Modification effects of microsecond high current electron beam exposure on titanium VT22 alloy
Titanium VT22 alloy was irradiated in the TEMP-A accelerator with the high current electron beam with the energy of 350 keV, beam current of 2 kA, pulse length around 4 µs, and beam diameter of 45 mm. The irradiation was performed for three samples with 1 to 3 pulses separately. Numeric simulations...
Saved in:
| Published in: | Вопросы атомной науки и техники |
|---|---|
| Date: | 2019 |
| ISSN: | 1562-6016 |
| Main Authors: | Donets, S.Ye., Klepikov, V.F., Lytvynenko, V.V., Prokhorenko, E.M., Startsev, O.A., Lonin, Yu.F., Ponomarev, A.G., Uvarov, V.T., Starovoytov, R.I. |
| Format: | Article |
| Language: | English |
| Published: |
Національний науковий центр «Харківський фізико-технічний інститут» НАН України
2019
|
| Subjects: | |
| Online Access: | https://nasplib.isofts.kiev.ua/handle/123456789/195180 |
| Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
| Journal Title: | Digital Library of Periodicals of National Academy of Sciences of Ukraine |
| Cite this: | Modification effects of microsecond high current electron beam exposure on titanium VT22 alloy / S.Ye. Donets, V.F. Klepikov, V.V. Lytvynenko, E.M. Prokhorenko, O.A. Startsev, Yu.F. Lonin, A.G. Ponomarev, V.T. Uvarov, R.I. Starovoytov // Problems of atomic science and technology. — 2019. — № 4. — С. 174-178. — Бібліогр.: 14 назв. — англ. |
Institution
Digital Library of Periodicals of National Academy of Sciences of UkraineSimilar Items
Surface modification of the titanium alloy VT22 by high current pulsed electron beam
by: Donets, S.Ye., et al.
Published: (2022)
by: Donets, S.Ye., et al.
Published: (2022)
Physical and mechanical properties of titanium alloy VT1-0 after high-current electron beam irradiation
by: Klepikov, V.F., et al.
Published: (2015)
by: Klepikov, V.F., et al.
Published: (2015)
Modification of the aluminum alloy by the radiation and mechanical treatment
by: Donets, S.E., et al.
Published: (2020)
by: Donets, S.E., et al.
Published: (2020)
Aluminum surface coating of copper using highcurrent electron beam
by: Donets, S.E., et al.
Published: (2015)
by: Donets, S.E., et al.
Published: (2015)
Application of radiation processes for testing of gas turbine blades
by: Bazaleev, M.I., et al.
Published: (2019)
by: Bazaleev, M.I., et al.
Published: (2019)
The use of high-current relativistic electron beams for the study of the effects of ionizing radiation on materials storage RAW
by: Klepikov, V.F., et al.
Published: (2016)
by: Klepikov, V.F., et al.
Published: (2016)
Behavior of molybdenum target in condition of irradiation by the high current relativistic electron beam
by: Donets, S.E., et al.
Published: (2018)
by: Donets, S.E., et al.
Published: (2018)
Dynamics of the gas-plasma torch formed by the highcurrent electron beam action on solid targets
by: Klepikov, V.F., et al.
Published: (2009)
by: Klepikov, V.F., et al.
Published: (2009)
Electrolysite-plasma smoothing of relief on targets modified by a high-current relativistic electron beam
by: Starovoytov, R.I., et al.
Published: (2018)
by: Starovoytov, R.I., et al.
Published: (2018)
Restoration surfacing of parts of titanium alloy VT22
by: V. P. Prilutskij, et al.
Published: (2017)
by: V. P. Prilutskij, et al.
Published: (2017)
Strengthening of the surface of steel (9XФМ) exposed to a high-current electron beam
by: Prokhorenko, E.M., et al.
Published: (2020)
by: Prokhorenko, E.M., et al.
Published: (2020)
The simulation of emergency action on construction materials by high current relativistic electron beams
by: Donets, S.E., et al.
Published: (2023)
by: Donets, S.E., et al.
Published: (2023)
Testing of gas-turbine blades engines using the accelerator of high current relativistic electrons
by: Ye. Donets, et al.
Published: (2020)
by: Ye. Donets, et al.
Published: (2020)
Microsecond microwave generation in the diode and accompanying phenomena
by: Yuferov, V.B., et al.
Published: (2000)
by: Yuferov, V.B., et al.
Published: (2000)
Features of fracture of high-strength VT22 titanium bolts
by: O. M. Ivasyshyn, et al.
Published: (2015)
by: O. M. Ivasyshyn, et al.
Published: (2015)
The particularities of the high current relativistic electron beams influence on construction materials targets
by: Batracov, А.B., et al.
Published: (2013)
by: Batracov, А.B., et al.
Published: (2013)
The influence of initial structure on VT22 titanium alloy nitriding
by: O. H. Lukianenko, et al.
Published: (2019)
by: O. H. Lukianenko, et al.
Published: (2019)
Modification of structure of the surface of steel (ХГС) as a result of influences of high-current electron beam
by: Prokhorenko, E.M., et al.
Published: (2020)
by: Prokhorenko, E.M., et al.
Published: (2020)
Development of a pulsed bremsstrahlung source on a base of a nanosecond and microsecond REB accelerators
by: Batrakov, A.B., et al.
Published: (2004)
by: Batrakov, A.B., et al.
Published: (2004)
Spark treatment of VT22 alloy by chromium and tungsten electrode materials
by: O. V. Paustovskyi, et al.
Published: (2011)
by: O. V. Paustovskyi, et al.
Published: (2011)
Analysis of changes in the phase and structural state of an aluminum alloy 1933 surface layer, melted by a pulsed electron beam
by: Myla, D.E., et al.
Published: (2020)
by: Myla, D.E., et al.
Published: (2020)
Modification of the D16 aluminum alloy structure by pulsed relativistic electron beam
by: Klepikov, V.F., et al.
Published: (2001)
by: Klepikov, V.F., et al.
Published: (2001)
Morphological characteristics of craters on the surface of AA1933 aluminum alloy irradiated by pulsed electron beam
by: Bryukhovetsky, V.V., et al.
Published: (2023)
by: Bryukhovetsky, V.V., et al.
Published: (2023)
Filler flux-cored wire for TIG welding and surfacing of titanium alloy VT22
by: S. V. Akhonin, et al.
Published: (2019)
by: S. V. Akhonin, et al.
Published: (2019)
Producing of high-strength titanium alloy VT22 by method of electron beam melting
by: S. V. Akhonin, et al.
Published: (2018)
by: S. V. Akhonin, et al.
Published: (2018)
Influence of rare-earth elements on structure and properties of welds of titanium alloy VT22
by: S. L. Shvab, et al.
Published: (2018)
by: S. L. Shvab, et al.
Published: (2018)
Wear-resistance of titanium alloy VT22 after nitriding combined with thermal treatment
by: I. M. Pohreliuk, et al.
Published: (2016)
by: I. M. Pohreliuk, et al.
Published: (2016)
Cavitation resistance of metal coatings deposited by a high-current relativistic electron beam
by: Ju. F. Lonin, et al.
Published: (2010)
by: Ju. F. Lonin, et al.
Published: (2010)
Argon arc welding of titanium alloy VT22 by using filler flux-cored wire
by: V. P. Prilutskij, et al.
Published: (2016)
by: V. P. Prilutskij, et al.
Published: (2016)
Features of the structure of weld metal at restoration argon-arc surfacing of titanium alloy VT22
by: S. L. Shvab, et al.
Published: (2020)
by: S. L. Shvab, et al.
Published: (2020)
Effect of low-temperature oxidation and oxinitration on the VT22 titanium alloy fretting corrosion
by: O. I. Dukhota, et al.
Published: (2012)
by: O. I. Dukhota, et al.
Published: (2012)
Features of the microsecond pulsed discharge ignition in oxygen in a point-to-plane configuration
by: Mankovskyi, S.M., et al.
Published: (2018)
by: Mankovskyi, S.M., et al.
Published: (2018)
Kinetics of thermodiffusion saturation of VT22 titanium alloy by nitrogen in a temperature range of 800…950?S
by: V. M. Fedirko, et al.
Published: (2013)
by: V. M. Fedirko, et al.
Published: (2013)
Metal containing composition materials for radiation protection
by: Prokhorenko, E.M., et al.
Published: (2014)
by: Prokhorenko, E.M., et al.
Published: (2014)
Performance ratio hardness characteristics polystyrene-metal composite materials
by: Klepikov, V.F., et al.
Published: (2015)
by: Klepikov, V.F., et al.
Published: (2015)
Application of methods of mathematical modeling for determining of radiation-protective characteristics of polystyrene-metal composite materials
by: Klepikov, V.F., et al.
Published: (2016)
by: Klepikov, V.F., et al.
Published: (2016)
Control of macroscopic characteristics of composite materials for radiation protection
by: Klepikov, V.F., et al.
Published: (2015)
by: Klepikov, V.F., et al.
Published: (2015)
Influence of VT22 alloy structural factors on surface hardening during deformation-diffusion treatment
by: I. M. Pohreliuk, et al.
Published: (2017)
by: I. M. Pohreliuk, et al.
Published: (2017)
Formation of the high-intensity microsecond flow of electrons in the channel of high pressure arc discharge
by: Volkolupov, Yu.Ya., et al.
Published: (2000)
by: Volkolupov, Yu.Ya., et al.
Published: (2000)
Optimization of the energy release of a high-current relativistic electron beam in the modification of the surface of stainless steel
by: S. E. Donets, et al.
Published: (2010)
by: S. E. Donets, et al.
Published: (2010)
Similar Items
-
Surface modification of the titanium alloy VT22 by high current pulsed electron beam
by: Donets, S.Ye., et al.
Published: (2022) -
Physical and mechanical properties of titanium alloy VT1-0 after high-current electron beam irradiation
by: Klepikov, V.F., et al.
Published: (2015) -
Modification of the aluminum alloy by the radiation and mechanical treatment
by: Donets, S.E., et al.
Published: (2020) -
Aluminum surface coating of copper using highcurrent electron beam
by: Donets, S.E., et al.
Published: (2015) -
Application of radiation processes for testing of gas turbine blades
by: Bazaleev, M.I., et al.
Published: (2019)