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EPJ Web of Conferences, ISSN 2100-014X, 2019, Volume 203, p. 1003
The wave physics of O-X conversion in overdense W7-X plasma is discussed. For this study, a new 3D, cold plasma full-wave code has been developed. The code... 
Cold plasmas | Conversion | Plasma (physics) | Three dimensional models | Graphics processing units | Wave physics
Journal Article
Physical Review Letters, ISSN 0031-9007, 04/2015, Volume 114, Issue 15, p. 155001
This Letter presents a rigorous kinetic theory for relativistic runaway electrons in the near critical electric field in tokamaks. The theory provides a... 
AVALANCHE | ION RUNAWAY | PHYSICS, MULTIDISCIPLINARY | FULLY IONIZED GAS | Thresholds | Time | Electron avalanche | Tokamaks | Kinetic theory | Electric fields | Hysteresis | Distribution functions
Journal Article
EPJ Web of Conferences, ISSN 2101-6275, 08/2017, Volume 149, p. 3007
Conference Proceeding
Nuclear Fusion, ISSN 0029-5515, 04/2015, Volume 55, Issue 4, pp. 43014 - 12
Runaway electrons (REs) generated during disruption events in tokamaks have to be mitigated to minimize the detrimental impact from their massive losses to... 
convective | runaway electrons | ray-tracing | tokamak | whistlers | ITER | micro-instabilities | PHYSICS, FLUIDS & PLASMAS | DEVICE | PHYSICS, NUCLEAR | Mathematical analysis | Instability | Stability analysis | Reflection | Tokamak devices | Trajectories | Boundaries | Walls
Journal Article
Computer Physics Communications, ISSN 0010-4655, 08/2019, Volume 241, pp. 40 - 47
A new 3D full-wave code, named CUWA, is developed to investigate the physics of RF wave propagation in the electron cyclotron frequency range in magnetised... 
OXB | Full-wave | Stellarator | FDTD | Mode conversion | SCHEME | COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS | CONVERSION | PHYSICS, MATHEMATICAL | POLARIZATION | PROPAGATION | Magnetic fields | Analysis | Wave propagation
Journal Article
Nuclear Fusion, ISSN 0029-5515, 02/2017, Volume 57, Issue 4, p. 46009
This work provides a systematic description of electron kinetics during impurity dominated thermal quenches. A Fokker-Planck equation for the hot electrons and... 
runaway electrons | plasma | thermal quench | AVALANCHE | MODEL | PHYSICS, FLUIDS & PLASMAS | Physics
Journal Article
JOURNAL OF PLASMA PHYSICS, ISSN 0022-3778, 01/2019, Volume 85, Issue 1
The injection of cryogenic pellets into a magnetically confined plasma is shown to be accompanied by a considerable transfer of thermal energy from the... 
PHYSICS, FLUIDS & PLASMAS | plasma heating | fusion plasma | Plasma | Cold | Energy | Heating | Injection | Plasmas | Magnetic fields | Estimates | Electric fields | Thermal energy
Journal Article
EPJ Web of Conferences, ISSN 2100-014X, 2019, Volume 203, p. 1006
In the present work, an ECRH scenario with reduced magnetic field 1.75 T is considered. For 140 GHz, this field corresponds to X3 heating. The high mirror-ratio... 
Heating | Plasmas
Journal Article
Earth System Science Data, ISSN 1866-3516, 09/2019, Volume 11, Issue 3, pp. 1463 - 1481
Journal Article
NUCLEAR FUSION, ISSN 0029-5515, 08/2019, Volume 59, Issue 8, p. 83001
Of all electrons, runaway electrons have long been recognized in the fusion community as a distinctive population. They now attract special attention as a part... 
ENERGY | runaway avalanche | CYCLOTRON EMISSION | PHYSICS, FLUIDS & PLASMAS | current quench | FIELD | SYNCHROTRON-RADIATION | MAGNETIC RECONNECTION | thermal quench | MHD STABILITY | TRANSPORT | PLASMA | hot tail | GENERATION | disruption mitigation
Journal Article
Physical Review Letters, ISSN 0031-9007, 06/2017, Volume 118, Issue 25, p. 255002
Novel spatial, temporal, and energetically resolved measurements of bremsstrahlung hard-x-ray (HXR) emission from runaway electron (RE) populations in tokamaks... 
AVALANCHE | PHYSICS, MULTIDISCIPLINARY | 70 PLASMA PHYSICS AND FUSION TECHNOLOGY
Journal Article
by Pedersen, T Sunn and Otte, M and Lazerson, S and Helander, P and Bozhenkov, S and Biedermann, C and Klinger, T and Wolf, R C and Bosch, H S and Abramovic, I Ivana and Äkäslompolo, Simppa and Aleynikov, P and Aleynikova, K and Ali, A and Alonso, A Antia and Anda, Gabor and Aneeva, T and Ascasibar, Enrique and Baldzuhn, J and Banduch, Martin and Barbui, T and Beidler, Craig and Benndorf, Anee and Beurskens, MNA Marc and Biel, W and Birus, Dietrich and Blackwell, B D and Blanco, Emilio and Blatzheim, Marko and Bluhm, Torsten and Böckenhoff, Daniel and Bolgert, Peter and Borchardt, Matthias and Böttger, Lukas Georg and Brakel, R and Brandt, Ch and Bräuer, T and Braune, H and Burhenn, R and Buttenschön, B and Bykov, Victor and Calvo, I and Cappa, A and Carls, Ane and Carvalho, B and Castejon, Francisco and Cianciosa, M and Cole, Michael and Costea, Stefan and Cseh, G and Czarnecka, A and Da Molin, A and La Cal, De, Eduardo and La Pena, De, Angel and Degenkolbe, Sven and Dhard, Chana Prakash and Dinklage, A and Dostal, Marion and vlak, Michael and welow, Peter and ws, P and Dudek, Anzej and Durodie, Frederic and Dzikowicka, A and Eeten, Paul Von and Effenberg, F and Endler, M and Erckmann, V and Estrada, T and Fahrenkamp, Nils and Fellinger, JEJ and Feng, Yühe and Figacz, Waldemar and Ford, O and Fornal, T and Frerichs, H and Fuchert, G and Garcia-Munoz, Manuel and Geiger, B and Geiger, J and Gierse, Niels and Gogoleva, Alena and Gonçalves, B and Gradic, Dorothea and Grahl, Michael and Groß, Silvia and Grote, Heinz and Grulke, O and Guerard, Carlos and Haas, Matthias and Harris, Jeffrey and Hartfuß, H J and Hartmann, Dirk A and Hathiramani, D and Hein, Bernd and Heirnich, Stefan and Henneberg, Sophia and Hennig, Christine and Hernandez, Julio and Hidalgo, Carlos and ... and Wendelstein 7-X Team and The Wendelstein 7-X Team and Princeton Plasma Physics Lab. (PPPL), Princeton, NJ (United States) and Los Alamos National Lab. (LANL), Los Alamos, NM (United States)
Nature Communications Nature Communications Nature Communications Nature Communications Nature Communications Nature Communications Nature Communications Nature Communications Nature Communications Nature Communications Nature Communications Nature Communications, ISSN 2041-1723, 2016, Volume 7, Issue 1, p. 13493
Fusion energy research has in the past 40 years focused primarily on the tokamak concept, but recent advances in plasma theory and computational power have led... 
STELLARATOR | MULTIDISCIPLINARY SCIENCES | SURFACES | TORSATRON | 70 PLASMA PHYSICS AND FUSION TECHNOLOGY | surfaces | nuclear fusion and fission | stellarator | torsatron | Magnetic Fusion Energy | magnetically confined plasmas
Journal Article
Journal of International Pharmaceutical Research, ISSN 1674-0440, 2018, Volume 45, pp. 450 - 453
Journal Article
Earth System Science Data Discussions, ISSN 1866-3591, 10/2018, pp. 1 - 31
Abstract. The study presents a dataset on long-term complex glaciological, hydrological, meteorological observations and isotopes sampling in an extremely... 
Journal Article
42nd European Physical Society Conference on Plasma Physics, EPS 2015, 2015
Conference Proceeding
Computational Materials Science, ISSN 0927-0256, 2003, Volume 28, Issue 2, pp. 107 - 124
The paper describes molecular-dynamic modules and the graphical user interface of the computer code - SAGE MD. Algorithms for numerical solution of equations... 
Molecular simulation | Computer code | Interatomic potentials | Molecular dynamics method | computer code | CLASSICAL FLUIDS | DEFECTS | molecular simulation | MATERIALS SCIENCE, MULTIDISCIPLINARY | SILICON | IMPURITIES | PRESSURE | ALUMINUM | interatomic potentials | METALS | molecular dynamics method | SIMULATIONS | COMPUTER EXPERIMENTS | SHOCK HUGONIOT
Journal Article
Proc. of the IADIS Int. Conf. Computer Graphics, Visualization, Computer Vision and Image Processing 2011, Part of the IADIS Multi Conf. on Computer Science and Information Systems 2011, MCCSIS 2011, 2011, pp. 255 - 259
Conference Proceeding
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