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1

Rostásy, F. S. Assessment of mechanical properties of structural materials for cryogenic applications. London: Fédération Internationale de la Précontrainte, 1988.

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2

Falk, Jörg. Untersuchungen zum Einfluss der Belastungsgeschwindigkeit auf das Verformungs- und Bruchverhalten von Stählen unterschiedlicher Festigkeit und Zähigkeit. Düsseldorf: VDI Verlag, 1993.

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3

Dzugutov, M. I͡A. Plastichnostʹ i deformiruemostʹ vysokolegirovannykh staleĭ i splavov. 3rd ed. Moskva: "Metallurgii͡a", 1990.

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4

Zielińska-Lipiec, Anna. Analiza stabilności mikrostruktury modyfikowanych stali martenzytycznych 9% Cr w procesie wyżarzania i pełzania. Kraków: Wydawn. AGH, 2000.

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5

Kuti︠a︡ĭkin, V. G. Metrologicheskie i strukturno-fizicheskie aspekty deformirovanii︠a︡ staleĭ: Monografii︠a︡. Moskva: Akademii︠a︡ standartizat︠s︡ii, metrologii i sertifikat︠s︡ii, 2007.

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6

McHale, Paul F. Factors influencing the microstructural and mechanical properties of ULCB steel weldments. Monterey, Calif: Naval Postgraduate School, 1991.

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7

International Conference on the Processing, Microstructure and Properties of IF Steels (2000 Pittsburgh, Pa.). IF steels 2000 proceedings: June 5-7, 2000, Pittsburgh, Pennsylvania. Warrendale, Pa: Iron & Steel Society, 2000.

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8

Kalwa, Christoph. Zum Einfluss der statischen und dynamischen Reckalterung auf die Festigkeits- und Zähigkeitseigenschaften von Stählen. Aachen: Shaker, 1993.

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9

Eckel, Martin. Überprüfung bruchmechanischer Versagenskonzepte durch Versuche an thermomechanisch gewaltzten Stählen. Düsseldorf: Stahleisen, 1991.

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10

Saleh, M. Husin Bin. Retained austenite in dual phase steel and its effect on mechanical properties. Manchester: UMIST, 1998.

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11

Svensson, Lars-Erik. Control of microstructures and properties in steel arc welds. Boca Raton: CRC Press, 1994.

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12

Guthrie, Paul. The effects of strain aging on the mechanical properties of ASTM A 500 grade B structural steel tubing. [Chattanooga, Tenn.?]: The Division, [Tennessee Valley Authority, 1986.

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13

American Society of Mechanical Engineers. Winter Meeting. Properties of stainless steels in elevated temperature service: Presented at the Winter Annual Meeting of the American Society of Mechanical Engineers, Boston, Massachusetts, December 13-18, 1987. New York, N.Y. (345 E. 47th St., New York 10017): ASME, 1987.

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14

Suka, Akira. Microstructure and mechanical properties of high copper HSLA-100 steel in 2-inch plate form. Monterey, Calif: Naval Postgraduate School, 1992.

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15

Ivanovich, Shemi͡a︡kin Evgeniĭ, ed. Teorii͡a︡ i tekhnologii͡a︡ uprochnenii͡a︡ metallicheskikh splavov. Novosibirsk: "Nauka," Sibirskoe otd-nie, 1990.

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16

O'Flynn, Damian John. The influence of the mechanical properties of heat treated carbon steels on their solid particle erosion behaviour. Boston Spa, West Yorkshire: British Thesis Service, 1998.

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17

Berkhout, C. F. Metallurgy and mechanical properties of multipass submerged arc weld metal in C/MN and low alloy constructional steel. Luxembourg: Commission of the European Communities, 1987.

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18

Balakrishnan, K. S. Evaluation of the mechanical properties of SA 333 Gr.6, AISI 304 and Zr-2.5% Nb through automated ball indentation (ABI) technique. Mumbai: Bhabha Atomic Research Centre, 2009.

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19

Günther, Hans-Peter, ed. Use and Application of High-Performance Steels for Steel Structures. Zurich, Switzerland: International Association for Bridge and Structural Engineering (IABSE), 2005. http://dx.doi.org/10.2749/sed008.

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<p>New steel production processes have led to a remarkable improve­ment in steel products within the last few years, and now allows steels to be produced according to the desired mechanical and chemical properties. High-Performance Steel (HPS) is the designa­tion given to this new generation of steels that offer higher performance not only in terms of strength but also toughness, weld­ability, cold formability and corrosion resistance, compared to the traditionally used mild steel grades.</p> <p>The development of HPS goes with today's increased demand for slender lightweight structures, as for example in bridge design and the design of high-rise buildings, where there is a strong require­ment to use high-strength materials in combination with good execution and fabrication properties. However, on the structural engineering side there is a need for knowledge on these new steel grades, and quite often design codes do not provide sufficient information to fully exploit the advantageous properties of HPS.</p> <p>The present volume provides an overview of the development and application of HPS on an international level. This is done by giving information on, for example, the production process, the chemical and mechanical properties, the relevant design and fabrication standards and on recent research results. Approximately fifteen included examples of realised applications aim to provide detailed information based on existing technical solutions, and to point out the major benefits when using HPS in comparison to mild steels.</p> <p>The document is thus not a monograph but an assembly of contri­butions from different countries. lt is separated into chapters related to different countries, namely the USA, Canada, Japan and Europe, all of them providing a state-of-the-art report on HPS.</p>
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20

Bainite in Steels: Transformations, Microstructure and Properties. Institute of Materials, 2001.

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21

H. K. D. H. Bhadeshia. Bainite in Steels: Transformations, Microstructure and Properties. 2nd ed. Maney Publishing, 2001.

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22

Phelps, Clyde. Carbon Steel: Microstructure, Mechanical Properties and Applications. Nova Science Publishers, Incorporated, 2019.

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23

Pramanik, Alokesh, and Animesh Kumar Basak. Stainless Steel: Microstructure, Mechanical Properties and Methods of Application. Nova Science Publishers, Incorporated, 2015.

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24

Influence of Steel Slag on Mechanical Properties of Concrete. Tiruchengode, India: ASDF International, 2017.

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25

Hamilton, James E. The effect of temperature on the tensile properties of HSLA-100 steel. 1987.

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26

Nold, William F. Neutron irradiation effects on the mechanical properties of HY-80 steel. 1986.

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27

Yi-Wen, Cheng, McCowan C. N, and National Institute of Standards and Technology (U.S.), eds. Structure-property relationships in steel produced in hot-strip mills. Boulder, Colo: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1999.

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28

Yi-Wen, Cheng, McCowan Chris N, and National Institute of Standards and Technology (U.S.), eds. Structure-property relationships in steel produced in hot-strip mills. Boulder, Colo: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1999.

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29

Structure-property relationships in steel produced in hot-strip mills. Boulder, Colo: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1999.

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30

Yi-Wen, Cheng, McCowan Chris N, and National Institute of Standards and Technology (U.S.), eds. Structure-property relationships in steel produced in hot-strip mills. Boulder, Colo: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1999.

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31

Structure-property relationships in steel produced in hot-strip mills. Boulder, Colo: U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 1999.

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32

Impact of improved material quality on properties, product performance and design: Presented at the winter annual meeting of the American Society of Mechanical Engineers, Atlanta, Georgia, December 1-6, 1991. New York, N.Y: ASME, 1991.

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33

J, Shack W., Argonne National Laboratory, and U.S. Nuclear Regulatory Commission. Office of Nuclear Regulatory Research., eds. Mechanical properties of thermally aged cast stainless steels from Shippingport Reactor components. Washington, D.C: Division of Engineering Technology, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1995.

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34

Lee, Young-ki. Behavior of gypsum-sheathed cold-formed steel wall stud panels. 1999.

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35

Lee, Young-ki. Behavior of gypsum-sheathed cold-formed steel wall stud panels. 1999.

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36

Al-Zoubi, N. Chapter 1 Alloy Steel: Properties and Use First-Principles Quantum Mechanical Approach to Stainless Steel Alloys. InTechOpen, 2011.

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37

Bailey, N., and G. M. Evans. Metallurgy of Basic Weld Metal. William Andrew Publishing, 1997.

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38

Mechanical and corrosion properties of a high-strength, high chromium reinforcing steel for concrete. Pierre, SD (700 East Broadway) : South Dakota Department of Transportation, Office of Research, 2002.

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39

Amen, Samir Ali. Processing, mechanical and wear properties of BT1 high-speed steel: The sintering of BT1 grade high-speed steel and acomparison of its micro-structure, mechanical and wear properties after heat-treatment with those of wrought BT1. Bradford, 1985.

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40

1933-, Krauss George, Repas Paul E, Iron and Steel Society of AIME. Product Physical Metallurgy Committee., and Mechanical Working & Steel Processing Conference (34th : 1992 : Montreal, Que.), eds. Gilbert R. Speich symposium proceedings: Fundamentals of aging and tempering in bainitic and martensitic steel products : an international symposium held at the 34th Mechanical Working and Steel Processing Conference, Montreal, Quebec, Canada, October 25-28, 1992. Warrendale, PA: The Society, 1992.

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41

Zeghni, Adel E. Al-mehdy. The effect of thin film coatings and nitriding on the mechanical properties and wear resistance of tool steel. 2003.

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42

Creation of high-strength structures and joints by setting up local material properties. Stafa-Zurich, Switzerland: Trans Tech Publications, 2007.

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43

Heinz, Palkowski, and Rudolph Kai-Michael, eds. Creation of high-strength structures and joints by setting up local material properties. Stafa-Zurich, Switzerland: Trans Tech Publications, 2007.

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44

Heinz, Palkowski, and Rudolph Kai-Michael, eds. Creation of high-strength structures and joints by setting up local material properties. Stafa-Zurich, Switzerland: Trans Tech Publications, 2007.

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45

Heinz, Palkowski, and Rudolph Kai-Michael, eds. Creation of high-strength structures and joints by setting up local material properties. Stafa-Zurich, Switzerland: Trans Tech Publications, 2007.

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46

The Effect of aging at 343⁰C on the microstructure and mechanical properties of type 308 stainless steel weldments. Washington, DC: U.S. Nuclear Regulatory Commission, 2000.

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47

The Effect of aging at 343⁰C on the microstructure and mechanical properties of type 308 stainless steel weldments. Washington, DC: U.S. Nuclear Regulatory Commission, 2000.

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48

R, Lesuer D., Syn C. K, Sherby Oleg D, Minerals, Metals and Materials Society. Structural Materials Committee., and Materials Week '97 (1997 : Indianapolis, Indiana), eds. Thermomechanical processing and mechanical properties of hypereutecoid steels and cast irons: Proceedings of the Symposium : held at the 1997 TMS-ASM Materials Week in Indianapolis, Indiana, September 14-18, 1997. Warrendale, PA: Metallurgical Society, 1996.

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49

Deformation and fracture in structural PM materials: Proceedings of the international conference held in the Hotel Academia, the High Tatras, Slovakia, October 13-16, 1996. Institute of Materials Research of the Slovak Academy of Sciences, 1996.

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50

Shelton, Paul William. The influence of temperature on the strength stiffness and toughness of high-speed steels: The mechanical and cutting properties of wrought and sintered T6 and M2 grades of high-speed steel from 20-600℗ʻc. Bradford, 1985.

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