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Publications by Lorenzo Frassinetti

Refereegranskade

Artiklar

[4]
H. A. Kumpulainen et al., "Validated edge and core predictions of tungsten erosion and transport in JET ELMy H-mode plasmas," Plasma Physics and Controlled Fusion, vol. 66, no. 5, 2024.
[5]
A. R. Field et al., "Comparing pedestal structure in JET-ILW H-mode plasmas with a model for stiff ETG turbulent heat transport," Philosophical Transactions. Series A : Mathematical, physical, and engineering science, vol. 381, no. 2242, 2023.
[6]
I. Casiraghi et al., "Core integrated simulations for the Divertor Tokamak Test facility scenarios towards consistent core-pedestal-SOL modelling," Plasma Physics and Controlled Fusion, vol. 65, no. 3, pp. 035017, 2023.
[7]
A. Kit et al., "Developing deep learning algorithms for inferring upstream separatrix density at JET," Nuclear Materials and Energy, vol. 34, 2023.
[8]
J. Horacek et al., "ELM temperature in JET and COMPASS tokamak divertors," Nuclear Fusion, vol. 63, no. 5, pp. 056007, 2023.
[11]
I. Predebon et al., "Isotope mass dependence of pedestal transport in JET H-mode plasmas," Nuclear Fusion, vol. 63, no. 3, pp. 036010, 2023.
[15]
L. Balbinot et al., "Multi-code estimation of DTT edge transport parameters," Nuclear Materials and Energy, vol. 34, 2023.
[16]
[17]
L. Horvath et al., "Pedestal particle balance studies in JET-ILW H-mode plasmas," Plasma Physics and Controlled Fusion, vol. 65, no. 4, pp. 044003, 2023.
[18]
A. Kit et al., "Supervised learning approaches to modeling pedestal density," Plasma Physics and Controlled Fusion, vol. 65, no. 4, 2023.
[19]
[20]
J. Hobirk et al., "The JET hybrid scenario in Deuterium, Tritium and Deuterium-Tritium," Nuclear Fusion, vol. 63, no. 11, 2023.
[21]
T. Luda et al., "Validation of IMEP on Alcator C-Mod and JET-ILW ELMy H-mode plasmas," Plasma Physics and Controlled Fusion, vol. 65, no. 3, pp. 034001, 2023.
[23]
[24]
J. Vega et al., "Disruption prediction with artificial intelligence techniques in tokamak plasmas," Nature Physics, vol. 18, no. 7, pp. 741-750, 2022.
[25]
H. A. Kumpulainen et al., "ELM and inter-ELM tungsten erosion sources in high-power, JET ITER-like wall H-mode plasmas," Nuclear Materials and Energy, vol. 33, 2022.
[26]
H. Nyström et al., "Effect of resistivity on the pedestal MHD stability in JET," Nuclear Fusion, vol. 62, no. 12, pp. 126045, 2022.
[27]
A. Gillgren et al., "Enabling adaptive pedestals in predictive transport simulations using neural networks," Nuclear Fusion, vol. 62, no. 9, pp. 096006, 2022.
[28]
S. Mazzi et al., "Enhanced performance in fusion plasmas through turbulence suppression by megaelectronvolt ions," Nature Physics, vol. 18, no. 7, pp. 776-782, 2022.
[31]
J. Mailloux et al., "Overview of JET results for optimising ITER operation," Nuclear Fusion, vol. 62, no. 4, 2022.
[32]
H. Reimerdes, L. Frassinetti and J. Zebrowski, "Overview of the TCV tokamak experimental programme," Nuclear Fusion, vol. 62, no. 4, 2022.
[33]
E. R. Solano et al., "Recent progress in L-H transition studies at JET : tritium, helium, hydrogen and deuterium," Nuclear Fusion, vol. 62, no. 7, pp. 076026, 2022.
[34]
I. Casiraghi et al., "Scenario modelling for the Divertor Tokamak Test facility," NUOVO CIMENTO C-COLLOQUIA AND COMMUNICATIONS IN PHYSICS, vol. 45, no. 6, 2022.
[36]
B. Chapman-Oplopoiou et al., "The role of ETG modes in JET-ILW pedestals with varying levels of power and fuelling," Nuclear Fusion, vol. 62, no. 8, 2022.
[40]
U. A. Sheikh et al., "Impact of the new TCV baffled divertor upgrade on pedestal structure and performance," Nuclear Materials and Energy, vol. 26, 2021.
[42]
D. R. Hatch et al., "Microtearing modes as the source of magnetic fluctuations in the JET pedestal," Nuclear Fusion, vol. 61, no. 3, 2021.
[43]
O. Chellaï, L. Frassinetti and M. Zuin, "Millimeter-wave beam scattering and induced broadening by plasma turbulence in the TCV tokamak," Nuclear Fusion, vol. 61, no. 6, 2021.
[46]
C. J. Ham et al., "Towards understanding reactor relevant tokamak pedestals," Nuclear Fusion, vol. 61, no. 9, 2021.
[47]
S. Moradi et al., "Global scaling of the heat transport in fusion plasmas," Physical Review Research, vol. 2, 2020.
[48]
H. Weisen et al., "Isotope dependence of energy, momentum and particle confinement in tokamaks," Journal of Plasma Physics, vol. 86, no. 5, 2020.
[50]
A. R. Field et al., "The dependence of exhaust power components on edge gradients in JET-C and JET-ILW H-mode plasmas," Plasma Physics and Controlled Fusion, vol. 62, no. 5, 2020.
[53]
S. Pamela et al., "A wall-aligned grid generator for non-linear simulations of MHD instabilities in tokamak plasmas," Computer Physics Communications, vol. 243, pp. 41-50, 2019.
[54]
S. S. Henderson et al., "An assessment of nitrogen concentrations from spectroscopic measurements in the JET and ASDEX upgrade divertor," Nuclear Materials and Energy, vol. 18, pp. 147-152, 2019.
[56]
A. Drenik et al., "Analysis of the outer divertor hot spot activity in the protection video camera recordings at JET," Fusion engineering and design, vol. 139, pp. 115-123, 2019.
[57]
F. P. Orsitto et al., "Approximate analytic expressions using Stokes model for tokamak polarimetry and their range of validity," Plasma Physics and Controlled Fusion, vol. 61, no. 5, 2019.
[58]
J. Romazanov et al., "Beryllium global erosion and deposition at JET-ILW simulated with ERO2.0," Nuclear Materials and Energy, vol. 18, pp. 331-338, 2019.
[60]
M. Valovic et al., "Control of the hydrogen:deuterium isotope mixture using pellets in JET," Nuclear Fusion, vol. 59, no. 10, 2019.
[61]
D. D. Carvalho et al., "Deep neural networks for plasma tomography with applications to JET and COMPASS," Journal of Instrumentation, vol. 14, 2019.
[63]
A. Widdowson et al., "Deposition of impurity metals during campaigns with the JET ITER-like Wall," Nuclear Materials and Energy, vol. 19, pp. 218-224, 2019.
[65]
M. Salewski et al., "Diagnostic of fast-ion energy spectra and densities in magnetized plasmas," Journal of Instrumentation, vol. 14, 2019.
[69]
E. Trier et al., "ELM-induced cold pulse propagation in ASDEX Upgrade," Plasma Physics and Controlled Fusion, vol. 61, no. 4, 2019.
[70]
P. Vallejos et al., "Effect of poloidal phasing on ion cyclotron resonance heating power absorption," Nuclear Fusion, vol. 59, no. 7, 2019.
[71]
F. Nabais et al., "Energetic ion losses 'channeling' mechanism and strategy for mitigation," Plasma Physics and Controlled Fusion, vol. 61, no. 8, 2019.
[73]
K. K. Kirov et al., "Fast ion synergistic effects in JET high performance pulses," Nuclear Fusion, vol. 59, no. 5, 2019.
[76]
C. Silva et al., "Geodesic acoustic mode evolution in L-mode approaching the L-H transition on JET," Plasma Physics and Controlled Fusion, vol. 61, no. 7, 2019.
[80]
F. Eriksson et al., "Impact of fast ions on density peaking in JET : fluid and gyrokinetic modeling," Plasma Physics and Controlled Fusion, vol. 61, no. 7, 2019.
[81]
[82]
T. Vasilopoulou et al., "Improved neutron activation dosimetry for fusion," Fusion engineering and design, vol. 139, pp. 109-114, 2019.
[83]
F. Eriksson et al., "Interpretative and predictive modelling of Joint European Torus collisionality scans," Plasma Physics and Controlled Fusion, vol. 61, no. 11, 2019.
[84]
J. Likonen et al., "Investigation of deuterium trapping and release in the JET ITER-like wall divertor using TDS and TMAP," Nuclear Materials and Energy, vol. 19, pp. 166-178, 2019.
[85]
J. Likonen et al., "Investigation of deuterium trapping and release in the JET divertor during the third ILW campaign using TDS," Nuclear Materials and Energy, vol. 19, pp. 300-306, 2019.
[86]
C. F. Maggi et al., "Isotope identity experiments in JET-ILW with H and D L-mode plasmas," Nuclear Fusion, vol. 59, no. 7, 2019.
[87]
C. P. von Thun et al., "Long-lived coupled peeling ballooning modes preceding ELMs on JET," Nuclear Fusion, vol. 59, no. 5, 2019.
[88]
E. Rachlew et al., "Measuring fast ions in fusion plasmas with neutron diagnostics at JET," Plasma Physics and Technology, vol. 61, no. 1, pp. 014027, 2019.
[89]
K. Heinola et al., "Modelling of the effect of ELMs on fuel retention at the bulk W divertor of JET," Nuclear Materials and Energy, vol. 19, pp. 397-402, 2019.
[90]
A. Kirschner et al., "Modelling of tungsten erosion and deposition in the divertor of JET-ILW in comparison to experimental findings," Nuclear Materials and Energy, vol. 18, pp. 239-244, 2019.
[91]
Z. Stancar et al., "Multiphysics approach to plasma neutron source modelling at the JET tokamak," Nuclear Fusion, vol. 59, no. 9, 2019.
[93]
H. Meyer et al., "Overview of physics studies on ASDEX Upgrade," Nuclear Fusion, vol. 59, no. 11, 2019.
[94]
[95]
U. A. Sheikh et al., "Pedestal structure and energy confinement studies on TCV," Plasma Physics and Controlled Fusion, vol. 61, no. 1, 2019.
[97]
K. D. Lawson et al., "Population modelling of the He II energy levels in tokamak plasmas : I. Collisional excitation model," Journal of Physics B : Atomic, Molecular and Optical Physics, vol. 52, no. 4, 2019.
[98]
A. Krivska et al., "RF sheath modeling of experimentally observed plasma surface interactions with the JET ITER-Like Antenna," Nuclear Materials and Energy, vol. 19, pp. 324-329, 2019.
[99]
B. P. van Milligen et al., "Radial variation of heat transport in L-mode JET discharges," Nuclear Fusion, vol. 59, no. 5, 2019.
[100]
T. C. Blanken et al., "Real-time plasma state monitoring and supervisory control on TCV," Nuclear Fusion, vol. 59, no. 2, 2019.
[101]
B. Cannas et al., "Recurrence Plots for Dynamic Analysis of Type-I ELMs at JET With a Carbon Wall," IEEE Transactions on Plasma Science, vol. 47, no. 4, pp. 1871-1877, 2019.
[102]
N. Bonanomi et al., "Role of fast ion pressure in the isotope effect in JET L-mode plasmas," Nuclear Fusion, vol. 59, no. 9, 2019.
[104]
D. Carnevale et al., "Runaway electron beam control," Plasma Physics and Controlled Fusion, vol. 61, no. 1, 2019.
[105]
L. Garzotti et al., "Scenario development for D-T operation at JET," Nuclear Fusion, vol. 59, no. 7, 2019.
[106]
S. Saarelma et al., "Self-consistent pedestal prediction for JET-ILW in preparation of the DT campaign," Physics of Plasmas, vol. 26, no. 7, 2019.
[108]
J. Varje et al., "Synthetic diagnostic for the JET scintillator probe lost alpha measurements," Journal of Instrumentation, vol. 14, 2019.
[109]
C. Makepeace et al., "The effect of beryllium oxide on retention in JET ITER-like wall tiles," Nuclear Materials and Energy, vol. 19, pp. 346-351, 2019.
[111]
[113]
P. Batistoni et al., "14 MeV calibration of JET neutron detectors-phase 2 : in-vessel calibration," Nuclear Fusion, vol. 58, no. 10, 2018.
[115]
A. Pau et al., "A First Analysis of JET Plasma Profile-Based Indicators for Disruption Prediction and Avoidance," IEEE Transactions on Plasma Science, vol. 46, no. 7, pp. 2691-2698, 2018.
[116]
C. E. Myers et al., "A multi-machine scaling of halo current rotation," Nuclear Fusion, vol. 58, no. 1, 2018.
[117]
G. Stankunas et al., "Activation inventories after exposure to dd/dt neutrons in safety analysis of nuclear fusion installations," Radiation Protection Dosimetry, vol. 180, no. 1-4, pp. 125-128, 2018.
[118]
I. Lengar et al., "Activation material selection for multiple foil activation detectors in JET TT campaign," Fusion engineering and design, vol. 136, pp. 988-992, 2018.
[120]
[122]
N. Aiba et al., "Analysis of ELM stability with extended MHD models in JET, JT-60U and future JT-60SA tokamak plasmas," Plasma Physics and Controlled Fusion, vol. 60, no. 1, 2018.
[123]
J. Hobirk et al., "Analysis of plasma termination in the JET hybrid scenario," Nuclear Fusion, vol. 58, no. 7, 2018.
[125]
K. E. Royston et al., "Application of the Denovo Discrete Ordinates Radiation Transport Code to Large-Scale Fusion Neutronics," Fusion science and technology, vol. 74, no. 4, pp. 303-314, 2018.
[127]
A. C. C. Sips et al., "Assessment of the baseline scenario at q(95) similar to 3 for ITER," Nuclear Fusion, vol. 58, no. 12, 2018.
[129]
M. Salewski et al., "Bayesian Integrated Data Analysis of Fast-Ion Measurements by Velocity-Space Tomography," Fusion science and technology, vol. 74, no. 1-2, pp. 23-36, 2018.
[130]
Z. Ghani et al., "Characterisation of neutron generators and monitoring detectors for the in-vessel calibration of JET," Fusion engineering and design, vol. 136, pp. 233-238, 2018.
[132]
B. Santos et al., "Control and data acquisition software upgrade for JET gamma-ray diagnostics," Fusion engineering and design, vol. 128, pp. 117-121, 2018.
[134]
R. Fridström et al., "Dependence of Perpendicular Viscosity on Magnetic Fluctuations in a Stochastic Topology," Physical Review Letters, vol. 120, no. 22, 2018.
[135]
[136]
M. Sertoli et al., "Determination of 2D poloidal maps of the intrinsic W density for transport studies in JET-ILW," Review of Scientific Instruments, vol. 89, no. 11, 2018.
[137]
A. Dal Molin et al., "Development of a new compact gamma-ray spectrometer optimised for runaway electron measurements," Review of Scientific Instruments, vol. 89, no. 10, 2018.
[138]
G. Calabro et al., "Divertor currents optimization procedure for JET-ILW high flux expansion experiments," Fusion engineering and design, vol. 129, pp. 115-119, 2018.
[141]
[142]
C. Sommariva et al., "Electron acceleration in a JET disruption simulation," Nuclear Fusion, vol. 58, no. 10, 2018.
[143]
B. Faugeras et al., "Equilibrium reconstruction at JET using Stokes model for polarimetry," Nuclear Fusion, vol. 58, no. 10, 2018.
[144]
L. C. Appel et al., "Equilibrium reconstruction in an iron core tokamak using a deterministic magnetisation model," Computer Physics Communications, vol. 223, pp. 1-17, 2018.
[145]
V. G. Kiptily et al., "Escaping alpha-particle monitor for burning plasmas," Nuclear Fusion, vol. 58, no. 8, 2018.
[148]
C. Bourdelle et al., "Fast H isotope and impurity mixing in ion-temperature-gradient turbulence," Nuclear Fusion, vol. 58, no. 7, 2018.
[149]
[151]
G. J. Wilkie et al., "First principles of modelling the stabilization of microturbulence by fast ions," Nuclear Fusion, vol. 58, no. 8, 2018.
[152]
D. R. Ferreira et al., "Full-Pulse Tomographic Reconstruction with Deep Neural Networks," Fusion science and technology, vol. 74, no. 1-2, pp. 47-56, 2018.
[153]
Z. Stancar et al., "Generation of a plasma neutron source for Monte Carlo neutron transport calculations in the tokamak JET," Fusion engineering and design, vol. 136, pp. 1047-1051, 2018.
[154]
J. Gaspar et al., "Heat flux analysis of Type-I ELM impact on a sloped, protruding surface in the JET bulk tungsten divertor," Nuclear Materials and Energy, vol. 17, pp. 182-187, 2018.
[157]
[159]
N. Bonanomi et al., "Impact of electron-scale turbulence and multi-scale interactions in the JET tokamak," Nuclear Fusion, vol. 58, no. 12, 2018.
[160]
[161]
N. C. Hawkes et al., "Instrumentation for the upgrade to the JET core charge-exchange spectrometers," Review of Scientific Instruments, vol. 89, no. 10, 2018.
[162]
S. Saarelma et al., "Integrated modelling of H-mode pedestal and confinement in JET-ILW," Plasma Physics and Controlled Fusion, vol. 60, no. 1, 2018.
[163]
L. Horvath et al., "Inter-ELM evolution of the edge current density in JET-ILW type I ELMy H-mode plasmas," Plasma Physics and Controlled Fusion, vol. 60, no. 8, 2018.
[164]
J. Figueiredo et al., "JET diagnostic enhancements testing and commissioning in preparation for DT scientific campaigns," Review of Scientific Instruments, vol. 89, no. 10, 2018.
[165]
N. Bonanomi et al., "Light impurity transport in JET ILW L-mode plasmas," Nuclear Fusion, vol. 58, no. 3, 2018.
[166]
S. E. Sharapov et al., "MHD spectroscopy of JET plasmas with pellets via Alfven eigenmodes," Nuclear Fusion, vol. 58, no. 8, 2018.
[168]
R. Zagorski et al., "Modelling of JET DT experiments in ILW configurations," Contributions to Plasma Physics, vol. 58, no. 6-8, pp. 739-745, 2018.
[170]
A. Cufar et al., "Modelling of the neutron production in a mixed beam DT neutron generator," Fusion engineering and design, vol. 136, pp. 1089-1093, 2018.
[172]
L. Giacomelli et al., "Neutron emission spectroscopy of D plasmas at JET with a compact liquid scintillating neutron spectrometer," Review of Scientific Instruments, vol. 89, no. 10, 2018.
[175]
[178]
M. Lungaroni et al., "On the potential of ruled-based machine learning for disruption prediction on JET," Fusion engineering and design, vol. 130, pp. 62-68, 2018.
[179]
[180]
J. Garcia et al., "On the universality of power laws for tokamak plasma predictions," Plasma Physics and Controlled Fusion, vol. 60, no. 2, 2018.
[181]
P. Batistoni et al., "Overview of neutron measurements in jet fusion device," Radiation Protection Dosimetry, vol. 180, no. 1-4, pp. 102-108, 2018.
[183]
M. Kresina et al., "Preparation for commissioning of materials detritiation facility at Culham Science Centre," Fusion engineering and design, vol. 136, pp. 1391-1395, 2018.
[184]
A. Sahlberg et al., "Propagating transport-code input parameter uncertainties with deterministic sampling," Plasma Physics and Controlled Fusion, vol. 60, no. 12, 2018.
[185]
J. Vega et al., "Real-time implementation with FPGA-based DAQ system of a probabilistic disruption predictor from scratch," Fusion engineering and design, vol. 129, pp. 179-182, 2018.
[189]
C. Silva et al., "Scaling of the geodesic acoustic mode amplitude on JET," Plasma Physics and Controlled Fusion, vol. 60, no. 8, 2018.
[190]
N. Fonnesu et al., "Shutdown dose rate measurements after the 2016 Deuterium-Deuterium campaign at JET," Fusion engineering and design, vol. 136, pp. 1348-1353, 2018.
[191]
R. Villari et al., "Shutdown dose rate neutronics experiment during high performances DD operations at JET," Fusion engineering and design, vol. 136, pp. 1545-1549, 2018.
[194]
D. Darby-Lewis et al., "Synthetic spectra of BeH, BeD and BeT for emission modeling in JET plasmas," Journal of Physics B : Atomic, Molecular and Optical Physics, vol. 51, no. 18, 2018.
[195]
F. Nabais et al., "TAE stability calculations compared to TAE antenna results in JET," Nuclear Fusion, vol. 58, no. 8, 2018.
[196]
B. Obryk et al., "TLD calibration for neutron fluence measurements at JET fusion facility," Nuclear Instruments and Methods in Physics Research Section A : Accelerators, Spectrometers, Detectors and Associated Equipment, vol. 904, pp. 202-213, 2018.
[198]
B. Coiling et al., "Testing of tritium breeder blanket activation foil spectrometer during JET operations," Fusion engineering and design, vol. 136, pp. 258-264, 2018.
[199]
D. Rigamonti et al., "The upgraded JET gamma-ray cameras based on high resolution/high count rate compact spectrometers," Review of Scientific Instruments, vol. 89, no. 10, 2018.
[200]
A. Baron-Wiechec et al., "Thermal desorption spectrometry of beryllium plasma facing tiles exposed in the JET tokamak," Fusion engineering and design, vol. 133, pp. 135-141, 2018.
[201]
A. Baron-Wiechec et al., "Thermal desorption spectrometry of beryllium plasma facing tiles exposed in the JET tokamak (vol 133, pg 135, 2018)," Fusion engineering and design, vol. 137, pp. 48-48, 2018.
[203]
[204]
W. Zhang et al., "3D simulations of gas puff effects on edge plasma and ICRF coupling in JET," Nuclear Fusion, vol. 57, no. 5, 2017.
[205]
A. G. Chiariello et al., "A 3D electromagnetic model of the iron core in JET," Fusion engineering and design, vol. 123, pp. 527-531, 2017.
[206]
A. Pau et al., "A tool to support the construction of reliable disruption databases," Fusion engineering and design, vol. 125, pp. 139-153, 2017.
[207]
S. Jednorog et al., "Activation measurements in support of the 14 MeV neutron calibration of JET neutron monitors," Fusion engineering and design, vol. 125, pp. 50-56, 2017.
[209]
G. Stankunas et al., "Analysis of activation and damage of ITER material samples expected from DD/DT campaign at JET," Fusion engineering and design, vol. 125, pp. 307-313, 2017.
[210]
L. Aho-Mantila et al., "Assessment of SOLPS5.0 divertor solutions with drifts and currents against L-mode experiments in ASDEX Upgrade and JET," Plasma Physics and Controlled Fusion, vol. 59, no. 3, 2017.
[212]
E. R. Solano et al., "Axisymmetric oscillations at L-H transitions in JET : M-mode," Nuclear Fusion, vol. 57, no. 2, 2017.
[215]
F. Binda et al., "Calculation of the profile-dependent neutron backscatter matrix for the JET neutron camera system," Fusion engineering and design, vol. 123, pp. 865-868, 2017.
[216]
A. Cufar et al., "Calculations to support JET neutron yield calibration : Modelling of neutron emission from a compact DT neutron generator," Nuclear Instruments and Methods in Physics Research Section A : Accelerators, Spectrometers, Detectors and Associated Equipment, vol. 847, pp. 199-204, 2017.
[217]
P. Batistoni et al., "Calibration of neutron detectors on the Joint European Torus," Review of Scientific Instruments, vol. 88, no. 10, 2017.
[218]
R. Kwiatkowski et al., "CeBr3-based detector for gamma-ray spectrometer upgrade at JET," Fusion engineering and design, vol. 123, pp. 986-989, 2017.
[219]
[220]
A. Shabbir et al., "Classification of ELM types in Joint European Torus based on global plasma parameters using discriminant analysis," Fusion engineering and design, vol. 123, pp. 717-721, 2017.
[221]
P. Dumortier et al., "Commissioning and first results of the reinstated JET ICRF ILA," Fusion engineering and design, vol. 123, pp. 285-288, 2017.
[222]
A. Huber et al., "Comparative H-mode density limit studies in JET and AUG," Nuclear Materials and Energy, vol. 12, pp. 100-110, 2017.
[223]
H. Strauss et al., "Comparison of JETAVDE disruption data with M3D simulations and implications for ITER," Physics of Plasmas, vol. 24, no. 10, 2017.
[224]
M. Komm et al., "Contribution to the multi-machine pedestal scaling from the COMPASS tokamak," Nuclear Fusion, vol. 57, no. 5, 2017.
[226]
C. C. Petty et al., "DIII-D research towards establishing the scientific basis for futurefusion reactors," Nuclear Fusion, vol. 59, no. 11, 2017.
[227]
F. A. Matos et al., "Deep learning for plasma tomography using the bolometer system at JET," Fusion engineering and design, vol. 114, pp. 18-25, 2017.
[230]
A. Lahtinen et al., "Deuterium retention in the divertor tiles of JET ITER-Like wall," Nuclear Materials and Energy, vol. 12, pp. 655-661, 2017.
[231]
G. Boltruczyk et al., "Development of MPPC-based detectors for high count rate DT campaigns at JET," Fusion engineering and design, vol. 123, pp. 940-944, 2017.
[232]
L. Frassinetti et al., "Dimensionless scalings of confinement, heat transport and pedestal stability in JET-ILW and comparison with JET-C," Plasma Physics and Controlled Fusion, vol. 59, no. 1, 2017.
[233]
G. F. Matthews et al., "Dynamic power balance analysis in JET," Physica Scripta, vol. T170, 2017.
[234]
A. R. Field et al., "Dynamics and stability of divertor detachment in H-mode plasmas on JET," Plasma Physics and Controlled Fusion, vol. 59, no. 9, 2017.
[235]
[236]
L. Frassinetti et al., "ELM behavior in ASDEX Upgrade with and without nitrogen seeding," Nuclear Fusion, vol. 57, no. 2, 2017.
[237]
T. Eich et al., "ELM divertor peak energy fluence scaling to ITER with data from JET, MAST and ASDEX upgrade," Nuclear Materials and Energy, vol. 12, pp. 84-90, 2017.
[238]
G. F. Matthews et al., "Energy balance in JET," Nuclear Materials and Energy, vol. 12, pp. 227-233, 2017.
[241]
M. L. Reinke et al., "Expanding the role of impurity spectroscopy for investigating the physics of high-Z dissipative divertors," Nuclear Materials and Energy, vol. 12, pp. 91-99, 2017.
[242]
K. Heinola et al., "Experience on divertor fuel retention after two ITER-Like Wall campaigns," Physica Scripta, vol. T170, 2017.
[243]
[244]
F. Binda et al., "Generation of the neutron response function of an NE213 scintillator for fusion applications," Nuclear Instruments and Methods in Physics Research Section A : Accelerators, Spectrometers, Detectors and Associated Equipment, vol. 866, pp. 222-229, 2017.
[246]
M. G. Dunne et al., "Global performance enhancements via pedestal optimisation on ASDEX Upgrade," Plasma Physics and Controlled Fusion, vol. 59, no. 2, 2017.
[247]
A. C. Setiadi et al., "Gray-box modeling of resistive wall modes with vacuum-plasma separation and optimal control design for EXTRAP T2R," Fusion engineering and design, vol. 121, pp. 245-255, 2017.
[248]
P. Manas et al., "Gyrokinetic modeling of impurity peaking in JET H-mode plasmas," Physics of Plasmas, vol. 24, no. 6, 2017.
[249]
D. Tegnered et al., "Gyrokinetic simulations of particle transport in pellet fuelled JET discharges," Plasma Physics and Controlled Fusion, vol. 59, no. 10, 2017.
[251]
[252]
G. Telesca et al., "High power neon seeded JET discharges : Experiments and simulations," Nuclear Materials and Energy, vol. 12, pp. 882-886, 2017.
[253]
A. Bisoffi et al., "Hybrid cancellation of ripple disturbances arising in AC/DC converters," Automatica, vol. 77, pp. 344-352, 2017.
[254]
R. Villari et al., "ITER oriented neutronics benchmark experiments on neutron streaming and shutdown dose rate at JET," Fusion engineering and design, vol. 123, pp. 171-176, 2017.
[255]
E. Wolfrum et al., "Impact Of Wall Materials And Seeding Gases On The Pedestal And On Core Plasma Performance," NUCLEAR MATERIALS AND ENERGY, vol. 12, pp. 18-27, 2017.
[256]
E. Joffrin et al., "Impact of divertor geometry on H-mode confinement in the JET metallic wall," Nuclear Fusion, vol. 57, no. 8, 2017.
[257]
S. Wiesen et al., "Impact of the JET ITER-like wall on H-mode plasma fueling," Nuclear Fusion, vol. 57, no. 6, 2017.
[258]
[261]
M. Goniche et al., "Ion cyclotron resonance heating for tungsten control in various JET H-mode scenarios," Plasma Physics and Controlled Fusion, vol. 59, no. 5, 2017.
[263]
C. Guillemaut et al., "Main chamber wall plasma loads in JET-ITER-like wall at high radiated fraction," Nuclear Materials and Energy, vol. 12, pp. 234-240, 2017.
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Konferensbidrag

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Böcker

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Icke refereegranskade

Konferensbidrag

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Senaste synkning med DiVA:
2024-04-28 03:47:52