The authors developed technology for obtaining surface composite materials. This technology includes high-energy mechanical treatment, high-velocity oxygen fuel spraying in a protective atmosphere and subsequent thermomechanical and thermal treatment of ZrCuNiCoTi and cBNNi3AlSiCCoY layers in a protective atmosphere. The processing allowed increasing the adhesive strength of the surface composites, reducing their porosity and improving their functional and operational properties. Staged methods of heat treatment and plastic deformation of surface layers have been developed. These methods stabilize the material structure while reducing residual stresses. On the basis of complex X-ray diffraction and electron microscopic studies, the structural parameters of surface composites were determined. It was shown that the ZrCuNiCoTi alloy is in the austenitic–martensitic state and has a nanocrystalline structure with a grain size of 80–120 nm. Meanwhile, the cBNNi3AlSiCCoY alloy consists of many intermetallic phases and inclusions and has a nanosized structure with a grain size of 100–200 nm. A microhardness study of the surface layers in ZrCuNiCoTi–cBNNi3AlSiCCoY composite showed that thermomechanical treatment increases microhardness. The experimental data were statistically processed. As a result, empirical mathematical dependences of the stress amplitude on cyclic durability were compiled. Mechanical tests included tests of NiCoTiZrHf–cBNCoMo, ZrCuNiCoTi–cBNNi3AlSiCCoY and TiNiZrHfCoCu–cBNCoNiAlY composites for multi-cycle fatigue during bending with rotation.
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1 February 2023
Research Article|
March 25 2022
Functionally oriented high-temperature composite materials Available to Purchase
Petr O Rusinov;
Department of Engineering of Control Systems, Materials and Technologies in Mechanical Engineering, Kuban State Technological University, Krasnodar, Russian Federation
(corresponding author: ruspiter5@mail.ru)
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Zhesfina M Blednova;
Zhesfina M Blednova
Doctor of Technical Sciences
Department of Engineering of Control Systems, Materials and Technologies in Mechanical Engineering, Kuban State Technological University, Krasnodar, Russian Federation
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Roman L Plomodyalo;
Roman L Plomodyalo
Candidate of Technical Sciences, Head of Department
Department of Engineering of Control Systems, Materials and Technologies in Mechanical Engineering, Kuban State Technological University, Krasnodar, Russian Federation
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Anna P Yurkova;
Anna P Yurkova
Senior Lecturer
Department of Engineering of Control Systems, Materials and Technologies in Mechanical Engineering, Kuban State Technological University, Krasnodar, Russian Federation
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Anastasia A Rusinova;
Anastasia A Rusinova
Senior Lecturer
Department of Engineering of Control Systems, Materials and Technologies in Mechanical Engineering, Kuban State Technological University, Krasnodar, Russian Federation
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Maxim D Ignatiev;
Maxim D Ignatiev
Student
Department of Engineering of Control Systems, Materials and Technologies in Mechanical Engineering, Kuban State Technological University, Krasnodar, Russian Federation
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Maxim D Semadeni
Maxim D Semadeni
Student
Department of Engineering of Control Systems, Materials and Technologies in Mechanical Engineering, Kuban State Technological University, Krasnodar, Russian Federation
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(corresponding author: ruspiter5@mail.ru)
Publisher: Emerald Publishing
Received:
February 04 2022
Accepted:
March 08 2022
Online ISSN: 2050-6260
Print ISSN: 2050-6252
ICE Publishing: All rights reserved
2023
Surface Innovations (2023) 11 (1-3): 38–48.
Article history
Received:
February 04 2022
Accepted:
March 08 2022
Citation
Rusinov PO, Blednova ZM, Plomodyalo RL, Yurkova AP, Rusinova AA, Ignatiev MD, Semadeni MD (2023), "Functionally oriented high-temperature composite materials". Surface Innovations, Vol. 11 No. 1-3 pp. 38–48, doi: https://doi.org/10.1680/jsuin.22.00016
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