Multiscale Mechanism of Fatigue Fracture of Ti—6A1-4V Titanium Alloy within the Mesomechanical Space-Time-Energy Approach; Physical Mesomechanics; Vol. 21, iss. 5

מידע ביבליוגרפי
Parent link:Physical Mesomechanics.— , 1998-
Vol. 21, iss. 5.— 2018.— [P. 452-463]
Corporate Authors: Национальный исследовательский Томский политехнический университет (ТПУ) Инженерная школа новых производственных технологий (ИШНПТ) Отделение материаловедения (ОМ), Национальный исследовательский Томский политехнический университет Инженерная школа ядерных технологий Отделение экспериментальной физики
מחברים אחרים: Panin V. E. Viktor Evgenyevich, Surikova N. S. Nataljya Sergeevna, Lider A. M. Andrey Markovich, Bordulev Yu. S. Yuri Sergeevich, Ovechkin B. B. Boris Borisovich, Hairullin (Khayrullin) R. R. Rustam Ravilievich, Vlasov I. V. Ilya Viktorovich
סיכום:Title screen
Ultrasonic impact treatment (UIT) of alloy Ti-6Al-4V (VT6) causes a high lattice curvature, nanostructuring of thin surface layers, and the formation of complex band structures of T Al pre-precipitates in the a phase of the underlying sublayer, as well as the formation of the martensitic a ' phase. In so doing, the fatigue life of the alloy increases only by a factor of 1.3 due to the negative influence of complex band structures. Positron annihilation spectroscopy revealed a nonequilibrium vacancy concentration in the treated surface layer equal to 10-5, which is by five orders of magnitude greater than the equilibrium vacancy concentration. This makes possible reversible structural transformations through plastic distortion under cyclic loading of VT6 and underlies the increase in fatigue life. There is a convergence of the electron energy distribution curves for VT6 + UIT and Al obtained from the Doppler broadening spectra of annihilation radiation. This result suggests the formation of Ti-Ti-Al clusters and Ti3Al pre-precipitates in etch-resistant banded structures. Hydrogen charging of the ultrasonically treated VT6 surface layers leads to a 4-fold decrease in the fatigue life of the material. This effect is due to the formation of ?"-phase martensite laths in the a phase which rearranges the hcp lattice into an orthorhombic structure under the functional influence of hydrogen, with the segregation of vanadium atoms in the ?"-phase bands. The segregation causes a convergence of the electron energy distribution curves of VT6 + UIT + HN and V, as evidenced by the Doppler broadening spectra of annihilation radiation. Bundles of ?"-phase bands reinforce the nanostructured surface layer, which drastically reduces the fatigue life of the alloy. Its microhardness in the zone of fatigue fracture greatly increases. The multiscale structural analysis of fatigue fracture is carried out on the basis of the mesomechanical space-time-energy approach.
Режим доступа: по договору с организацией-держателем ресурса
שפה:אנגלית
יצא לאור: 2018
נושאים:
גישה מקוונת:https://doi.org/10.1134/S1029959918050090
פורמט: MixedMaterials אלקטרוני Book Chapter
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=659122

MARC

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200 1 |a Multiscale Mechanism of Fatigue Fracture of Ti—6A1-4V Titanium Alloy within the Mesomechanical Space-Time-Energy Approach  |f V. E. Panin [et al.] 
203 |a Text  |c electronic 
300 |a Title screen 
320 |a [References: 30 tit.] 
330 |a Ultrasonic impact treatment (UIT) of alloy Ti-6Al-4V (VT6) causes a high lattice curvature, nanostructuring of thin surface layers, and the formation of complex band structures of T Al pre-precipitates in the a phase of the underlying sublayer, as well as the formation of the martensitic a ' phase. In so doing, the fatigue life of the alloy increases only by a factor of 1.3 due to the negative influence of complex band structures. Positron annihilation spectroscopy revealed a nonequilibrium vacancy concentration in the treated surface layer equal to 10-5, which is by five orders of magnitude greater than the equilibrium vacancy concentration. This makes possible reversible structural transformations through plastic distortion under cyclic loading of VT6 and underlies the increase in fatigue life. There is a convergence of the electron energy distribution curves for VT6 + UIT and Al obtained from the Doppler broadening spectra of annihilation radiation. This result suggests the formation of Ti-Ti-Al clusters and Ti3Al pre-precipitates in etch-resistant banded structures. Hydrogen charging of the ultrasonically treated VT6 surface layers leads to a 4-fold decrease in the fatigue life of the material. This effect is due to the formation of ?"-phase martensite laths in the a phase which rearranges the hcp lattice into an orthorhombic structure under the functional influence of hydrogen, with the segregation of vanadium atoms in the ?"-phase bands. The segregation causes a convergence of the electron energy distribution curves of VT6 + UIT + HN and V, as evidenced by the Doppler broadening spectra of annihilation radiation. Bundles of ?"-phase bands reinforce the nanostructured surface layer, which drastically reduces the fatigue life of the alloy. Its microhardness in the zone of fatigue fracture greatly increases. The multiscale structural analysis of fatigue fracture is carried out on the basis of the mesomechanical space-time-energy approach. 
333 |a Режим доступа: по договору с организацией-держателем ресурса 
461 1 |t Physical Mesomechanics  |d 1998- 
463 1 |t Vol. 21, iss. 5  |v [P. 452-463]  |d 2018 
610 1 |a труды учёных ТПУ 
610 1 |a электронный ресурс 
610 1 |a титановые сплавы 
610 1 |a поверхностные слои 
610 1 |a структурный анализ 
610 1 |a усталостное разрушение 
701 1 |a Panin  |b V. E.  |c Director of Russian materials science center  |c Research advisor of Institute of strength physics and materials science of Siberian branch of Russian Academy of Sciences  |f 1930-  |g Viktor Evgenyevich  |3 (RuTPU)RU\TPU\pers\26443 
701 1 |a Surikova  |b N. S.  |g Nataljya Sergeevna 
701 1 |a Lider  |b A. M.  |c Physicist  |c Professor of Tomsk Polytechnic University, Doctor of Technical Sciences  |f 1976-2025  |g Andrey Markovich  |y Tomsk  |3 (RuTPU)RU\TPU\pers\30400  |9 14743 
701 1 |a Bordulev  |b Yu. S.  |c physicist  |c Engineer of Tomsk Polytechnic University  |f 1990-  |g Yuri Sergeevich  |3 (RuTPU)RU\TPU\pers\31883 
701 1 |a Ovechkin  |b B. B.  |c specialist in the field of material science  |c Associate Professor of Tomsk Polytechnic University, Candidate of technical sciences  |f 1959-  |g Boris Borisovich  |3 (RuTPU)RU\TPU\pers\33558 
701 1 |a Hairullin (Khayrullin)  |b R. R.  |c specialist in the field of material science  |c Engineer of Tomsk Polytechnic University  |f 1992-  |g Rustam Ravilievich  |3 (RuTPU)RU\TPU\pers\32862 
701 1 |a Vlasov  |b I. V.  |c specialist in the field of material science  |c Engineer of Tomsk Polytechnic University  |f 1988-  |g Ilya Viktorovich  |3 (RuTPU)RU\TPU\pers\33560 
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712 0 2 |a Национальный исследовательский Томский политехнический университет  |b Инженерная школа ядерных технологий  |b Отделение экспериментальной физики  |3 (RuTPU)RU\TPU\col\23549 
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856 4 |u https://doi.org/10.1134/S1029959918050090 
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