Optimization of physicomechanical properties of anode material for fuel cells
Saved in:
| Date: | 2015 |
|---|---|
| Main Authors: | B. D. Vasyliv, Ya. Podhurska, Ye. M. Brodnikovskyi |
| Format: | Article |
| Language: | English |
| Published: |
2015
|
| Series: | Materials Science (Physicochemical mechanics of materials) |
| Online Access: | http://jnas.nbuv.gov.ua/article/UJRN-0000662871 |
| 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
Structural transformations in NiO-containing anode of ceramic fuel cells during its reduction and oxidation
by: Ya. Podhurska, et al.
Published: (2013)
by: Ya. Podhurska, et al.
Published: (2013)
Improvement of electric conductivity of the anode fuel cell material with cyclic redox heat treatment
by: B. D. Vasyliv
Published: (2010)
by: B. D. Vasyliv
Published: (2010)
The influence of porosity on mechanical strength of 3,5YSZ ceramic carcass for anode solid oxide fuel cell application
by: I. O. Polishko, et al.
Published: (2017)
by: I. O. Polishko, et al.
Published: (2017)
The influence of the reducing and oxidizing environments on physicomechanical properties of ScCeSZ–NiO and YSZ–NiO ceramics
by: B. D. Vasyliv, et al.
Published: (2013)
by: B. D. Vasyliv, et al.
Published: (2013)
Tape Casting of anode and electrolyte layers for solid oxide fuel cells
by: S. E. Ivanchenko, et al.
Published: (2018)
by: S. E. Ivanchenko, et al.
Published: (2018)
Long-term oxidation resistance of titanium materials for hybrid fuel cells
by: Ya. Podhurska, et al.
Published: (2021)
by: Ya. Podhurska, et al.
Published: (2021)
The influence of technological media on mechanical and physical properties of materials for fuel cells
by: A. D. Ivasyshyn, et al.
Published: (2015)
by: A. D. Ivasyshyn, et al.
Published: (2015)
Metal-fluorite and perovskite anodes for solid oxide fuel cells
by: O. V. Bezdorozhev, et al.
Published: (2012)
by: O. V. Bezdorozhev, et al.
Published: (2012)
The effect of fuel gas mixtures and air flow rates on electrical properties of solid oxide fuel cell
by: N. O. Lysunenko, et al.
Published: (2021)
by: N. O. Lysunenko, et al.
Published: (2021)
Effect of localplastic deformations on physicomechanical properties of material and the pipeline stress state
by: Ye. V. Kharchenko, et al.
Published: (2013)
by: Ye. V. Kharchenko, et al.
Published: (2013)
Zirconium dioxide stabilized with yttrium oxide and cerium oxide (8Ce2YSZ) for solid oxide fuel cell anode and electrolyzers application
by: I. O. Polishko, et al.
Published: (2022)
by: I. O. Polishko, et al.
Published: (2022)
The influence of hydrogen on phase composition and physicomechanical properties of structural materials
by: V. V. Fedorov
Published: (2010)
by: V. V. Fedorov
Published: (2010)
Solid oxide fuel cell (according to the materials of scientific report at the meeting of the Presidium of NAS of Ukraine, October 21, 2015)
by: Ye. M. Brodnikovskyi
Published: (2016)
by: Ye. M. Brodnikovskyi
Published: (2016)
The influence of the fuel cell working environment on the structure and physico- mechanical characteristics of ZrO2–Y2O3–NiO ceramics
by: B. D. Vasyliv, et al.
Published: (2020)
by: B. D. Vasyliv, et al.
Published: (2020)
Physical factors' impact over bio?lm formation on a fuel cell anode
by: N. B. Holub, et al.
Published: (2012)
by: N. B. Holub, et al.
Published: (2012)
Optimization of 10Sc1CeSZ–NiO composite properties by redux processing
by: O. P. Ostash, et al.
Published: (2010)
by: O. P. Ostash, et al.
Published: (2010)
Materials science for fuel cells
by: O. D. Vasyliev
Published: (2021)
by: O. D. Vasyliev
Published: (2021)
The influence of redox cycling on physicomechanical properties of ZrO2–Y2O3–CeO2–Al2O3–NiO–CuO ceramics
by: B. D. Vasyliv, et al.
Published: (2021)
by: B. D. Vasyliv, et al.
Published: (2021)
The influence of the reducing environment on the structure and physicomechanical properties of ceramics of the ZrO2–Y2O3–Al2O3–NiO–CuO
by: Ya. Podhurska, et al.
Published: (2020)
by: Ya. Podhurska, et al.
Published: (2020)
Light interconnects for medium-temperature (550...650S) solid oxide fuel cells
by: O. P. Ostash, et al.
Published: (2021)
by: O. P. Ostash, et al.
Published: (2021)
Diffusion processes between the barrier cathode layer and electrolyte of a solid oxide fuel cell
by: L. M. Ushkalov, et al.
Published: (2015)
by: L. M. Ushkalov, et al.
Published: (2015)
Structure and physicomechanical properties of as-cast Ti–Nb–Mo titanium alloys
by: O. M. Myslyvchenko, et al.
Published: (2020)
by: O. M. Myslyvchenko, et al.
Published: (2020)
Physicomechanical properties of Cu–Al2O3 galvanic compositions.
by: M. D. Sakhnenko, et al.
Published: (2014)
by: M. D. Sakhnenko, et al.
Published: (2014)
The influence of redox-cycling temperature on structure, physical and mechanical properties of YSZ–NiO ceramics
by: O. P. Ostash, et al.
Published: (2014)
by: O. P. Ostash, et al.
Published: (2014)
Structure and physicomechanical properties of AISI 321 steel welded joints
by: L. I. Markashova, et al.
Published: (2016)
by: L. I. Markashova, et al.
Published: (2016)
The influence of polyvinylpyrrolidone molecular weight on the physicomechanical properties of composite polyamide hydrogel membranes
by: O. V. Suberliak, et al.
Published: (2019)
by: O. V. Suberliak, et al.
Published: (2019)
Physicomechanical properties of electric arc sprayed coating formed in supersonic mode
by: V. M. Hvozdetskyi, et al.
Published: (2024)
by: V. M. Hvozdetskyi, et al.
Published: (2024)
Titanium coating on the carbon steel: direct-current and pulse electrodeposition, physicomechanical and chemical properties
by: V. V. Malyshev, et al.
Published: (2014)
by: V. V. Malyshev, et al.
Published: (2014)
Modification by nanopartcles of the metals of carbon material for microbial fuel cells
by: O. I. Bilyi, et al.
Published: (2018)
by: O. I. Bilyi, et al.
Published: (2018)
Physicomechanical and corrosion-resistant properties of inhibited fast-hardening bitumen-latex emulsions
by: V. A. Chervatiuk, et al.
Published: (2015)
by: V. A. Chervatiuk, et al.
Published: (2015)
Investigation of the influence of microdispersed fillers on physicomechanical and thermal properties of epoxy composites
by: A. V. Buketov, et al.
Published: (2015)
by: A. V. Buketov, et al.
Published: (2015)
Optimization of platinum-palladium-TiO2 by composites of functional properties of anodic synthesized titanium dioxide
by: V. O. Knysh, et al.
Published: (2024)
by: V. O. Knysh, et al.
Published: (2024)
Polymeric and composite materials for proton conductive membranes of fuel cells
by: Yu. Yevchuk, et al.
Published: (2016)
by: Yu. Yevchuk, et al.
Published: (2016)
Development of epoxy-polyester matrix with improved adhesion and physicomechanical properties using an isocyanate modificator
by: A. V. Buketov, et al.
Published: (2019)
by: A. V. Buketov, et al.
Published: (2019)
The influence of the prerecrystallization treatment on physicomechanical properties of the plastically deformed metals and alloys and the spray coatings
by: O. M. Dubovyi, et al.
Published: (2010)
by: O. M. Dubovyi, et al.
Published: (2010)
Physicomechanical parameters under cutting of deposited surfaces
by: V. V. Kolomiiets, et al.
Published: (2021)
by: V. V. Kolomiiets, et al.
Published: (2021)
Investigation of magnetization of products of a non-uniform section for magnetic inspection of physicomechanical properties
by: S. G. Sandomirskij
Published: (2009)
by: S. G. Sandomirskij
Published: (2009)
Specific electric resistance as an informative parameter for determination of the actual physicomechanical characteristics of materials of metal structures in long-term operation
by: O. M. Karpash, et al.
Published: (2009)
by: O. M. Karpash, et al.
Published: (2009)
The influence of mechanism and parameters of hardening of modified new laquer phenolformaldehyde resins on composite physicomechanical properties
by: O. V. Suberliak, et al.
Published: (2010)
by: O. V. Suberliak, et al.
Published: (2010)
The study of phase equilibria in the system ZrO2—NiO with low NiO content for creation ceramic fuel cells
by: M. S. Hlabai, et al.
Published: (2014)
by: M. S. Hlabai, et al.
Published: (2014)
Similar Items
-
Structural transformations in NiO-containing anode of ceramic fuel cells during its reduction and oxidation
by: Ya. Podhurska, et al.
Published: (2013) -
Improvement of electric conductivity of the anode fuel cell material with cyclic redox heat treatment
by: B. D. Vasyliv
Published: (2010) -
The influence of porosity on mechanical strength of 3,5YSZ ceramic carcass for anode solid oxide fuel cell application
by: I. O. Polishko, et al.
Published: (2017) -
The influence of the reducing and oxidizing environments on physicomechanical properties of ScCeSZ–NiO and YSZ–NiO ceramics
by: B. D. Vasyliv, et al.
Published: (2013) -
Tape Casting of anode and electrolyte layers for solid oxide fuel cells
by: S. E. Ivanchenko, et al.
Published: (2018)