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1

Smallman, R. E. Modern physical metallurgy and materials engineering: Science, process, applications. 6th ed. Oxford: Butterworth Heinemann, 1999.

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2

Yin, Ruiyu. Metallurgical Process Engineering. Berlin, Heidelberg: Metallurgical Industry Press,Beijing and Springer-Verlag Berlin Heidelberg and Metallurgical Industry Press, 2011.

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3

Częstochowa, Poland) Międzynarodowa Konferencja Naukowa "Nowe Technologie i. Osiągnięcia w. Metalurgii i. Inżynierii Materiałowej" (12th 2011. XII Międzynarodowa Konferencja Naukowa "Nowe Technologie i Osiągnięcia w Metalurgii i Inżynierii Materiałowej": XII International Scientific Conference "New Technologies and Achievements in Metalurgy and Materials Engineering". Częstochowa: Wydawnictwo Wydziału Inżynierii Procesowej, Materiałowej i Fizyki Stosowanej Politechniki Częstocowskiej, 2011.

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4

Kirkwood, David H. Semi-solid Processing of Alloys. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2010.

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5

Adaskin, Anatoliy, Aleksandr Krasnovskiy, and Tat'yana Tarasova. Materials science and technology of metallic, non-metallic and composite materials. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/1143245.

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Book 1 of the textbook consists of two parts. Part I describes the structure of metallic, non-metallic, and composite materials. Technologies of production of metal materials are considered: metallurgical production of ferrous and non-ferrous metals; powder metallurgy; technologies of production of non-metallic materials: polymers, glass, graphite; technologies of production of composite materials, including semi-finished products-prepregs, premixes. Part II is devoted to methods for studying the properties of materials. Metal materials, technologies of their hardening by thermal, chemical-thermal treatment, and plastic deformation are considered. The features of organic and inorganic nonmetallic materials, as well as the possibility of changing their properties, are given. Composite materials are widely covered, and the areas of their rational application are shown. Revised chapter 14, which deals with intelligent materials. Meets the requirements of the federal state educational standards of higher education of the latest generation. For bachelors and undergraduates studying in groups of training areas 15.00.00 "Mechanical Engineering" and 22.00.00 "Materials Technologies". It can be used for training graduate students of engineering specialties, as well as for advanced training of engineering and technical workers of machine-building enterprises.
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6

Symposium on "Evolving Roles and Expectations of Steelmaking Refractories" (1990 Hamilton, Ont.). Evolving roles and expectations of steelmaking refractories: Proceedings of the Symposium on "Evolving Roles and Expectations of Steelmaking refractories" organized by the Department of Materials Science and Engineering and was held in Hamilton, Ontario, Canada, May 28-30, 1990. Hamilton, Ont., Canada: Dept. of Materials Science and Engineering, McMaster University, 1990.

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7

International Conference on Wear of Materials (13th 2001 Vancouver, B.C.). Wear of materials. Edited by Rigney David A and Bayer R. G. 1935-. Amsterdam: Elsevier, 2001.

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8

Julian Szekely Memorial Symposium on Materials Processing (1997 Cambridge, Mass.). Proceedings of the Julian Szekely Memorial Symposium on Materials Processing: Proceedings of the Julian Szekely Memorial Symposium on Materials Processing and the 1997 TMS Fall Extraction & Processing Conference held in Cambridge, Massachusetts, October 5-8, 1997. Warrendale, Pa: Minerals, Metals & Materials Society, 1996.

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9

International Conference on Modelling and Simulation in Metallurgical Engineering and Materials Science (1996 Beijing). The International Conference of Modelling and Simulation in Metallurgical Engineering and Materials Science: June 11-13, 1996, Beijing, China. Edited by Yü Tsung-sen, Xiao Zeqiang, Xie Xishan, and Chinese Society for Metals. Beijing: Metallurgical Industry Press, 1996.

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10

1955-, Voorhees P. W., ed. Growth and coarsening: Ostwald ripening in materials processing. New York: Springer, 2002.

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11

Bhadeshia, H. K. D. H. 1953-, ed. Steels, microstructure and properties. 2nd ed. London: Edward Arnold, 1995.

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12

A, Wheeler D., ed. Structure-property relationships and correlations with the environmental degradation of engineering materials: Proceedings of the Twenty-Fourth Annual Technical Meeting of the International Metallographic Society. Columbus, Ohio, USA: The Society, 1992.

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13

International Metallographic Society. Technical Meeting. Structure-property relationships and correlations with the environmental degradation of engineering materials: Proceedings of the Twenty-Fourth Annual Technical Meeting of the International Metallographic Society. Columbus, Ohio USA: The Society, 1992.

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14

1947-, Lai M. O., ed. Mechanical alloying. Boston: Kluwer Academic Publishers, 1998.

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15

Materials Solutions Conference 2001 (2001 Indianapolis, Ind.). Advances in the metallurgy of aluminum alloys: Proceedings from Materials Solutions Conference 2001 : the James T. Staley honorary symposium on aluminum alloys, 5-8 November 2001, Indianapolis, Indiana. Materials Park, Ohio: ASM International, 2001.

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16

Gavrili͡uk, V. G. High nitrogen steels: Structure, properties, manufacture, applications. New York: Springer, 1999.

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17

Meeting, International Metallographic Society Technical. Understanding microstructure: Key to advances in materials : proceedings of the Twenty-Ninth Annual Technical Meeting of the International Metallographic Society. Columbus, Ohio: International Metallographic Society, 1997.

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18

Pachurin, German. Technology for studying the destruction of structural materials under different loading conditions. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/981296.

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The textbook is devoted to solving topical issues related to the prediction of the effect of plastic deformation on the behavior in various operating conditions of a wide class of metals and alloys. The technology developed by the author for studying the mechanical properties and the process of destruction of plastically treated metal materials under various loading conditions (static at different temperatures, cyclic in air at low, room and elevated temperatures, as well as at room temperature in the presence of a corrosive environment) is described. Meets the requirements of the federal state educational standards of higher education of the latest generation. Addressed to bachelors and undergraduates of higher educational institutions of full-time and part-time education in the areas of training 20.03.01 Technosphere safety" (training profile "Safety of technological processes and production"), 22.03.01 and 22.04.01 "Materials Science and Materials Technology", 22.03.02 and 22.04.02 "Metallurgy", 15.03.01 and 15.04.01 "Mechanical Engineering", 15.05.01 "Design of technological machines and complexes", 15.03.02 "Technological machines and equipment", 15.03.04 and 15.04.04 "Automation of technological processes and production", 17.05.02 "Strelkovo-pushechnoe, artillery and rocket weapons", 15.03.05 "Design and technological support of machine-building industries". It can be useful for scientific and engineering workers of enterprises of automotive, aviation, shipbuilding and other metalworking branches of mechanical engineering, laboratory workers, as well as for training specialists in materials science, metal science and metal forming."
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19

ASM International. Handbook Committee., ed. ASM handbook. Materials Park, OH: ASM International, 1990.

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20

International Conference on Surface Modification Technologies (14th 2000 Paris, France). Surface modification technologies XIV: Proceedings of the fourteenth International Conference on Surface Modification Technologies held in Paris, France, September 11-13, 2000. Edited by Sudarshan T. S. 1955-, Jeandin M, ASM International, and IOM Communications. Materials Park, Ohio: ASM International, 2001.

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21

Frémond, M. Shape memory alloys / M. Fremond, S. Miyazaki. Wien: Springer, 1996.

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22

International Conference on Steel and Aluminium Structures (1991 Singapore). Aluminium structures: Recent research and developments. London: Elsevier Applied Science, 1991.

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23

Farhang-i dū sūyah-i ʻumrān: Ingilīsī - Fārsī, Fārsī - Ingilīsī. [Tihrān]: Dānishyār, 2008.

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24

Materials, Solutions Conference (2002 Columbus Ohio). Advances in aluminum casting technology II: Proceedings from Materials Solutions Conference 2002, the 2nd International Aluminum Casting Technology Symposium, 7-9 October 2002, Columbus, Ohio. Materials Park, OH: ASM International, 2002.

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25

European Symposium on Modifications of Passive Films (1993 Paris, France). Modifications of passive films: Papers presented at the European Symposium on Modifications of Passive Films, Paris, France, 15-17 February 1993. London: Published for the European Federation of Corrosion by the Institute of Materials, 1994.

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26

Martin, L. H. Structural design of steelwork to BS 5950. London: Edward Arnold, 1991.

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27

Ltjering, G. Titanium. Berlin: Springer, 2003.

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28

Katsutoshi, Komeya, Matsuo Yohtaro, Goto Takashi, Nihon Seramikkusu Kyōkai, and Nihon Gakujutsu Shinkōkai. Kōbutsu Shinkatsuyō Dai 124 Iinkai., eds. Innovation in ceramic science and engineering: Selected, peer reviewed papers from the 3rd International Symposium on Advanced Ceramics, Grand Copthorne Waterfront Hotel, December 11-15, 2006, Singapore. Stafa-Zurich, Switzerland: Trans Tech Publications, 2007.

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29

Croft, D. N. Heat treatment of welded steel structures. Cambridge, England: Abington Pub., 1996.

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30

Hosford, William F. Physical Metallurgy (Materials Engineering). CRC, 2005.

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31

Bacon, David, and Geroge E. Dieter. Mechanical Metallurgy (Materials Science and Engineering). 3rd ed. McGraw-Hill Education (ISE Editions), 1989.

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32

Modern Physical Metallurgy and Materials Engineering. Elsevier, 1999. http://dx.doi.org/10.1016/b978-0-7506-4564-5.x5000-9.

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33

Physical Metallurgy and Advanced Materials Engineering. Elsevier, 2007. http://dx.doi.org/10.1016/b978-0-7506-6906-1.x5000-8.

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34

Mechanical Metallurgy (Materials Science and Engineering). McGraw-Hill Education (ISE Editions), 1989.

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35

Alavdeen, A., and N. Venkateshwaran. A Texbook of Engineering Materials and Metallurgy. Laxmi Publications, 2006.

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36

G, Early J., Center for Materials Science (National Measurement Laboratory). Metallurgy Division., and United States. National Bureau of Standards., eds. Metallurgy. [Boulder, Colo.?]: U.S. Dept. of Commerce, National Bureau of Standards, 1985.

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37

Steels : from materials science to structural engineering. Springer, 2013.

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38

Ramakrishnan, P. Powder Metallurgy and Related High Temperature Materials (Key Engineering Materials,). Trans Tech Publications, 1988.

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39

Mechanical Alloying: For Frabrication of Advanced Engineering Materials. Noyes Publications, 2001.

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40

J, Schaefer R., Materials Science and Engineering Laboratory (U.S.). Metallurgy Division., and National Institute of Standards and Technology (U.S.), eds. Metallurgy: Technical activities 1997. [Gaithersburg, MD]: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1997.

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41

J, Schaefer R., Materials Science and Engineering Laboratory (U.S.). Metallurgy Division, and National Institute of Standards and Technology (U.S.), eds. Metallurgy: Technical activities 1997. [Gaithersburg, MD]: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1997.

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42

Mills, N. J. Plastics: Microstructure and Engineering Applications (Metallurgy and materials science). Halsted Pr, 1994.

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43

J, Schaefer R., Materials Science and Engineering Laboratory (U.S.). Metallurgy Division., and National Institute of Standards and Technology (U.S.). Technology Administration., eds. Metallurgy: Technical activities 1997. [Gaithersburg, MD]: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1997.

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44

Williams, James C., and Gerd Lütjering. Titanium (Engineering Materials and Processes). Springer, 2003.

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45

Pan, Jingzhe. Computer Modelling of Sintering at Different Length Scales (Engineering Materials and Processes). Springer-Verlag, 2008.

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46

Ratke, Lorenz, and Peter W. Voorhees. Growth and Coarsening: Ostwald Ripening in Material Processing (Engineering Materials). Springer, 2002.

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47

Gavriljuk, Valentin G., and Hans Berns. High Nitrogen Steels: Structure, Properties, Manufacture, Applications (Engineering Materials). Springer, 1999.

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48

Foner, Simon, and Brian B. Schwartz. Superconductor Materials Science: Metallurgy, Fabrication, and Applications. Springer, 2012.

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49

Aerospace materials handbook. CRC Press, 2013.

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50

Honeycombe, Robert, and Harry Bhadeshia. Steels: Microstructure and Properties, Second Edition (Metallurgy & Materials Science). 2nd ed. Butterworth-Heinemann, 1995.

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