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				<datestamp>2025-08-08T18:39:41Z</datestamp>
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				<journal-id journal-id-type="publisher">IE</journal-id><journal-id journal-id-type="ojs">IE</journal-id>
				<journal-title-group>
			<journal-title xml:lang="ru">СТРОИТЕЛЬНЫЕ И ДОРОЖНЫЕ МАШИНЫ</journal-title><trans-title-group xml:lang="en"><trans-title>STROITEL'NYE I DOROZHNYE MASHINY</trans-title></trans-title-group>
</journal-title-group>			<issn pub-type="ppub">0039-2391</issn>			<publisher><publisher-name>ИП Подколзин М.М.</publisher-name></publisher>
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			<article-id pub-id-type="publisher-id">62</article-id>
			<article-categories><subj-group subj-group-type="heading" xml:lang="en"><subject>CONSTRUCTION AND ARCHITECTURE</subject></subj-group><subj-group subj-group-type="heading" xml:lang="ru"><subject>СТРОИТЕЛЬСТВО И АРХИТЕКТУРА</subject></subj-group></article-categories>
			<title-group><article-title xml:lang="ru">Функционально ориентированные жаропрочные композиты</article-title><trans-title-group xml:lang="en"><trans-title>Functionally oriented heat-resistant composites</trans-title></trans-title-group></title-group>
			<contrib-group content-type="author">
				<contrib contrib-type="author">
					<name-alternatives>
						<name name-style="western" specific-use="primary" xml:lang="ru">
							<surname>Русинов</surname>
							<given-names>Петр Олегович</given-names>
						</name>
						<name name-style="western" xml:lang="en">
							<surname>Rusinov</surname>
							<given-names>Peter O.</given-names>
						</name>
					</name-alternatives>
					<xref ref-type="aff" rid="aff-1"/>
					<email>ruspiter_@rambler.ru</email>
				</contrib>
				<contrib contrib-type="author">
					<name-alternatives>
						<name name-style="western" specific-use="primary" xml:lang="ru">
							<surname>Тюрина</surname>
							<given-names>Светлана Александровна</given-names>
						</name>
						<name name-style="western" xml:lang="en">
							<surname>Tyurina</surname>
							<given-names>Svetlana A.</given-names>
						</name>
					</name-alternatives>
					<xref ref-type="aff" rid="aff-1"/>
					<email>tyurina_s@mirea.ru</email>
				</contrib>
				<contrib contrib-type="author">
					<name-alternatives>
						<name name-style="western" specific-use="primary" xml:lang="ru">
							<surname>Трусов</surname>
							<given-names>Павел Сергеевич</given-names>
						</name>
						<name name-style="western" xml:lang="en">
							<surname>Trusov</surname>
							<given-names>Pavel S.</given-names>
						</name>
					</name-alternatives>
					<xref ref-type="aff" rid="aff-1"/>
					<email>paveltru03@gmail.com</email>
				</contrib>
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				<aff xml:lang="ru"><institution content-type="orgname">Российский технологический университет</institution></aff>
				<aff xml:lang="en"><institution content-type="orgname">Russian University of Technology</institution></aff>
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			<pub-date date-type="collection"><year>2025</year></pub-date><pub-date date-type="pub" publication-format="epub"><day>30</day><month>06</month><year>2025</year></pub-date>
			<volume seq="2">69</volume>
			<issue>6</issue>
				<issue-id>8</issue-id><issue-title xml:lang="ru">Строительные и дорожные машины </issue-title><issue-title xml:lang="en">Stroitel'nye i dorozhnye mashiny</issue-title><fpage>20</fpage>
				<lpage>37</lpage>
			<history>
				<date date-type="received" iso-8601-date="2025-06-16">
					<day>16</day>
					<month>06</month>
					<year>2025</year>
				</date>
			</history>
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				<copyright-statement xml:lang="ru">© 2025 СТРОИТЕЛЬНЫЕ И ДОРОЖНЫЕ МАШИНЫ. Все права защищены.</copyright-statement>
				<copyright-statement xml:lang="en">© 2025 STROITEL'NYE I DOROZHNYE MASHINY. All rights reserved.</copyright-statement>
				<copyright-year>2025</copyright-year>
				<copyright-holder xml:lang="ru">СТРОИТЕЛЬНЫЕ И ДОРОЖНЫЕ МАШИНЫ</copyright-holder>
				<copyright-holder xml:lang="en">STROITEL'NYE I DOROZHNYE MASHINY</copyright-holder>
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					<license-p>Метаданные настоящей записи распространяются на условиях Creative Commons CC0 1.0 (передача в общественное достояние).</license-p>
				</license>
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					<license-p>The metadata of this record are distributed under the Creative Commons CC0 1.0 Universal Public Domain Dedication.</license-p>
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			<abstract xml:lang="ru"><p>Разработанная технология получения поверхностных композитных материалов, включающая высокоэнергетическую механическую обработку, HVOF в защитной атмосфере, последующую термомеханическую и термическую обработку слоев ZrCuNiCoTi, cBNNi3AlSiCCoY в защитной атмосфере позволила повысить адгезионную прочность поверхностного композита, снизить пористость композитов и улучшить функциональные и эксплуатационные свойства композитных материалов. Разработаны поэтапные методы термической обработки и пластического деформирования поверхностных слоев, способствующие стабилизации структуры материалов при снижении остаточных напряжений. На основе комплексных рентгеноструктурных и электронно-микроскопических исследований, определены структурные параметры поверхностных композитов. Показано, что сплав ZrCuNiCoTi, находится в аустенитно-мартенситном состоянии, имеет нанокристаллическую структуру с размером зерна 80-120 нм, а сплав cBNNi3AlSiCCoY состоит из множества интерметаллидных фаз и включений, имеет наноразмерную структуру с размером зерна 100-200нм. Выполнено исследование микротвердости поверхностных слоев композита ZrCuNiCoTi – cBNNi3AlSiCCoY, показавшие, что применение термомеханической обработки приводит к повышению микротвердости. В результате статистической обработки экспериментальных данных составлены эмпирические математические зависимости амплитуды напряжений от циклической долговечности. Выполнены механические испытания композитов AISI 321H – NiCoTiZrHf – cBNCoMo, AISI 321H – ZrCuNiCoTi – cBNNi3AlSiCCoY, AISI 321H – TiNiZrHfCoCu – cBNCoNiAlY на многоцикловую усталость при изгибе с вращением, показавшие, что наибольшей циклической долговечностью обладает композит AISI 321H+ ZrCuNiCoTi – cBNNi3AlSiCCoY</p></abstract><trans-abstract xml:lang="en"><p>The developed technology for the production of surface composite materials, including high-energy mechanical processing, HVOF in a protective atmosphere, subsequent thermomechanical and thermal treatment of ZrCuNiCoTi and cBNNi3AlSiCCoY layers in a protective atmosphere, made it possible to increase the adhesive strength of the surface composite, reduce the porosity of composites, and improve the functional and operational properties of composite materials. Step-by-step methods of heat treatment and plastic deformation of surface layers have been developed to help stabilize the structure of materials while reducing residual stresses. Based on complex X-ray diffraction and electron microscopy studies, the structural parameters of surface composites have been determined. It is shown that the ZrCuNiCoTi alloy, located in the austenitic-martensitic state, has a nanocrystalline structure with a grain size of 80-120 nm, and the cBNNi3AlSiCCoY alloy consists of many intermetallic phases and inclusions, and has a nanoscale structure with a grain size of 100-200 nm. The microhardness of the surface layers of the ZrCuNiCoTi – cBNNi3AlSiCCoY composite was studied, which showed that the use of thermomechanical treatment leads to an increase in microhardness. As a result of statistical processing of experimental data, empirical mathematical dependences of the voltage amplitude on cyclic durability have been compiled. Mechanical tests of AISI 321H – NiCoTiZrHf – cBNCoMo, AISI 321H – ZrCuNiCoTi – cBNNi3AlSiCCoY, and AISI 321H – TiNiZrHfCoCu – cBNCoNiAlY composites for multi-cycle fatigue during bending with rotation were performed, showing that the AISI 321H+ ZrCuNiCoTi – cBNNi3AlSiCCoY composite has the highest cyclic durability.</p></trans-abstract><kwd-group xml:lang="en"><title>Keywords</title><kwd>stabilization of the structure of materials while reducing residual stresses</kwd><kwd>adhesive strength of the surface composite</kwd><kwd>increased microhardness of composites</kwd><kwd>cyclic durability of composites</kwd></kwd-group><kwd-group xml:lang="ru"><title>Ключевые слова</title><kwd>стабилизации структуры материалов при снижении остаточных напряжений</kwd><kwd>адгезионная прочность поверхностного композита</kwd><kwd>повышение микротвердости композитов</kwd><kwd>циклическая долговечность композитов</kwd></kwd-group><funding-group>
				<funding-statement xml:lang="ru">Исследование выполнено без внешнего финансирования.</funding-statement>
				<funding-statement xml:lang="en">The study was conducted without external funding.</funding-statement>
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		<ref-list xml:lang="ru">
			<title>Список литературы</title>
			<ref id="R1"><mixed-citation>Behravan A., Zarei-Hanzaki A., Fatemi S.M. The effect of aging temperature on microstructure and tensile properties of a novel designed Fe-12Mn-3Ni maraging-TRIP steel // Steel research international. 2019. Vol. 90. № 2. рр. 180-282.</mixed-citation></ref>
			<ref id="R2"><mixed-citation>Bhat A., Budholiya S., Raj S.A. Review on nanocomposites based on aerospace applications // Nanotechnology reviews. 2021. № 10(1). рр. 237-253.</mixed-citation></ref>
			<ref id="R3"><mixed-citation>Blednova Zh.M., Rusinov P.O. Composite design of surface layers from materials with shape memory effect: monograph. Krasnodar: KubSTU Publishing House, 2017. 280 p.</mixed-citation></ref>
			<ref id="R4"><mixed-citation>Blednova ZhM, Rusinov PO, Balaev EY. Formation and thermomechanical behaviour of composite surface layer containing shape memory materials during friction-cyclic loading // Tribology-materials, surfaces &amp; Interfaces. 2017. Vol. 11. № 1. рр. 7-13.</mixed-citation></ref>
			<ref id="R5"><mixed-citation>Chen Y.J., Zhang X.T., Wang F.S. Fatigue Failure Analysis and Life Prediction of Aeroengine Compressor Components // Journal of materials engineering and performance. 2019. Vol. 28. № 10. рр. 6418-6427.</mixed-citation></ref>
			<ref id="R6"><mixed-citation>Cho H, Nam S, Hwang I. Fatigue behaviors of resistance spot welds for 980 MPa Grade TRIP // Steel. Metals. 2019. № 9(10).</mixed-citation></ref>
			<ref id="R7"><mixed-citation>He M., Zheng Z.T., Shi F. A novel crack healing technique in a low carbon steel by cyclic phase transformation heat treatment: The process and mechanism // Materials science and engineering A-structural materials properties microstructure and processing. 2020. Vol. 772. pp. 138-712.</mixed-citation></ref>
			<ref id="R8"><mixed-citation>Kong W.W., Yuan C., Zhang B.N. Investigations on cyclic deformation behaviors and corresponding failure modes of a Ni-Based superalloy // Materials science and engineering A-structural materials properties microstructure and processing. 2020. Vol. 791. pp. 139-775.</mixed-citation></ref>
			<ref id="R9"><mixed-citation>Li M.S., Huang C.Z., Zhao B. Crack-healing behavior of Al2O3-TiB2-TiSi2 ceramic material. Ceramics International. 2018. Vol. 44. № 2. pp. 2132-2137.</mixed-citation></ref>
			<ref id="R10"><mixed-citation>Makhutov N.A., Matvienko Yu.G., Blednova Zh.M., Rusinov P.O., Dmitrenko D.V. The effect of surface coating by shape memory alloys on mechanical properties of steel // Fatigue &amp; Fracture of Engineering Materials &amp; Structures. 2022.</mixed-citation></ref>
			<ref id="R11"><mixed-citation>Rao W., Kang G.Z., Zhang J. Numerical study on toughening mechanism of bulk metallic glass composites from martensite transformation of toughening phase // Journal of NON-Crystalline Solids. 2019. № 506. рр. 88-97.</mixed-citation></ref>
			<ref id="R12"><mixed-citation>Rusinov P.O., Blednova Zh.M. Results of science: surface engineering using multi-component materials with a shape memory effect. M.: RAS, 2015. 231p.</mixed-citation></ref>
			<ref id="R13"><mixed-citation>Rusinov P.O., Blednova Zh.M. Structure and properties of the CoCuTiZrHf coating obtained by the HVOF method // Surface innovations. 2020. № 9(2-3). pp. 120-126. https://doi.org/10.1680/jsuin.20.00029.</mixed-citation></ref>
			<ref id="R14"><mixed-citation>Rusinov P.O., Blednova Zh.M. Study of the structure and properties of a high-entropy ceramic composite material. Surface Innovations. 2021. pp. 1-10.</mixed-citation></ref>
			<ref id="R15"><mixed-citation>Rusinov P.O., Blednova Zh.M., Kurapov G.V. Functionally oriented composite layered materials with martensitic transformations. 2022.</mixed-citation></ref>
			<ref id="R16"><mixed-citation>Su Z.M., Lin P.C., Lai W.J. Fatigue analyses and life predictions of laser-welded lap-shear specimens made of low carbon and high strength low alloy steels // International journal of fatigue. 2020. № 140. рр. 105-849.</mixed-citation></ref>
			<ref id="R17"><mixed-citation>Tan XD, He HS, Lu WJ et al. Effect of matrix structures on TRIP effect and mechanical properties of low-C low-Si Al-added hot-rolled TRIP steels // Materials science and engineering a-structural materials properties microstructure and processing. 2020. № 771. рр. 138-629.</mixed-citation></ref>
			<ref id="R18"><mixed-citation>Tsuchiyama T., Sakamoto T., Tanaka S. Control of core-shell type second phase formed via interrupted quenching and intercritical annealing in a medium manganese steel // ISIJ International. 2020. Vol. 60. № 12. рр. 2954-2962.</mixed-citation></ref>
			<ref id="R19"><mixed-citation>Wang M., Huang M.X. Abnormal TRIP effect on the work hardening behavior of a quenching and partitioning steel at high strain rate // Acta materialia. 2020. № 188. pp. 551-559.</mixed-citation></ref>
			<ref id="R20"><mixed-citation>Xie X, Kang GZ, Kan QH et al. Phase field modeling to transformation induced plasticity in super-elastic NiTi shape memory alloy single crystal // Modeling and simulation in materials science and engineering. 2019. Vol 27. № 4. 2019. pp. 1-45.</mixed-citation></ref>
			<ref id="R21"><mixed-citation>Xiong J.J., Zhu Y.T., Luo C.Y., Li Y.S. Fatigue-driven failure criterion for progressive damage modelling and fatigue life prediction of composite structures // International journal of fatigue. 2021. № 145.</mixed-citation></ref>
			<ref id="R22"><mixed-citation>Xue C.H., Li W.G., Castel A. Effect of incompatibility between healing agent and cement matrix on self-healing performance of intelligent cementitious composite // Smart Materials and Structures.2020. Vol. 29. № 11. рр. 20-115.</mixed-citation></ref>
			<ref id="R23"><mixed-citation>Yang J., Jo Y.H., Kim D.W. Effects of transformation-induced plasticity (TRIP) on tensile property improvement of Fe45Co30Cr10V10Ni5-xMnx high-entropy alloys. Materials Science and Engineering A-Structural Materials Properties Microstructure and Processing. 2020. № 772. рр. 138-809.</mixed-citation></ref>
			<ref id="R24"><mixed-citation>Zhang X.D., Ren J.Q., Ding X.D. Synergistic effects among the structure, martensite transformation and shear band in a shape memory alloy-metallic glass composite // Applied composite materials. 2019. Vol. 26. № 2. рр. 455-467.</mixed-citation></ref>
			<ref id="R25"><mixed-citation>Zhao Y.C., Zhao P.B., Li W.S. The microalloying effect of ce on the mechanical properties of medium entropy bulk metallic glass composites // Crystals. 209. Vol. 9. № 9. Р. 483</mixed-citation></ref>
		</ref-list>
	</back>
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