Academic literature on the topic 'High-current relativistic electron beam'

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Journal articles on the topic "High-current relativistic electron beam"

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Kiziridi P. P. and Ozur G.E. "Pulse energy of a non-relativistic, high-current electron beam." Technical Physics 92, no. 6 (2022): 740. http://dx.doi.org/10.21883/tp.2022.06.54421.316-21.

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Energetic characteristics of a high-current electron gun with a cathode assembly based on multi-gap initiation of explosive emission by dielectric surface flashover in the mode of vacuum and gas-filled diode were investigated. It has been shown that it is better to measure high-current electron beam pulse energy using a calorimetric (thermal imaging) method than to calculate it from the waveforms of accelerating voltage and beam current onto collector (target) since the beam current values may be essentially overstated because of decay current of a dense plasma emergent under the bombardment o
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Astrelint, V. T., P. Vrba, J. Ullschmied, and M. Člupek. "Numerical simulation of high current relativistic electron flow." Laser and Particle Beams 6, no. 3 (1988): 587–91. http://dx.doi.org/10.1017/s0263034600005516.

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We studied the electron beam generation in high-current diode with various cathode shapes and the beam propagation through vacuum or plasma delivered to metallic drift tube. The combined effect of external longitudinal and self-consistent azimuthal magnetic fields with the accelerating electric field is discussed. We are interested in obtaining the diode efficiency and beam characteristic in stationary state.
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Ram, Abhay K., Kyriakos Hizanidis, and Richard J. Temkin. "Current drive by high intensity, pulsed, electron cyclotron wave packets." EPJ Web of Conferences 203 (2019): 01009. http://dx.doi.org/10.1051/epjconf/201920301009.

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The nonlinear interaction of electrons with a high intensity, spatially localized, Gaussian, electro-magnetic wave packet, or beam, in the electron cyclotron range of frequencies is described by the relativistic Lorentz equation. There are two distinct sets of electrons that result from wave-particle interactions. One set of electrons is reflected by the ponderomotive force due to the spatial variation of the wave packet. The second set of electrons are energetic enough to traverse across the wave packet. Both sets of electrons can exchange energy and momentum with the wave packet. The trapping
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Strelkov, P. S., V. P. Tarakanov, I. E. Ivanov, and D. V. Shumeiko. "Dynamics of a high-current relativistic electron beam." Plasma Physics Reports 41, no. 6 (2015): 492–500. http://dx.doi.org/10.1134/s1063780x15060057.

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Duclous, R., J. P. Morreeuw, V. T. Tikhonchuk, and B. Dubroca. "Reduced multi-scale kinetic models for the relativistic electron transport in solid targets: Effects related to secondary electrons." Laser and Particle Beams 28, no. 1 (2010): 165–77. http://dx.doi.org/10.1017/s0263034610000042.

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AbstractA reduced mathematical model for the transport of high current relativistic electron beams in a dense collisional plasma is developed. Based on the hypothesis that the density of relativistic electrons is much less than the plasma density and their energy is much higher than the plasma temperature, a model with two energy scales is proposed, where the beam and plasma electrons are considered as two coupled sub-systems, which exchange the energy and particles due to collisions. The process of energy exchange is described in the Fokker-Planck approximation, where the pitch angle electron
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Füllekrug, M., R. Roussel-Dupré, E. M. D. Symbalisty, et al. "Relativistic electron beams above thunderclouds." Atmospheric Chemistry and Physics Discussions 11, no. 5 (2011): 15551–72. http://dx.doi.org/10.5194/acpd-11-15551-2011.

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Abstract. Non-luminous relativistic electron beams above thunderclouds are detected by radio remote sensing with low frequency radio signals from 40–400 kHz. The electron beams occur 2–9 ms after positive cloud-to-ground lightning discharges at heights between 22–72 km above thunderclouds. The positive lightning discharges also cause sprites which occur either above or before the electron beam. One electron beam was detected without any luminous sprite occurrence which suggests that electron beams may also occur independently. Numerical simulations show that the beamed electrons partially disc
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Füllekrug, M., R. Roussel-Dupré, E. M. D. Symbalisty, et al. "Relativistic electron beams above thunderclouds." Atmospheric Chemistry and Physics 11, no. 15 (2011): 7747–54. http://dx.doi.org/10.5194/acp-11-7747-2011.

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Abstract. Non-luminous relativistic electron beams above thunderclouds have been detected by the radio signals of low frequency ∼40–400 kHz which they radiate. The electron beams occur ∼2–9 ms after positive cloud-to-ground lightning discharges at heights between ∼22–72 km above thunderclouds. Intense positive lightning discharges can also cause sprites which occur either above or prior to the electron beam. One electron beam was detected without any luminous sprite which suggests that electron beams may also occur independently of sprites. Numerical simulations show that beams of electrons pa
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Karbushev, N. I., and E. V. Rostomyan. "Features of relativistic electron beam–plasma interaction under high beam current." Physics Letters A 372, no. 24 (2008): 4484–86. http://dx.doi.org/10.1016/j.physleta.2008.04.042.

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Totmeninov, E. M., I. V. Pegel, and V. P. Tarakanov. "Highly efficient X-band relativistic twistron." Laser and Particle Beams 34, no. 4 (2016): 601–5. http://dx.doi.org/10.1017/s0263034616000537.

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AbstractThe paper proposes a new scheme of high-power microwave oscillator of twistron type using a moderately relativistic high-current electron beam. In numerical experiment using axisymmetric version of the completely electromagnetic PiC code KARAT, a 56% conversion efficiency of electron beam power to electromagnetic radiation was demonstrated. With 340 kV accelerating voltage, 3.3 kA electron beam current, and 2.2 T guiding magnetic field strength, the simulated microwave power was 630 MW at 9.7 GHz. The “electronic efficiency” of the source reaches 66%.
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Debayle, A., and V. T. Tikhonchuk. "Target ionization by a high current relativistic monoenergetic electron beam." Physics of Plasmas 14, no. 7 (2007): 073104. http://dx.doi.org/10.1063/1.2749500.

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Dissertations / Theses on the topic "High-current relativistic electron beam"

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Debayle, Arnaud. "Theoretical study of Ultra High Intensity laser-produced high-current relativistic electron beam transport through solid targets." Thesis, Bordeaux 1, 2008. http://www.theses.fr/2008BOR13708/document.

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Cette thèse porte sur l’étude théorique du transport d’un faisceau intense d’électrons relativistes dans une cible solide. Dans la première partie nous présentons les interprétations théoriques d’une partie des résultats d’une campagne d’expérience portant sur la production et le transport d’électrons relativistes dans une cible d’aluminium. Nous y démontrons la prédominance des e?ets collectifs sur les e?ets collisionels dans la première dizaine de microns de propagation grâce à des modèles de transports déjà existant au début de cette thèse. Ces modèles deviennent insu?sants dans le cas du t
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Bazaleev, M. I., S. E. Donets, V. V. Lytvynenko, et al. "Optimization of Technology for Production of Bimetallic Compounds by High-current Relativistic Electron Beam Hardfacing of Nanostructured Coatings." Thesis, Sumy State University, 2013. http://essuir.sumdu.edu.ua/handle/123456789/35128.

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The mechanism of remote application of nanostructured coatings on metallic substrates is considered in the article. Spectroscopic studies of gas-plasma torch produced when the number of materials used in coatings is irradiated by the high-current relativistic electron beam have been carried out. The differences in the spectra for solid and tubular beams are determined. Measurements of the brightness temperature of gas plasma torch and the position of its maximum are obtained. Prospects of using high-current relativistic electron beams sources with pulse duration ~ (1 ... 2)10 – 6 s for t
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Coury, Mireille. "Generation and transport of high-current relativistic electron beams in high intensity laser-solid interactions." Thesis, University of Strathclyde, 2013. http://oleg.lib.strath.ac.uk:80/R/?func=dbin-jump-full&object_id=20410.

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In this thesis, the generation and transport of ultra-high intensity laser-driven relativistic electron beams in overdense plasma is investigated experimentally and numerically. The fast electron beam is experimentally diagnosed by means of a 2D Cu Ka imager and the TNSA-generated proton beam. Analytical models together with a 3D hybrid-PIC code are employed to simulate the beam properties in solids. The effects of the self-generated fields on the fast electron beam transport, the effect of the preplasma density scale length on the laser energy coupling to fast electrons and the influence of t
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Curatolo, C. "High brilliance photon pulses interacting with relativistic electron and proton beams." Doctoral thesis, Università degli Studi di Milano, 2016. http://hdl.handle.net/2434/358227.

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We present a detailed study of the interaction between relativistic electron beams and high intensity laser pulses aimed at the production, through Inverse Compton scattering, of high brilliance gamma rays. In particular, we focus on the simulations of the emitted photon beams for the Extreme Light Infrastructure Nuclear Physics Gamma Beam System. The machine, presently under construction, is designed to deliver gamma ray photon beams in the 0.2-19.5 MeV energy range characterized by unprecedented performances in terms of monochromaticity, brilliance, spectral density, tunability and polarizat
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Hu, Wen 1968. "Generation of coherent high-power microwave radiation with relativisitic electron beams." Thesis, Massachusetts Institute of Technology, 1994. http://hdl.handle.net/1721.1/28102.

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Gillingham, David R. "Self-consistent simulation of radiation and space-charge in high-brightness relativistic electron beams." College Park, Md. : University of Maryland, 2007. http://hdl.handle.net/1903/7213.

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Thesis (Ph. D.) -- University of Maryland, College Park, 2007.<br>Thesis research directed by: Physics. Title from t.p. of PDF. Includes bibliographical references. Published by UMI Dissertation Services, Ann Arbor, Mich. Also available in paper.
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Zhang, Xiangdong. "Surface modification of Ti- and Ni-base alloys by High Current Pulsed Electron Beam." Thesis, Metz, 2011. http://www.theses.fr/2011METZ008S.

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Modification de surface des alliages à base de Ti et de Ni par faisceau d'électrons de haute courant pulsé a été effectuée avec des intentions de la compréhension de la modification de la couche fondue et les mécanismes de pénétration de trempe que les deux devraient dépendre de la nature du matériau et son orientation. Il a été constaté que α 'ou α''martensite a été formée sur la surface Ti alliage traité. Le taux de refroidissement a été estimée en utilisant la taille des grains avant-β dans les alliages Ti TA15. Le niveau de stress induit par le traitement HCPEB a été estimée en utilisant l
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Panofski, Eva. "Beam Dynamics and Limits for High Brightness, High Average Current Superconducting Radiofrequency (SRF) Photoinjectors." Doctoral thesis, Humboldt-Universität zu Berlin, 2019. http://dx.doi.org/10.18452/19962.

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Zukünftige Beschleunigerprojekte und Nutzerexperimente erfordern für ihren Betrieb einen hochbrillanten Elektronenstrahl mit hohem mittlerem Strom. Eine Elektronenquelle mit dem Potential die Anforderungen erfüllen, ist ein supraleitender Hochfrequenz (SHF) Photoinjektor im Dauerstrichbetrieb. Die Strahldynamik eines solchen Photoinjektor Systems bestimmt die maximal zu erreichende Strahlbrillanz und wird ihrerseits von den Design und Betriebsparametern des Photoinjektors beeinflusst. Ziel ist immer die entscheidenden Design- und Betriebsparameter der Elektronenquelle hinsichtlich einer maxim
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Guyot, Coline. "Optimisation of electron beam performance for high peak current laser-plasma and multi-pass energy recovery accelerators with 6D tracking start-to-end simulations." Electronic Thesis or Diss., université Paris-Saclay, 2025. http://www.theses.fr/2025UPASP007.

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Dans la quête d'accélérateurs d'électrons plus compacts et moins consommateurs d'énergie, le courant crête tend à être augmenté pour différentes raisons. Dans le contexte de la thèse deux approches alternatives aux accélérateurs plus conventionnels sont explorées: laser-plasma et linacs à récupération d'énergie (ERL). Pour les accélérateurs à laser-plasma, le courant crête est dû à la durée extrêmement courte des paquets, tandis que pour le cas de l'ERL, le courant de crête est dû à la charge par paquet.Les faisceaux laser-plasma sont des faisceaux d'électrons atypiques en raison de leurs gran
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Zou, Jianxin. "Mécanismes fondamentaux du traitement de surfaces par bombardements électroniques pulsés : application aux matériaux métalliques et intermétalliques." Metz, 2007. http://docnum.univ-lorraine.fr/public/UPV-M/Theses/2007/Zou.Jianxim.SMZ0718.pdf.

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La technique de "High-Current Pulsed Electron Beam" (HCPEB) a été développée récemment pour le traitement de surface des matériaux. Des impulsions très courtes avec une importante densité d'énergie d'électrons induisent des cycles thermo-mécaniques ultra-rapides en surface. Ces cycles peuvent conduire à la fusion - voir éventuellement à l'évaporation - de la couche superficielle ainsi qu'à la formation d’un champ de contrainte dynamique qui est à l’origine d’une déformation intense en sous-couche. Ce manuscrit propose une revue des développements récents concernant la technique HCPEB qui ont é
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Books on the topic "High-current relativistic electron beam"

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United States. Defense Advanced Research Projects Agency. and Rand Corporation, eds. Soviet research on the transport of intense relativistic electron beams through high-pressure air. Rand, 1987.

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Book chapters on the topic "High-current relativistic electron beam"

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Lu, Guangwei, Yaojun Li, Xichen Hu, et al. "Divergence Angle Consideration in Energy Spread Measurement for High-Quality Relativistic Electron Beam in LWFA." In Springer Proceedings in Physics. Springer Nature Switzerland, 2024. http://dx.doi.org/10.1007/978-3-031-65913-3_10.

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Godfrey, B. B., and T. P. Hughes. "High-Current Electron-Beam Transport in Recirculating Accelerators." In High-Brightness Accelerators. Springer US, 1988. http://dx.doi.org/10.1007/978-1-4684-5508-3_12.

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Miller, R. B. "High-Current Electron-Beam Transport in Linear Induction Accelerators." In High-Brightness Accelerators. Springer US, 1988. http://dx.doi.org/10.1007/978-1-4684-5508-3_13.

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Hao, Sheng Zhi, B. Gao, Ai Min Wu, et al. "Surface Treatment of Materials with High Current Pulsed Electron Beam." In Materials Science Forum. Trans Tech Publications Ltd., 2005. http://dx.doi.org/10.4028/0-87849-960-1.3959.

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Qin, Ying, Zhen Fei Song, Chuang Dong, et al. "Thermodynamic Processes and Phenomena Induced by High Current Pulsed Electron Beam." In Materials Science Forum. Trans Tech Publications Ltd., 2007. http://dx.doi.org/10.4028/0-87849-462-6.2439.

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Qin, Ying, Chuang Dong, Xiao Gang Wang, et al. "Numerical Simulation and Experimental Evidence for Surface Modification by High Current Pulsed Electron Beam." In Materials Science Forum. Trans Tech Publications Ltd., 2005. http://dx.doi.org/10.4028/0-87849-960-1.3673.

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Baranchicov, E. I., G. S. Belenky, M. A. Deminsky, et al. "Investigation of SO2 Oxidation in Humid Air Stream by High Current Density Pulsed Electron Beam." In Non-Thermal Plasma Techniques for Pollution Control. Springer Berlin Heidelberg, 1993. http://dx.doi.org/10.1007/978-3-642-78476-7_7.

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Melnyk, Igor, Sergey Tyhai, and Alina Pochynok. "Universal Complex Model for Estimation the Beam Current Density of High Voltage Glow Discharge Electron Guns." In Advances in Information and Communication Technology and Systems. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-58359-0_18.

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Hao, Sheng Zhi, Ping Sheng Wu, Thierry Grosdidier, and Chuang Dong. "Surface Microstructure and Corrosion Resistance of 316L Stainless Steel after High Current Pulsed Electron Beam Treatment." In Materials Science Forum. Trans Tech Publications Ltd., 2007. http://dx.doi.org/10.4028/0-87849-462-6.2381.

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Froese, M., G. Gwinner, C. Champagne, et al. "A high-current electron beam ion trap as an on-line charge breeder for the high precision mass measurement TITAN experiment." In TCP 2006. Springer Berlin Heidelberg, 2007. http://dx.doi.org/10.1007/978-3-540-73466-6_31.

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Conference papers on the topic "High-current relativistic electron beam"

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Zaslavsky, V. Yu, I. V. Zheleznov, A. S. Sergeev, et al. "Sub-terahertz Planar Relativistic Surface-wave Oscillator with Two-dimensional Distributed Feedback Based on High-current Explosive Emission Electron Beam." In 2024 Photonics & Electromagnetics Research Symposium (PIERS). IEEE, 2024. http://dx.doi.org/10.1109/piers62282.2024.10618770.

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Leontyev, Alexander N., Edward B. Abubakirov, Andrey N. Denisenko, Kirill V. Mineev, and Roman M. Rozental. "Development of an Electron-Optical System for a High-Current Relativistic W-Band Gyrotron." In 2024 IEEE 25th International Conference of Young Professionals in Electron Devices and Materials (EDM). IEEE, 2024. http://dx.doi.org/10.1109/edm61683.2024.10615161.

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Zakharchenko, Sergey V., and Alexander G. Shein. "Gridless numeric simulation of high-current relativistic electron beams." In 2010 11th International Conference and Seminar of Young Specialists on Micro/Nanotechnologies and Electron Devices (EDM 2010). IEEE, 2010. http://dx.doi.org/10.1109/edm.2010.5568827.

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Balakirev, V. A., I. N. Onishchenko, and N. I. Onishchenko. "Low-frequency interaction of ion stream with the high-current relativistic electron beam." In 2003 13th International Crimean Conference 'Microwave and Telecommunication Technology' Conference Proceedings. IEEE, 2003. http://dx.doi.org/10.1109/crmico.2003.158962.

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Korovin, Sergei D., Sergei D. Polevin, Igor V. Pegel, et al. "High-power microwave Cherenkov oscillators with high-current relativistic electron beams." In XVI International Symposium on Discharges and Electrical Insulation in Vacuum, edited by Gennady A. Mesyats. SPIE, 1994. http://dx.doi.org/10.1117/12.174571.

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Fuks, Mikhail I. "On Measurements of the Basic Parameters of High-Current Relativistic Electron Beams." In BEAMS 2002: 14th International Conference on High-Power Particle Beams. AIP, 2002. http://dx.doi.org/10.1063/1.1530843.

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Sarkisov, G. S., V. V. Ivanov, P. Leblanc, et al. "Laser-driven relativistic electron beam interaction with solid dielectric." In INTERNATIONAL SYMPOSIUM ON HIGH POWER LASER ABLATION 2012. American Institute of Physics, 2012. http://dx.doi.org/10.1063/1.4739920.

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Monot, P., T. Auguste, P. Gibbon, et al. "Propagation of intense laser pulses in an underdense plasma." In High Resolution Fourier Transform Spectroscopy. Optica Publishing Group, 1994. http://dx.doi.org/10.1364/hrfts.1994.wa5.

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The new generation of short duration lasers provides pulses in excess of the terawatt level, that can be focused up to 1018 W/cm2 [1]. For such an intensity, the quiver motion of a free electron becomes relativistic and numerous new physical effects are expected, such as harmonic generation [2], particle acceleration [3] and relativistic self-focusing [4,5]. In order to observe these effects resulting from laser-electron interaction, a high electron density (Ne) is required. In fact, with regard to the small laser-electron interaction cross-section, a large number of electrons is needed for an
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Sinitsky, S. L., A. V. Arzhannikov, and A. V. Burdakov. "Studies of high-current relativistic electron beam interaction with gas and plasma in Novosibirsk." In THE PHYSICS OF PLASMA-DRIVEN ACCELERATORS AND ACCELERATOR-DRIVEN FUSION: The Proceedings of Norman Rostoker Memorial Symposium. AIP Publishing LLC, 2016. http://dx.doi.org/10.1063/1.4944024.

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Sattorov, M. A., H. C. Jung, S. H. Min, J. K. So, J. H. Won, and G. S. Park. "High power THz radiation from a cylindrical grating structure using a high current relativistic electron beam." In 2008 33rd International Conference on Infrared, Millimeter and Terahertz Waves (IRMMW-THz 2008). IEEE, 2008. http://dx.doi.org/10.1109/icimw.2008.4665579.

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Reports on the topic "High-current relativistic electron beam"

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Miller, J. D., R. F. Schneider, H. S. Uhm, K. T. Nguyen, and K. W. Struve. Pulse Shaping a High-Current Relativistic Electron Beam in Vacuum. Defense Technical Information Center, 1990. http://dx.doi.org/10.21236/ada230674.

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Nation, J. A. Collective acceleration of electrons and ions in a high current relativistic electron beam. Office of Scientific and Technical Information (OSTI), 1991. http://dx.doi.org/10.2172/6288975.

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Nation, J. Collective ion acceleration in high current relativistic electron beams. Office of Scientific and Technical Information (OSTI), 1990. http://dx.doi.org/10.2172/7248026.

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Nation, J. A. Collective acceleration of electrons and ions in a high current relativistic electron beam. Final report. Office of Scientific and Technical Information (OSTI), 1992. http://dx.doi.org/10.2172/203414.

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Nation, J. A. Collective acceleration of electrons and ions in a high current relativistic electron beam. Final report. Office of Scientific and Technical Information (OSTI), 1996. http://dx.doi.org/10.2172/167182.

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Miller, J. D., R. F. Schneider, D. J. Weidman, H. S. Uhm, and K. T. Nguyen. Plasma Wakefield Effects On High-Current Relativistic Electron Beam Transport In The Ion-Focused Regime. Defense Technical Information Center, 1992. http://dx.doi.org/10.21236/ada338876.

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Herrmannsfeldt, W. B. Electron trapping in high-current ion beam pipes. Office of Scientific and Technical Information (OSTI), 2000. http://dx.doi.org/10.2172/753312.

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Madey, John M. Research on the Physics of Ultra-High Brightness, Ultra-Relativistic Electron Beams. Defense Technical Information Center, 1995. http://dx.doi.org/10.21236/ada309669.

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Evtushenko, Pavel. Large dynamic range beam diagnostics and beam dynamics studies for high current electron LINACs. Office of Scientific and Technical Information (OSTI), 2016. http://dx.doi.org/10.2172/1467456.

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Paterson. A Vacuum Apparatus for Investigating Cathode Activity and Beam Formation in High Current Density Electron Guns. Defense Technical Information Center, 1999. http://dx.doi.org/10.21236/ada376897.

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