Shielding of energy deposition by ablation of plastics under intense pulsed ion beam irradiation; Vacuum; Vol. 174
| Parent link: | Vacuum Vol. 174.— 2020.— [109205, 9 p.] |
|---|---|
| Співавтор: | Национальный исследовательский Томский политехнический университет Инженерная школа новых производственных технологий Научно-производственная лаборатория "Импульсно-пучковых, электроразрядных и плазменных технологий" |
| Інші автори: | Yu Xiao, Zhang Shijian, Zhang Nan, Zhong Haowen, Liang Guoying, Xu Mofei, Ren Jianhui, Kuang Shicheng, Yan Sha, Remnev G. E. Gennady Efimovich, Le Xiaoyun |
| Резюме: | Title screen With high power density in solid targets, intense pulsed ion beam with a pulse length of hundreds of ns and cross-sectional energy density of several J/cm2 may induce surface ablation and this effect can be used for thin-film preparation and nanopowder synthesis. Nevertheless, with ablation by the pulsed ion beam, the energy deposition of ions in targets may be affected and this further toughens the analysis of ablation and related material response in applications and ion beam diagnostics. In this study, the energy deposition of nanosecond pulsed ion beam composed of protons and carbon ions on stainless steel and plastics on BIPPAB-450 pulsed ion beam accelerator was investigated with infrared diagnostics. It is revealed that on plastics, under nanosecond IPIB irradiation with energy density of 1.5 J/cm2, ablation plume can be formed at the beginning stage of beam irradiation and the ablation plume may impose strong stopping to the ions in the pulsed ion beam and thus the energy deposition of the ion beam is shielded from reaching the target with over 80% of the beam energy screened. The influence of this energy shielding effect on applications such as beam measurement and material treatment was discussed reasonably. Режим доступа: по договору с организацией-держателем ресурса |
| Мова: | Англійська |
| Опубліковано: |
2020
|
| Предмети: | |
| Онлайн доступ: | https://doi.org/10.1016/j.vacuum.2020.109205 |
| Формат: | Електронний ресурс Частина з книги |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=663738 |
Схожі ресурси
Ablation induced by intense pulsed ion beam and its effects on energy deposition on solid target; Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms; Vol. 461
Опубліковано: (2019)
Опубліковано: (2019)
The ablation of plastics by intense pulsed ion beam; Surface and Coatings Technology; Vol. 384
Опубліковано: (2020)
Опубліковано: (2020)
Influence of ablation on energy deposition in polymer material under irradiation of intense pulsed ion beam; Acta Physica Sinica; Vol. 69, iss. 11
Опубліковано: (2020)
Опубліковано: (2020)
The Influence of Metal Surface Topography on Ablation Behavior During Intense Pulsed Ion Beam Irradiation; Surface Modification of Materials by Ion Beams (SMMIB-2019)
Опубліковано: (2019)
Опубліковано: (2019)
Mixing in TI/STEEL system under High-intensity pulsed ion beam impact; High Temperature Material Processes: An International Quarterly of High-Technology Plasma Processes; Vol. 26, iss. 1
Опубліковано: (2022)
Опубліковано: (2022)
DIN 1.7035 Steel Modification with High Intensity Nitrogen Ion Implantation; Russian Physics Journal; Vol. 61, iss. 2
Опубліковано: (2018)
Опубліковано: (2018)
Visualization and analysis of pulsed ion beam energy density profile with infrared imaging; Infrared Physics & Technology; Vol. 89
за авторством: Egorova Yu. I. Yulia Ivanovna
Опубліковано: (2018)
за авторством: Egorova Yu. I. Yulia Ivanovna
Опубліковано: (2018)
Plasma-immersion formation of high-intensity gaseous ion beams; Vacuum; Vol. 165
Опубліковано: (2019)
Опубліковано: (2019)
Effect on microstructure of Fe80B13Si7 metallic glass irradiated by high intensity pulsed ion beam and He ions; Surface and Coatings Technology; Vol. 449
Опубліковано: (2022)
Опубліковано: (2022)
Effect on mechanics properties and microstructure of molybdenum by high intensity pulsed ion beam irradiation; Surface and Coatings Technology; Vol. 384
Опубліковано: (2020)
Опубліковано: (2020)
Surface microstructure and phase structure of zirconia ceramics under intense pulsed ion beam irradiation; Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms; Vol. 542
Опубліковано: (2023)
Опубліковано: (2023)
Study of phase transformation and surface microstructure of alumina ceramic under irradiation of intense pulsed ion beam; Vacuum; Vol. 187
Опубліковано: (2021)
Опубліковано: (2021)
A method of real-time monitoring beam output stability of intense pulsed ion beam; Acta Physica Sinica; Vol. 72, iss. 17
Опубліковано: (2023)
Опубліковано: (2023)
Effect of Preliminary Irradiation of 321 Steel Substrates with High-Intense Pulsed Ion Beams on Scratch Test Results of Subsequently Deposited AlN Coatings; Coatings; Vol. 11, iss. 10
Опубліковано: (2021)
Опубліковано: (2021)
High-intensity pulsed ion beam focusing by its own space charge; Laser and Particle Beams; Vol. 36, iss. 4
Опубліковано: (2018)
Опубліковано: (2018)
Influence of magnetic field of a radial focusing external magnetically insulated diode on emission behavior of intense pulsed ion beam; Nuclear Instruments and Methods in Physics Research B; Vol. 537
Опубліковано: (2023)
Опубліковано: (2023)
Effects on structure and properties of Zr55Al 10Cu30Ni5 metallic glass irradiated by high intensity pulsed ion beam; Applied Surface Science; Vol. 313
Опубліковано: (2014)
Опубліковано: (2014)
Focusing of intense pulsed ion beam by magnetically insulated diode for material research; Surface and Coatings Technology; Vol. 384
Опубліковано: (2020)
Опубліковано: (2020)
Modification of the WC-Co carbide surface with high-intensity pulsed ion beam; Journal of Physics: Conference Series; Vol. 1588 : Low Temperature Plasma during the Deposition of Functional Coatings
Опубліковано: (2020)
Опубліковано: (2020)
Study of the Regularities of Low- and Super-Low-Energy High-intensity Metal Ion Beams Formation; Energy Fluxes and Radiation Effects (EFRE-2020 online)
Опубліковано: (2020)
Опубліковано: (2020)
Investigation of the Features of High-Intensity Implantation of Nitrogen Ions into Titanium; Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques; Vol. 17, s. 1
Опубліковано: (2023)
Опубліковано: (2023)
Features of titanium ion beams formation taking into account ion-electron emission realizing the synergy of high-intensity ion implantation and pulsed energy impact on the surface; Materials. Technologies. Design; Т. 5, № 4 (14)
за авторством: D. O. Dimitry Olegovich
Опубліковано: (2023)
за авторством: D. O. Dimitry Olegovich
Опубліковано: (2023)
Surface Modification of ZrO2-3Y2O3 with Highintensity Pulsed N2+ Ion Beams; Russian Physics Journal; Vol. 63, iss. 1
Опубліковано: (2020)
Опубліковано: (2020)
Formation of nanoscale carbon structures in the surface layer of metals under the impact of high intensity ion beam; Applied Surface Science; Vol. 310
Опубліковано: (2014)
Опубліковано: (2014)
Thermal field induced by intense pulsed ion beam and its possible application in thermal diffusivity measurement; Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms; Vol. 409
Опубліковано: (2017)
Опубліковано: (2017)
Changing Mechanisms of High-Temperature Oxidation of Zr-1%Nb Alloy in Air and Steam by Surface Modification with Charged Particles; Journal of Materials Engineering and Performance; Vol. 34, iss. 13
Опубліковано: (2025)
Опубліковано: (2025)
Study on the damage of Zr63.5Cu23Al9Fe4.5 amorphous and crystalline alloys irradiated by high intensity pulsed ion beam; Journal of Alloys and Compounds; Vol. 923
Опубліковано: (2022)
Опубліковано: (2022)
Study on the damage of Fe80B13Si7 alloy with different structure by high-intensity pulsed ion beam irradiation; Surface and Coatings Technology; Vol. 395
Опубліковано: (2020)
Опубліковано: (2020)
Microstructure Formation and Mechanical Properties of Metastable Titanium-Based Gradient Coating Fabricated via Intense Pulse Ion Beam Melt Mixing; Materials; Vol. 16, iss. 8
Опубліковано: (2023)
Опубліковано: (2023)
High-Intensity Implantation With an Ion Beam's Energy Impact on Materials; IEEE Transactions on Plasma Science; Vol. 49, iss. 9
за авторством: Ryabchikov A. I. Aleksandr Ilyich
Опубліковано: (2021)
за авторством: Ryabchikov A. I. Aleksandr Ilyich
Опубліковано: (2021)
Study on thermal shock irradiation resistance of CoCrFeMnNi high entropy alloy by high intensity pulsed ion beam; Journal of Nuclear Materials; Vol. 559
Опубліковано: (2022)
Опубліковано: (2022)
Investigation of the effects of an intense pulsed ion beam on the surface melting of IN718 superalloy prepared with selective laser melting; Metals; Vol. 10, iss. 9
Опубліковано: (2020)
Опубліковано: (2020)
The influence of ion irradiation on the properties of ceramic silicon carbide; Energy Fluxes and Radiation Effects (EFRE-2016)
Опубліковано: (2016)
Опубліковано: (2016)
Structure and Properties of Biodegradable PLLA/ZnO Composite Membrane Produced via Electrospinning; Materials; Vol. 14, iss. 1
Опубліковано: (2021)
Опубліковано: (2021)
Energy spectrum analysis for intense pulsed electron beam; Laser and Particle Beams; Vol. 34, iss. 4
Опубліковано: (2016)
Опубліковано: (2016)
Surface Modification of ZrO[2] -3Y[2]O[3] Ceramics with High-Intensity Pulsed N{2+} Ion Beams; Surface Modification of Materials by Ion Beams (SMMIB-2019)
Опубліковано: (2019)
Опубліковано: (2019)
Features of High-Intensity Implantation of Chromium into Zr1%Nb Alloy Using a High-Power Density Repetitively-Pulsed Ion Beam; Journal of Surface Investigation: X-ray, Synchrotron and Neutron Techniques; Vol. 19, iss. 4
Опубліковано: (2025)
Опубліковано: (2025)
Laser-synthesized TiN nanoparticles for biomedical applications: Evaluation of safety, biodistribution and pharmacokinetics; Materials Science and Engineering: C; Vol. 120
Опубліковано: (2021)
Опубліковано: (2021)
Explosive Effervescence and Ablation of Polymethyl Methacrylate Under Irradiation with a Self-Focusing High-Current Electron Beam; Russian Physics Journal; Vol. 66, iss. 2
Опубліковано: (2023)
Опубліковано: (2023)
High-intensity ion beams with submillisecond duration for synergistic of ion implantation and energy impact on the surface; Energy Fluxes and Radiation Effects (EFRE); International Conference on Modification of Materials with Particle Beams and Plasma Flows (16th CMM)
Опубліковано: (2022)
Опубліковано: (2022)
Схожі ресурси
-
Ablation induced by intense pulsed ion beam and its effects on energy deposition on solid target; Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms; Vol. 461
Опубліковано: (2019) -
The ablation of plastics by intense pulsed ion beam; Surface and Coatings Technology; Vol. 384
Опубліковано: (2020) -
Influence of ablation on energy deposition in polymer material under irradiation of intense pulsed ion beam; Acta Physica Sinica; Vol. 69, iss. 11
Опубліковано: (2020) -
The Influence of Metal Surface Topography on Ablation Behavior During Intense Pulsed Ion Beam Irradiation; Surface Modification of Materials by Ion Beams (SMMIB-2019)
Опубліковано: (2019) -
Mixing in TI/STEEL system under High-intensity pulsed ion beam impact; High Temperature Material Processes: An International Quarterly of High-Technology Plasma Processes; Vol. 26, iss. 1
Опубліковано: (2022)