I.S. Tropin
Fermilab
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Publication
Featured researches published by I.S. Tropin.
Journal of Physics: Conference Series | 2018
I. L. Rakhno; N. V. Mokhov; I.S. Tropin; D. Ene
Activation of the soil surrounding the ESS accelerator tunnel calculated by the MARS15 code is presented. A detailed composition of the soil, that comprises about 30 different chemical elements, is considered. Spatial distributions of the produced activity are provided in both transverse and longitudinal direction. A realistic irradiation profile for the entire planned lifetime of the facility is used. The nuclear transmutation and decay of the produced radionuclides is calculated with the DeTra code which is a built-in tool for the MARS15 code. Radionuclide production by low-energy neutrons is calculated using the ENDF/B-VII evaluated nuclear data library. In order to estimate quality of this activation assessment, a comparison between calculated and measured activation of various foils in a similar radiation environment is presented.
Archive | 2017
Nilolai V. Mokhov; Igor Rakhno; I.S. Tropin
Electromagnetic and hadron showers generated by electrons of dark current (DC) can represent a significant radiation threat to the ILC linac equipment and personnel. In this study, a commissioning scenario is analysed which is considered as the worst-case scenario for the main linac regarding the DC contribution to the radiation environment in the tunnel. A normal operation scenario is analysed as well. An emphasis is made on radiation load to sensitive electronic equipment—cryogenic thermometers inside the cryomodules. Prompt and residual dose rates in the ILC main linac tunnels were also calculated in these new high-statistics runs. A novel approach was developed—as a part of general purpose Monte Carlo code MARS15—to model generation, acceleration and transport of DC electrons in electromagnetic fields inside SRF cavities. Comparisons were made with a standard approach when a set of precalculated DC electron trajectories is used, with a proper normalization, as a source for Monte Carlo modelling. Results of MARS15 Monte Carlo calculations, performed for the current main linac tunnel design, reveal that the peak absorbed dose in the cryogenic thermometers in the main tunnel for 20 years of operation is about 0.8 MGy. The calculated contact residual dose on cryomodules and tunnel walls in the main tunnel for typical irradiation and cooling conditions is 0.1 and 0.01 mSv/hr, respectively.
Progress in nuclear science and technology | 2014
N. Mokhov; Konstantin Gudima; Yury Eidelman; I.S. Tropin; S. Striganov; V. Pronskikh; Igor Rakhno; Alexander Konobeev; Pertti Aarnio
arXiv: Accelerator Physics | 2014
N. Mokhov; Yuri Alexahin; Vadim V. Kashikhin; S. Striganov; I.S. Tropin; Alexander V. Zlobin
Physical Review Special Topics-accelerators and Beams | 2015
N. Mokhov; I. L. Rakhno; I.S. Tropin; F. Cerutti; L. S. Esposito; Anton Lechner
Progress in nuclear science and technology | 2014
N. Mokhov; Sam Childress; Alexandr I. Drozhdin; V. Pronskikh; Diane Reitzner; I.S. Tropin; Kamran Vaziri
arXiv: Accelerator Physics | 2013
A.V. Zlobin; N. Mokhov; Yuri Alexahin; S. Striganov; I.S. Tropin; V.V. Kashikhin; V.V. Kappin
arXiv: Instrumentation and Detectors | 2018
N. Mokhov; I.S. Tropin; S. Striganov; T. Maruyama; T. Markiewicz
arXiv: Accelerator Physics | 2018
L. Lari; N. Mokhov; S.J. Dixon; Igor Rakhno; I.S. Tropin; C. Baffes; F. Cerutti; Luigi Salvatore Esposito
Archive | 2018
Igor Rakhno; I.S. Tropin