J. Gonzalez-Martin
Spanish National Research Council
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Publication
Featured researches published by J. Gonzalez-Martin.
Review of Scientific Instruments | 2016
M. Garcia-Munoz; M. Kocan; J. Ayllon-Guerola; L. Bertalot; Y. Bonnet; N. Casal; J. Galdon; J. García López; T. Giacomin; J. Gonzalez-Martin; J.P. Gunn; M. C. Jiménez-Ramos; V. Kiptily; S. D. Pinches; M. Rodriguez-Ramos; R. Reichle; J. F. Rivero-Rodriguez; L. Sanchis-Sanchez; A. Snicker; G. Vayakis; E. Veshchev; Ch. Vorpahl; M. Walsh; R. Walton
A conceptual design of a reciprocating fast-ion loss detector for ITER has been developed and is presented here. Fast-ion orbit simulations in a 3D magnetic equilibrium and up-to-date first wall have been carried out to revise the measurement requirements for the lost alpha monitor in ITER. In agreement with recent observations, the simulations presented here suggest that a pitch-angle resolution of ∼5° might be necessary to identify the loss mechanisms. Synthetic measurements including realistic lost alpha-particle as well as neutron and gamma fluxes predict scintillator signal-to-noise levels measurable with standard light acquisition systems with the detector aperture at ∼11 cm outside of the diagnostic first wall. At measurement position, heat load on detector head is comparable to that in present devices.
Review of Scientific Instruments | 2016
J. Ayllon-Guerola; J. Gonzalez-Martin; M. Garcia-Munoz; J. F. Rivero-Rodriguez; A. Herrmann; S. Vorbrugg; P. Leitenstern; S. Zoletnik; J. Galdon; J. García López; M. Rodriguez-Ramos; L. Sanchis-Sanchez; A. D. Dominguez; M. Kocan; J.P. Gunn; Daniel García-Vallejo; J. Domínguez
A magnetically driven fast-ion loss detector system for the ASDEX Upgrade tokamak has been designed and will be presented here. The device is feedback controlled to adapt the detector head position to the heat load and physics requirements. Dynamic simulations have been performed taking into account effects such as friction, coil self-induction, and eddy currents. A real time positioning control algorithm to maximize the detector operational window has been developed. This algorithm considers dynamical behavior and mechanical resistance as well as measured and predicted thermal loads. The mechanical design and real time predictive algorithm presented here may be used for other reciprocating systems.
Review of Scientific Instruments | 2018
J. Gonzalez-Martin; J. Ayllon-Guerola; M. Garcia-Munoz; A. Herrmann; P. Leitenstern; W. Popken; P. de Marné; S. Zoletnik; A. Kovacsik; J. Galdon-Quiroga; J. F. Rivero-Rodriguez; M. Rodriguez-Ramos; L. Sanchis-Sanchez; J. Dominguez-Abascal; Mst Team
A new reciprocating scintillator based fast-ion loss detector has been installed a few centimeters above the outer divertor of the ASDEX Upgrade tokamak and between two of its lower Edge Localized Modes (ELM) mitigation coils. The detector head containing the scintillator screen, Faraday cup, calibration lamp, and collimator systems are installed on a motorized reciprocating system that can adjust its position via remote control in between plasma discharges. Orbit simulations are used to optimize the detector geometry and velocity-space coverage. The scintillator image is transferred to the light acquisition systems outside of the vacuum via a lens relay (embedded in a 3D-printed titanium holder) and an in-vacuum image guide. A charge coupled device camera, for high velocity-space resolution, and an 8 × 8 channel avalanche photo diode camera, for high temporal resolution (up to 2 MHz), are used as light acquisition systems. Initial results showing velocity-space of neutral beam injection prompt losses and fast-ion losses induced by a (2, 1) neoclassical tearing mode are presented.
Journal of Instrumentation | 2017
M. Kocan; M. Garcia-Munoz; J. Ayllon-Guerola; L. Bertalot; Y. Bonnet; N. Casal; J. Galdon; J. García-López; T. Giacomin; J. Gonzalez-Martin; J.P. Gunn; M. Rodriguez-Ramos; R. Reichle; J. F. Rivero-Rodriguez; L. Sanchis-Sanchez; G. Vayakis; E. Veshchev; C. Vorpahl; M. Walsh; R. Walton
Thermal plasma loads to the ITER Fast Ion Loss Detector are studied for QDT = 10 burning plasma equilibrium using the 3D field line tracing. The simulations are performed for a FILD insertion 9–13 cm past the port plasma facing surface, optimized for fast ion measurements, and include the worst-case perturbation of the plasma boundary and the error in the magnetic reconstruction. The FILD head is exposed to superimposed time-averaged ELM heat load, static inter-ELM heat flux and plasma radiation. The study includes the estimate of the instantaneous temperature rise due to individual 0.6 MJ controlled ELMs. The maximum time-averaged surface heat load is 12 MW/m2 and will lead to increase of the FILD surface temperature well below the melting temperature of the materials considered here, for the FILD insertion time of 0.2 s. The worst-case instantaneous temperature rise during controlled 0.6 MJ ELMs is also significantly smaller than the melting temperature of e.g. Tungsten or Molybdenum, foreseen for the FILD housing.
Journal of Instrumentation | 2017
J. Galdon-Quiroga; J. F. Rivero-Rodriguez; M. Garcia-Munoz; G. Birkenmeier; E. Viezzer; J. Ayllon-Guerola; M. Dunne; J. García-López; J. Gonzalez-Martin; M. C. Jiménez-Ramos; M. Rodriguez-Ramos; L. Sanchis-Sanchez; E. Wolfrum
A conceptual design of a new diagnostic for the simultaneous space and time resolved measurement of plasma density, potential and poloidal magnetic field fluctuations at ASDEX Upgrade is proposed. The diagnostic combines the detection techniques of standard heavy ion beam probes (HIBP) and scintillator based fast ion loss detectors (FILD), making use of an atomic beam to probe plasma parameters with high spatio-temporal resolution. This new approach takes advantage of using a neutral probe beam and a scintillator plate as detection system. The combination of these two techniques makes the diagnostic more compact than standard HIBP facilitating its integration in the machine. Simulations using an orbit following code have been carried out to investigate the viability of the proposed detection method based on the displacement of the beam strike-line on the scintillator plate. Relative plasma potential fluctuations from 10% to 100% in the potential well induce localized displacements in the strike line in the range of 0.1–1.0 mm, while poloidal magnetic field fluctuations such as those arising from edge currents produce displacements in the order of mm. The use of a scintillator screen provides virtually infinite spatial resolution together with a temporal resolution up to the MHz range, needed for the identification of internal fluctuations.
Plasma Physics and Controlled Fusion | 2018
J. Galdon-Quiroga; M. Garcia-Munoz; M. Salewski; A. S. Jacobsen; L. Sanchis-Sanchez; M. Rodriguez-Ramos; J. Ayllon-Guerola; J. Garcia-Lopez; J. Gonzalez-Martin; M. C. Jiménez-Ramos; J. F. Rivero-Rodriguez; E. Viezzer
Plasma Physics and Controlled Fusion | 2017
M. Rodriguez-Ramos; M. Garcia-Munoz; M.C. Jiménez-Ramos; J. García López; J. Galdon-Quiroga; L. Sanchis-Sanchez; J. Ayllon-Guerola; M. Faitsch; J. Gonzalez-Martin; A Hermann; P. de Marné; J. F. Rivero-Rodriguez; B. Sieglin; A. Snicker
45th EPS Conference on Plasma Physics | 2018
A. Jansen van Vuuren; B. Geiger; P. A. Schneider; A. S. Jacobsen; K. Mitosinkova; T. Lunt; J. Gonzalez-Martin; EUROfusion Mst Team
45th EPS Conference on Plasma Physics | 2018
J. Ferreira; F. Nabais; P. Rodrigues; R. Coelho; António J. Figueiredo; M. Garcia-Munoz; Thomas Johnson; P. Lauber; S. E. Sharapov; P. Vallejos; M. A. Van Zeeland; V. Bobkov; I. G. J. Classen; M. Fitzgerald; B. Geiger; J. Galdon-Quiroga; J. Gonzalez-Martin; L. Guimarais; M. Mantsinen; V. Nikolaeva; M. Rodriguez-Ramos; L. Sanchis; P. A. Schneider; A. Snicker; EUROfusion Mst Team
45th EPS Conference on Plasma Physics | 2018
M. Garcia-Munoz; S. E. Sharapov; E. Ascasibar; A. Cappa; Liu Chen; J. Galdon-Quiroga; J. M. Garcia-Regana; J. Gonzalez-Martin; W.W. Heidbrink; Ph. Lauber; L. Sanchis-Sanchez; Peter Schneider; J. Stober; W. Suttrop; Y. Todo; M. A. Van Zeeland; F. Zonca; Mst Team