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Dive into the research topics where I.V. Okulov is active.

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Featured researches published by I.V. Okulov.


Journal of The Mechanical Behavior of Biomedical Materials | 2017

Composition optimization of low modulus and high-strength TiNb-based alloys for biomedical applications

I.V. Okulov; A.S. Volegov; Hooyar Attar; Matthias Bönisch; Shima Ehtemam-Haghighi; Mariana Calin; J. Eckert

The effect of chemical composition on microstructure and tensile properties of a series of low modulus Ti-Nb-Cu-Ni-Al alloys was studied. These alloys consist of primary micrometer-sized β-Ti dendrites surrounded by intermetallic phases. The morphology of the intermetallic phases is strongly affected by composition. Due to the composite microstructure, the alloys exhibit a low Youngs modulus (77-84GPa) together with a high yield strength of about 1000MPa as well as moderate tensile ductility. The results demonstrate that complete substitution of Al by Ti reduces the Youngs modulus by 5%. Increasing Nb content at the expense of Ti causes a significant improvement of tensile ductility.


Materials Science and Engineering: C | 2013

Effect of microstructure on the mechanical properties of as-cast Ti–Nb–Al–Cu–Ni alloys for biomedical application

I.V. Okulov; S. Pauly; Uta Kühn; P. Gargarella; Tom Marr; J. Freudenberger; L. Schultz; Juliane Scharnweber; C.-G. Oertel; Werner Skrotzki; J. Eckert

The correlation between the microstructure and mechanical behavior during tensile loading of Ti68.8Nb13.6Al6.5Cu6Ni5.1 and Ti71.8Nb14.1Al6.7Cu4Ni3.4 alloys was investigated. The present alloys were prepared by the non-equilibrium processing applying relatively high cooling rates. The microstructure consists of a dendritic bcc β-Ti solid solution and fine intermetallic precipitates in the interdendritic region. The volume fraction of the intermetallic phases decreases significantly with slightly decreasing the Cu and Ni content. Consequently, the fracture mechanism in tension changes from cleavage to shear. This in turn strongly enhances the ductility of the alloy and as a result Ti71.8Nb14.1Al6.7Cu4Ni3.4 demonstrates a significant tensile ductility of about 14% combined with the high yield strength of above 820 MPa already in the as-cast state. The results demonstrate that the control of precipitates can significantly enhance the ductility and yet maintaining the high strength and the low Youngs modulus of these alloys. The achieved high bio performance (ratio of strength to Youngs modulus) is comparable (or even superior) with that of the recently developed Ti-based biomedical alloys.


Applied Physics Letters | 2014

Deformation and fracture behavior of composite structured Ti-Nb-Al-Co(-Ni) alloys

I.V. Okulov; Uta Kühn; Tom Marr; J. Freudenberger; L. Schultz; C.-G. Oertel; Werner Skrotzki; J. Eckert

Tensile ductility of the Ti-based composites, which consist of a β-Ti phase surrounded by ultrafine structured intermetallics, is tunable through the control of intermetallics. The two Ti-based alloys studied exhibit similar compressive yield strength (about 1000 MPa) and strain (about 35%–40%) but show a distinct difference in their tensile plasticity. The alloy Ti71.8Nb14.1Ni7.4Al6.7 fractures at the yield stress while the alloy Ti71.8Nb14.1Co7.4Al6.7 exhibits about 4.5% of tensile plastic deformation. To clarify the effect of microstructure on the deformation behavior of these alloys, tensile tests were carried out in the scanning electron microscope. It is shown that the distribution as well as the type of intermetallics affects the tensile ductility of the alloys.


Journal of Materials Science & Technology | 2015

Effect of Powder Particle Shape on the Properties of In Situ Ti–TiB Composite Materials Produced by Selective Laser Melting

Hooyar Attar; K.G. Prashanth; Lai-Chang Zhang; Mariana Calin; I.V. Okulov; S. Scudino; Chao Yang; Juergen Eckert


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2017

Nanoindentation and wear properties of Ti and Ti-TiB composite materials produced by selective laser melting

Hooyar Attar; Shima Ehtemam-Haghighi; Damon Kent; I.V. Okulov; H. Wendrock; M. Bӧnisch; A.S. Volegov; Mariana Calin; J. Eckert; Matthew S. Dargusch


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2015

High Strength Beta Titanium Alloys: New Design Approach

I.V. Okulov; H. Wendrock; A.S. Volegov; Hooyar Attar; Uta Kühn; Werner Skrotzki; J. Eckert


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2014

Significant tensile ductility and toughness in an ultrafine-structured Ti68.8Nb13.6Co6Cu5.1Al6.5 bi-modal alloy

I.V. Okulov; Matthias Bönisch; U. Kühn; Werner Skrotzki; J. Eckert


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2014

Microstructure and mechanical properties of new composite structured Ti–V–Al–Cu–Ni alloys for spring applications

I.V. Okulov; Uta Kühn; Tom Marr; J. Freudenberger; I.V. Soldatov; L. Schultz; C.-G. Oertel; Werner Skrotzki; J. Eckert


Materials & Design | 2014

Mechanical behavior and tensile/compressive strength asymmetry of ultrafine structured Ti–Nb–Ni–Co–Al alloys with bi-modal grain size distribution

I.V. Okulov; Uta Kühn; Jan Romberg; I.V. Soldatov; J. Freudenberger; L. Schultz; Andy Eschke; C.-G. Oertel; Werner Skrotzki; J. Eckert


Metals | 2011

Ti-Al Composite Wires with High Specific Strength

Tom Marr; J. Freudenberger; Dirk Seifert; Hansjörg Klauß; Jan Romberg; I.V. Okulov; Juliane Scharnweber; Andy Eschke; Carl-Georg Oertel; Werner Skrotzki; Uta Kühn; J. Eckert; L. Schultz

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J. Eckert

Austrian Academy of Sciences

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Werner Skrotzki

Dresden University of Technology

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J. Freudenberger

Freiberg University of Mining and Technology

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L. Schultz

Dresden University of Technology

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A.S. Volegov

Ural Federal University

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Tom Marr

Dresden University of Technology

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Andy Eschke

Dresden University of Technology

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