Ultrafast microstructure modification by pulsed electron beam to enhance surface performance
Yanfei Geng
1, 2, 3
,
Irina Panchenko
3
,
Evgeny Prusov
4
,
Xizhang Chen
1, 3
,
Sergey V. Konovalov
1, 2, 3
,
Yurii P. Ivanov
5
,
Vladislav B Deev
6, 7
1
5
6
Publication type: Journal Article
Publication date: 2022-03-01
scimago Q1
wos Q1
SJR: 1.211
CiteScore: 10.2
Impact factor: 6.1
ISSN: 02578972, 18793347
Materials Chemistry
Surfaces, Coatings and Films
General Chemistry
Condensed Matter Physics
Surfaces and Interfaces
Abstract
Pulsed electron beam surface treatment was used to enhance the microstructure and surface mechanical properties . After treatments with different electron beam energy densities , the microstructure and nano-structure of additively manufactured Al-Mg alloys were evaluated by scanning and transmission electron microscopy . At high E s (15 J/cm 2 ) treatment, there is around 30–35 μm melting layer and the new second phase with complex elemental composition (Mn 4.6 Fe 0.4 Si 3 ) in the surface modification layer. Thermal stress within different E s has a different effect on the second phase and dislocations, and the thermal stress in high E s improves the dissolution of submicron-sized inclusions presented in the initial state to form new particles. KAM (Kernel Average Misorientation) maps and calculated values prove that the electron beam irradiation increases the degree of local misorientation and surface stress. As E s is up to 15 J/cm 2 , the value of KAM and stress, as well as the dislocation, is the maximum. The formation of subgrains and precipitates with complex elemental composition after irradiation has comprehensive effects on the nano-hardness, wear rate and friction coefficient . It reveals that the nano-hardness and the friction coefficient of samples irradiated by 15 J/cm 2 have the highest and the lowest values, respectively. • Irradiation less than 10 J/cm 2 generates “ heating mode”, while at irradiation greater than 15 J/cm 2 , “melting mode” happens. • Metastable precipitates have formed due to the dissolution of submicron-sized inclusions under melting mode. • Along with the E s increasing, it leads to the increase of stress on the irradiated layer. • The decreasing friction coefficient and increasing the nano-hardness is associated with the rising E s .
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16
Total citations:
16
Citations from 2024:
11
(68.75%)
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Geng Y. et al. Ultrafast microstructure modification by pulsed electron beam to enhance surface performance // Surface and Coatings Technology. 2022. Vol. 434. p. 128226.
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Geng Y., Panchenko I., Prusov E., Chen X., Konovalov S. V., Ivanov Y. P., B Deev V. Ultrafast microstructure modification by pulsed electron beam to enhance surface performance // Surface and Coatings Technology. 2022. Vol. 434. p. 128226.
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TY - JOUR
DO - 10.1016/j.surfcoat.2022.128226
UR - https://linkinghub.elsevier.com/retrieve/pii/S0257897222001475
TI - Ultrafast microstructure modification by pulsed electron beam to enhance surface performance
T2 - Surface and Coatings Technology
AU - Geng, Yanfei
AU - Panchenko, Irina
AU - Prusov, Evgeny
AU - Chen, Xizhang
AU - Konovalov, Sergey V.
AU - Ivanov, Yurii P.
AU - B Deev, Vladislav
PY - 2022
DA - 2022/03/01
PB - Elsevier
SP - 128226
VL - 434
SN - 0257-8972
SN - 1879-3347
ER -
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BibTex (up to 50 authors)
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@article{2022_Geng,
author = {Yanfei Geng and Irina Panchenko and Evgeny Prusov and Xizhang Chen and Sergey V. Konovalov and Yurii P. Ivanov and Vladislav B Deev},
title = {Ultrafast microstructure modification by pulsed electron beam to enhance surface performance},
journal = {Surface and Coatings Technology},
year = {2022},
volume = {434},
publisher = {Elsevier},
month = {mar},
url = {https://linkinghub.elsevier.com/retrieve/pii/S0257897222001475},
pages = {128226},
doi = {10.1016/j.surfcoat.2022.128226}
}