a few tens of milliseconds. According to present planning, the tube is going to be opened, inspected, and refurbished, depending on the results of the inspection, to allow testing of an improved version of the mode launcher and replacement of some subassemblies.


IEEE Transactions on Plasma Science | 1999

165 GHz, 1.5 MW-coaxial cavity gyrotron with depressed collector

Bernhard Piosczyk; O. Braz; G. Dammertz; Christos Iatrou; S. Illy; M. Kuntze; G. Michel; M. Thumm

A further step in the development of a coaxial-cavity gyrotron operated in the transverse electric TE/sub -31,17/ mode at 165 GHz is presented. The gyrotron has been equipped with a quasi-optical output system consisting of a Vlasov launcher with a single cut and two mirrors, one with a quasi-elliptic and the other with a nonquadratic phase correcting surface. The radio frequency (RF) power is transmitted through a single output window. A maximum output power of 1.7 MW has been achieved. At the nominal operational parameters an RF power of 1.3 MW with an efficiency of 27.3% has been measured. The efficiency increases to 41% in operation with a single-stage depressed collector.


IEEE Transactions on Plasma Science | 1998

Coaxial cavity gyrotron with dual RF beam output

B. Piosczyk; O. Braz; G. Dammertz; Christos Iatrou; S. Illy; M. Kuntze; G. Michel; A. Möbius; M. Thumm; V.A. Flyagin; V.I. Khishnyak; A.B. Pavelyev; V. Zapevalov

A 140-GHz, 1.5-MW, TE/sub 28,16/-coaxial cavity gyrotron with a dual RF beam output has been designed, built, and tested. For the first time, the generated RF power has been split into two parts and coupled out through two RF output windows in order to reduce the power loading in the windows. The quasioptical output system is based on a two-step mode conversion scheme. First, the cavity mode TE/sub -28,16/ is converted into its degenerate whispering gallery mode TE/sub +76,2/ using a rippled-wall mode converter. Then, this mode is transformed into two TEM/sub 00/ output wave beams. A maximum rf output power of about 950 kW with an output efficiency of 20% has been measured. According to numerical calculations, an rf power above 1.5 MW is expected to be generated in the cavity. Even if all losses are taken into account, a discrepancy between experiment and calculations remains. The power deficit seems to be partly caused by the influence of the stray radiation captured inside the tube. However, the two main reasons are probably an incomplete mode conversion from TE/sub -28,16/ to TE/sub +76,2/ and a large energy spread of the electron beam due to trapped electrons. An increased amount of captured stray radiation resulted in a reduced stability of operation. A single-stage depressed collector was used successfully, increasing the RF output efficiency from 20% to 29%.


international conference on plasma science | 2005

High-power gyrotron development at Forschungszentrum Karlsruhe for fusion applications

G. Dammertz; S. Alberti; D. Bariou; P. Brand; H. Braune; Volker Erckmann; O. Dumbrajs; G. Gantenbein; E. Giguet; Roland Heidinger; Jean-Philipp Hogge; S. Illy; Jinbo Jin; W. Kasparek; K. Koppenburg; Heinrich Laqua; F. Legrand; W. Leonhardt; C. Lievin; G. Michel; G. Neffe; B. Piosczyk; O. Prinz; T. Rzesnicki; M. Schmid; M. Thumm; M. Q. Tran; X. Yang; I. Yovchev

In the first part of this paper, the status of the 140-GHz continuously operated gyrotrons with an output power of 1 MW for the stellarator Wendelstein 7-X will be described. With the first series tube, an output power of 1000 kW has been achieved in short pulse operation (milliseconds) with an electron beam current of 40 A, and of 1150 kW at 50 A. With a pulse length of 3 min limited by the available high-voltage (HV) power supply, an output power of 920 kW at an electron beam current of about 40 A with an efficiency of 45% and a mode purity of 97.5% has been obtained. At a reduced beam current of 29 A, an output power of 570 kW was measured with a pulse length of 1893 s without significant increase in tube pressure. The energy content of this pulse is almost 1.1 GJ. For the next fusion plasma device, International Thermonuclear Experimental Reactor (ITER), gyrotrons with a higher output power of about 2 MW are desirable. In short-pulse experiments, the feasibility of the fabrication of coaxial cavity gyrotrons with an output power up to 2-MW, continuous wave (CW), has been demonstrated, and the information necessary for a technical design has been obtained. The development of a long-pulse 2-MW coaxial cavity gyrotron started within a European cooperation. In parallel to the design and fabrication of an industrial prototype gyrotron, a short-pulse preprototype gyrotron has been operated to verify the design of critical components. An output power of 1.2 MW with an efficiency of 20% has been achieved. The development of frequency tunable gyrotrons operating in the range from 105 to 140 GHz for stabilization of current driven plasma instabilities in fusion plasma devices (neoclassical tearing modes) is another task in the development of gyrotrons at the Forschungszentrum Karlsruhe.

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M. Thumm

Karlsruhe Institute of Technology

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Gerd Gantenbein

Karlsruhe Institute of Technology

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John Jelonnek

Karlsruhe Institute of Technology

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Konstantinos A. Avramidis

Karlsruhe Institute of Technology

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J. Jin

Karlsruhe Institute of Technology

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Ioannis Gr. Pagonakis

Karlsruhe Institute of Technology

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M. Schmid

Karlsruhe Institute of Technology

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T. Rzesnicki

European Atomic Energy Community

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Zisis C. Ioannidis

Karlsruhe Institute of Technology

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C. Lievin

Karlsruhe Institute of Technology

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