The influence of dynamic recrystallization on flow stress during deformation based alloys Ti-Si-Al-Zr
Saved in:
| Date: | 2014 |
|---|---|
| Main Author: | D. M. Brodnikovskyi |
| Format: | Article |
| Language: | English |
| Published: |
2014
|
| Series: | Electron Microscopy and Strength of Materials. Series: Physical Materials Science, Structure and Properties of Materials |
| Online Access: | http://jnas.nbuv.gov.ua/article/UJRN-0000348768 |
| Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
| Journal Title: | Library portal of National Academy of Sciences of Ukraine | LibNAS |
Institution
Library portal of National Academy of Sciences of Ukraine | LibNASSimilar Items
Fractographic examinations of Ti—Al-(LE) alloy after zonal recrystallization
by: V. A. Kostin, et al.
Published: (2011)
by: V. A. Kostin, et al.
Published: (2011)
The Ti–Al–Zr–Si alloys for the exploitation at high temperatures
by: S. O. Firstov, et al.
Published: (2018)
by: S. O. Firstov, et al.
Published: (2018)
Increase of manufasturability of perspective multicomponent alloys of system Nb−Ti−Al, alloyed Cr, Zr, Mo, Si
by: T. L. Kuznetsova, et al.
Published: (2018)
by: T. L. Kuznetsova, et al.
Published: (2018)
Structure and mechanical properties of high-temperature titanium alloy of Ti–Al–Zr–Si–Mo–Nb–Sn system after deformation treatment
by: S. V. Akhonin, et al.
Published: (2022)
by: S. V. Akhonin, et al.
Published: (2022)
Effect of Al, Cr, Mo, Zr, Si, and C on the temperature ranges of hardening of multicomponent niobium-based alloys
by: M. P. Brodnikovskyi, et al.
Published: (2020)
by: M. P. Brodnikovskyi, et al.
Published: (2020)
The eutectic alloy in the Nb—Ti—Al—Cr—Zr system
by: N. P. Brodnikovskij, et al.
Published: (2017)
by: N. P. Brodnikovskij, et al.
Published: (2017)
Improvement of mechanical properties of β-stabilized intermetallics of TiAl system by zone recrystallization method
by: L. M. Lobanov, et al.
Published: (2020)
by: L. M. Lobanov, et al.
Published: (2020)
Features of Smelting of Multicomponent Niobium Alloys of a System Nb–Ti–Al Doped with Cr, Zr, Mo, Si
by: T. L. Kuznetsova, et al.
Published: (2018)
by: T. L. Kuznetsova, et al.
Published: (2018)
Structure of laser welded joints of multicomponent high-entropy alloy of Nb-Cr-Ti-Al-Zr system
by: V. D. Sheliahin, et al.
Published: (2021)
by: V. D. Sheliahin, et al.
Published: (2021)
The influence of solidification rate on the formation quasicrystalline phase in of Ti – Cr – Al – Si alloys
by: M. O. Krapivka, et al.
Published: (2017)
by: M. O. Krapivka, et al.
Published: (2017)
The influence of thermal treatment on the structure and fatigue crack growth resistance of Ti–10.3Al–3.0Zr–1.2Si alloy
by: A. D. Ivasyshyn, et al.
Published: (2014)
by: A. D. Ivasyshyn, et al.
Published: (2014)
Producing high-temperature titanium alloys of Ti–Al–Zr–Si–Mo–Nb–Sn system by electron beam melting
by: S. V. Akhonin, et al.
Published: (2022)
by: S. V. Akhonin, et al.
Published: (2022)
The influence of rare-earth metal on structure and properties of cast and deformed Al–Mg–Cr–Sc–Zr alloys
by: O. P. Ostash, et al.
Published: (2021)
by: O. P. Ostash, et al.
Published: (2021)
Structure and properties of solid coatings of systems (Ti-Zr-Si)N and (Ti-Hf-Si)N obtained from the flows of metallic plasma
by: V. M. Beresnev, et al.
Published: (2010)
by: V. M. Beresnev, et al.
Published: (2010)
Melting behavior and heat Treatment of al-mg-si-mn casting alloy alloyed with 0,1 wt.%Ti and 0,1 wt.%zr
by: V. V. Bojko, et al.
Published: (2014)
by: V. V. Bojko, et al.
Published: (2014)
Elasticity and fatigue of Ti—Si system deformed alloys at highfrequency load
by: S. A. Firstov, et al.
Published: (2013)
by: S. A. Firstov, et al.
Published: (2013)
Analysis of the Stability of α→γ Plane Front of Recrystallization in Ferritic Alloys During Carburization
by: Movchan, O.V., et al.
Published: (2019)
by: Movchan, O.V., et al.
Published: (2019)
Superhard coatings of the (Zr–Ti–Si)N and (Ti–Hf–Si)N systems produced by vacuum–arc deposition from a separated flow
by: V. M. Beresnev, et al.
Published: (2014)
by: V. M. Beresnev, et al.
Published: (2014)
Recrystallization characteristics of catalytic alloy and graphite in diamond synthesis
by: S. J. Cha, et al.
Published: (2021)
by: S. J. Cha, et al.
Published: (2021)
Peculiarities of structure of intermetallic alloy after zonal recrystallization
by: N. V. Piskun, et al.
Published: (2011)
by: N. V. Piskun, et al.
Published: (2011)
Features of Obtaining Titanium Alloys of Ti−Al−Si−Zr−Mo−Nb−Sn System under Conditions of Electron-Beam Foundry Technology
by: S. V. Ladokhin, et al.
Published: (2020)
by: S. V. Ladokhin, et al.
Published: (2020)
Electron beam melting of heat-resistant titanium composites of Ti-Si–Al–Zr–Sn system
by: S. V. Akhonin, et al.
Published: (2019)
by: S. V. Akhonin, et al.
Published: (2019)
Structure and mechanical properties of the refractory multicomponent alloys of the Ta-Ti-V-Zr-Al system
by: Levenets, A., et al.
Published: (2022)
by: Levenets, A., et al.
Published: (2022)
Modification of the surface of Zr1Nb alloy by deposition of multilayer Ti/TiN and Zr/ZrN coatings
by: V. A. Belous, et al.
Published: (2015)
by: V. A. Belous, et al.
Published: (2015)
ОСОБЛИВОСТІ ВИПЛАВКИ БАГАТОКОМПОНЕНТНИХ НІОБІЄВИХ СПЛАВІВ СИСТЕМИ Nb–Ti–Al, ЛЕГОВАНИХ Cr, Zr, Mo, Si
by: Кузнєцова, Т. Л., et al.
Published: (2018)
by: Кузнєцова, Т. Л., et al.
Published: (2018)
Strength and corrosion-fatigue crack growth resistance of Ti–Nb–Zr–Si alloys of biomedical application
by: O. P. Ostash, et al.
Published: (2019)
by: O. P. Ostash, et al.
Published: (2019)
Microstructure and Mechanical Properties of Hypereutectic Al—Si Alloy after Severe Plastic Deformation
by: V. Z. Spuskanjuk, et al.
Published: (2014)
by: V. Z. Spuskanjuk, et al.
Published: (2014)
Zone recrystallization of tantalum
by: N. N. Pilipenko, et al.
Published: (2014)
by: N. N. Pilipenko, et al.
Published: (2014)
Methods of Ti-Si and Ti-Si-X systems alloys melting
by: N. N. Kuzmenko, et al.
Published: (2011)
by: N. N. Kuzmenko, et al.
Published: (2011)
Influence of Temperature on Fatigue Crack Propagation in TiAl Alloys
by: R. C. Feng, et al.
Published: (2014)
by: R. C. Feng, et al.
Published: (2014)
Ultrasonic effect on phase transformation and tensile flow stress of Zr18Nb alloy under tension
by: B. M. Mordiuk, et al.
Published: (2012)
by: B. M. Mordiuk, et al.
Published: (2012)
Particularity of formation the cast structure of multicomponent niobium alloys Nb – Ti – Al
by: T. L. Kuznietsova, et al.
Published: (2018)
by: T. L. Kuznietsova, et al.
Published: (2018)
The effect of the substrate potential during deposition on the structure and properties of the binanolayer multiperiod composites (TiAlSi)N/MeN (Me – Zr, Nb, Cr, Mo)
by: Sobol’, O.V., et al.
Published: (2018)
by: Sobol’, O.V., et al.
Published: (2018)
Structure and mechanical properties of multilayer vacuum-arc condensates of Ti/Al and Ti/TiAlSi systems
by: A. V. Demchishin, et al.
Published: (2016)
by: A. V. Demchishin, et al.
Published: (2016)
Phase formation in the SiC-Al₂O₃-ZrO₂ system during hot pressing by the method of electroconsolidation
by: Vovk, R.V., et al.
Published: (2019)
by: Vovk, R.V., et al.
Published: (2019)
Dynamic and Postdeformation Recrystallization of Nuclear-Grade 316LN Stainless Steel
by: Zhang, R.H., et al.
Published: (2015)
by: Zhang, R.H., et al.
Published: (2015)
Influence of Molybdenum on Structure of Alloy AlSi9Cu3
by: M. M. Voron, et al.
Published: (2020)
by: M. M. Voron, et al.
Published: (2020)
Development of new casting alloys of the system Al-Mg-Si-Mn with additions 1,0 ace. Li and 0,1 ace. Ti 0,1 ace. Zr
by: E. L. Prach, et al.
Published: (2014)
by: E. L. Prach, et al.
Published: (2014)
Structural transformations in alloys of Ti-Si-X systems during thermal cycle of welding
by: S. V. Akhonin, et al.
Published: (2011)
by: S. V. Akhonin, et al.
Published: (2011)
Development of the laser welding technique for the multicomponent Nb—16Cr—16Al—16Ti—16Zr alloy
by: N. P. Brodnikovskij, et al.
Published: (2017)
by: N. P. Brodnikovskij, et al.
Published: (2017)
Similar Items
-
Fractographic examinations of Ti—Al-(LE) alloy after zonal recrystallization
by: V. A. Kostin, et al.
Published: (2011) -
The Ti–Al–Zr–Si alloys for the exploitation at high temperatures
by: S. O. Firstov, et al.
Published: (2018) -
Increase of manufasturability of perspective multicomponent alloys of system Nb−Ti−Al, alloyed Cr, Zr, Mo, Si
by: T. L. Kuznetsova, et al.
Published: (2018) -
Structure and mechanical properties of high-temperature titanium alloy of Ti–Al–Zr–Si–Mo–Nb–Sn system after deformation treatment
by: S. V. Akhonin, et al.
Published: (2022) -
Effect of Al, Cr, Mo, Zr, Si, and C on the temperature ranges of hardening of multicomponent niobium-based alloys
by: M. P. Brodnikovskyi, et al.
Published: (2020)