Books on the topic 'Nitriding'

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1

Aghajani, Hossein, and Sahand Behrangi. Plasma Nitriding of Steels. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-43068-3.

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2

M, Lakhtin I͡U︡, ed. Teorii͡a︡ i tekhnologii͡a︡ azotirovanii͡a︡. Moskva: "Metallurgii͡a︡", 1991.

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3

Ramchandani, Ajit. Nitriding of austenitic stainless steel. Birmingham: University of Aston. Department of Mechanical and Production Engineering, 1985.

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4

Sharif, Shahed. Process development of high pressure nitriding. Birmingham: University of Birmingham, 1997.

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5

Wołowiec-Korecka, Emilia. Carburising and Nitriding of Iron Alloys. Cham: Springer Nature Switzerland, 2024. http://dx.doi.org/10.1007/978-3-031-59862-3.

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6

International, Conference on Ion Nitriding (1st 1986 Cleveland Ohio). Ion nitriding: Proceedings of an International Conference on Ion Nitriding, Cleveland, Ohio, USA, 15-17 September 1986. [Metals Park, Ohio]: ASM International, 1987.

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7

Spalvins, Talivaldis. Advances and directions of ion nitriding/carburizing. Cleveland, Ohio: Lewis Research Center, 1989.

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8

Betz, Juergen. Laser and plasma nitriding of titanium alloys. Birmingham: University of Birmingham, 1988.

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9

Center, Lewis Research, ed. Advances and directions of ion nitriding/carburizing. Cleveland, Ohio: Lewis Research Center, 1989.

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10

International Conference on Ion Nitriding. Ion nitriding and ion carburizing: Proceedings of ASM's 2nd International Conference on Ion Nitriding/Carburizing, Cincinnati, Ohio, USA, 18-20 September 1989 / edited by T. Spalvins and W.L. Kovacs ; sponsored by ASM International ; co-sponsored by NASA Lewis Research Center. Materials Park, OH: ASM International, 1990.

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11

International, Conference on Ion Nitriding/Carburizing (2nd 1989 Cincinnati Ohio). Ion nitriding and ion carburizing: Proceedings of ASM's 2nd International Conference on Ion Nitriding/Carburizing, Cincinnati, Ohio, USA, 18-20 September 1989. Materials Park, Ohio: ASM International, 1990.

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12

Berg, Hans Joachim. Analyse und Überwachung von Gasatmosphären der thermisch-chemischen Behandlung: Untersuchungen am Beispiel des Gasnitrierens. Leipzig: Deutscher Verlag für Grundstoffindustrie, 1988.

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13

Roliński, Edward. Azotowanie jonowe tytanu i jego stopów. Warszawa: Wydawnictwa Politechniki Warszawskiej, 1988.

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14

United States. National Aeronautics and Space Administration, ed. Frictional and structural characterization of ion-nitrided low and high chromium steels. [Washington, D.C.?]: NASA, 1985.

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15

Frączek, Tadeusz. Niekonwencjonalne niskotemperaturowe azotowanie jarzeniowe materiałów metalicznych. Częstochowa: Wydawn. Wydziału Inżynierii Procesowej, Materiałowej i Fizyki Stosowanej Politechniki Częstochowskiej, 2011.

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16

Yong, Sun. Plasma nitriding and PVD ceramic coating of low alloy steel. Birmingham: University of Birmingham, 1989.

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17

International Conference on Carburizing and Nitriding with Atmospheres (1995 Cleveland, Ohio). 1995 carburizing and nitriding with atmospheres: Proceedings of the Second International Conference on Carburizing and Nitriding with Atmospheres, 6-8 December 1995, Cleveland, Ohio. Materials Park, OH: ASM International, 1995.

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18

Bryar, Jason Charles. Surface modification of gamma-based titanium aluminide alloys by pressure nitriding. Birmingham: University of Birmingham, 1998.

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19

Cleugh, Damien. Effects of rare earth additions on plasma nitriding of EN40B steel. Birmingham: University of Birmingham, 2003.

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20

Hibberd, Guy G. A. The effect of plasma nitriding on the corrosion resistance of titanium. Birmingham: University of Birmingham, 1991.

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21

British Cast Iron Research Association., ed. Surface coatings for wear applications: Long-term, including nitriding, carbonitriding, tufftriding and ion/plasmanitriding. Alvechurch, Birmingham: BCIRA, 1986.

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22

Johns, Susan Margaret. The development and analysis of compound layers on Ti6A14V produced by ion assisted nitriding techniques. Birmingham: University of Birmingham, 2002.

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23

J, Grabke H., Schütze Michael, European Federation of Corrosion, and Institute of Materials, Minerals, and Mining., eds. Corrosion by carbon and nitrogen: Metal dusting, carburisation and nitridation. Cambridge: Woodhead and Maney for European Federation of Corrosion on behalf of Institute of Materials, Minerals & Mining, 2007.

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24

T, Bhatt Ramakrishna, and United States. National Aeronautics and Space Administration., eds. The effect of polymer char on nitridation kinetics of silicon. [Washington, DC]: National Aeronautics and Space Administration, 1994.

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25

T, Bhatt Ramakrishna, and United States. National Aeronautics and Space Administration., eds. The effect of polymer char on nitridation kinetics of silicon. [Washington, DC]: National Aeronautics and Space Administration, 1994.

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26

Essmann, Ralf Robert. Beiträge zur chemischen Bindung in Metallimiden und -nitriden -Neutronenstreuexperimente, Phasenumwandlungen, Ionenleitung, Bandstrukturrechnungen, Gitterenergieberechnungen. Aachen: Verlag Shaker, 1992.

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27

Aghajani, Hossein, and Sahand Behrangi. Plasma Nitriding of Steels. Springer, 2016.

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28

Aghajani, Hossein, and Sahand Behrangi. Plasma Nitriding of Steels. Springer International Publishing AG, 2018.

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29

Aghajani, Hossein, and Sahand Behrangi. Plasma Nitriding of Steels. Springer London, Limited, 2016.

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30

Practical Nitriding and Ferritic Nitrocarburizing. American Society for Metals, 2003.

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31

Pye, David. Practical Nitriding and Ferritic Nitrocarburizing. ASM International, 2003. http://dx.doi.org/10.31399/asm.tb.pnfn.9781627083508.

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Practical Nitriding and Ferritic Nitrocarburizing addresses many questions that arise when using nitriding and nitrocarburizing processes to case harden engineered components. It describes the basic chemistry of each process and its effect on the metallurgy and microstructure of different grades of iron and steel. It explains how the processes and their variants are implemented and how to set up, monitor, and control process equipment to meet specific design objectives. It discusses the factors that must be considered when selecting materials and determining parameters related to surface hardness, case depth, compound zone thickness, corrosion and wear resistance, distortion, and other such variables. It also explains how materials should be prepared and handled before and after processing, how to examine and evaluate results, and how to diagnose and fix problems. For information on the print version, ISBN 978-0-87170-791-8, follow this link.
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32

Pye, David. Practical Nitriding and Ferritic Nitrocarburizing. A S M International, 2003.

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33

Spalvins, T. Ion Nitriding and Ion Carburizing: Proceedings. Asm Intl, 1990.

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34

Spalvins, T. Ion Nitriding: Proceedings of an International Conference on Ion Nitriding, Cleveland, Ohio, Usa, 15-17 September 1986. Asm Intl, 1987.

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35

Ionnai͡a︡ khimiko-termicheskai͡a︡ obrabotka splavov. Moskva: Izd-vo MGTU im. N.Ė. Baumana, 1999.

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36

Schneider, M., and J. Morral. 1995 Carburizing and Nitriding With Atmospheres: Proceedings of the Second International Conference on Carburizing and Nitriding With Atmospheres 6-8 December 1995 Cleveland, Ohio. ASM International, 1995.

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37

Jovanovic, Zoran R. Kinetic study on the production of silicon nitride by direct nitridation of silicon in a fluidized bed: Experiment and modeling. 1994.

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38

Rakhit, A. K. Heat Treatment of Gears. ASM International, 2000. http://dx.doi.org/10.31399/asm.tb.htgpge.9781627083478.

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Heat Treatment of Gears: A Practical Guide for Engineers describes the processes and procedures used to harden alloy steel gears and explains how to optimize benefits, such as improved fatigue life, while minimizing distortion and costs. The first few chapters familiarize readers with the basic concepts of heat treating and its effect on the composition, structure, and properties of iron-carbon alloys. The chapters that follow compare and contrast the heat treatments typically used for gears, including through hardening, induction hardening, carburizing, nitriding, and carbonitriding. Carburizing and nitriding are covered in much greater depth than the other methods because of their extensive use and the advantages they offer. As the book explains, carburizing produces gears with three to four times the torque density than that achieved by other methods, while nitriding causes the least amount of distortion. The book also addresses the disadvantages of each process and, using examples, presents various ways to get around them. It also discusses secondary operations, such as shot peening and finish grinding, and provides insights on material and process selection as well as gear design. For information on the print version, ISBN 978-0-87170-694-2, follow this link.
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39

Dempsey, Andrew James. The effect of nitriding on the fatigue strength of a cobalt-chromium-molybdenum implant alloy. 1985.

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40

(Editor), H. Grabke, and M. Schutze (Editor), eds. Corrosion by carbon and nitrogen: Metal dusting, carburisation and nitridation (EFC 41) (European Federation Corrosion Pubns). CRC, 2007.

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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

The 2006-2011 World Outlook for Non-Oil-Base Metal-Treating Compounds for Nitriding, Pickling, Drawing, and Cutting. Icon Group International, Inc., 2005.

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43

Parker, Philip M. The 2007-2012 World Outlook for Non-Oil-Base Metal-Treating Compounds for Nitriding, Pickling, Drawing, and Cutting. ICON Group International, Inc., 2006.

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44

Cockrem, Jeremy Maurice. Investigation of plasma nitriding and titanium nitride coating by physical vapour deposition of titanium 6A14V alloy to improve the wear resistance of inner bores V1:Initial investigation of plasma nitriding and titanium nitride coating by physical vapour deposition of titanium 6A1-4V alloy. 1995.

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45

Davis, J. R., ed. Gear Materials, Properties, and Manufacture. ASM International, 2005. http://dx.doi.org/10.31399/asm.tb.gmpm.9781627083454.

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Gear Materials, Properties, and Manufacture explains how material-related properties and operating conditions affect the lifetime and performance of gears and the ways in which they fail. It begins with a review of the basic design and configuration of gears and related engineering considerations. It then examines the effect of friction and wear and the role of lubrication in gear failures. It explains how to calculate lubricant film thickness, defines lubrication regimes, and presents guidelines for selecting and applying lubricants for specific applications. The chapters that follow cover gear materials and manufacturing methods, providing details on metals and plastics and processes such as casting and forging, powder metallurgy, injection molding, machining, grinding, finishing, and carburizing and nitriding treatments. The final chapters discuss the types and causes of gear failures and the steps involved in failure analysis. They also explain how to assess fatigue damage and estimate remaining service life and describe the tests that are used to evaluate the durability of gears under load. For information on the print version, ISBN 978-0-87170-815-1, follow this link.
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46

Avinit vacuum-plasma technologies in transport machine building: Monograph January 2021. Tallinn: Scientific Route OÜ, 2021.

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47

Hohenstein, Walter, Franz Josef Meyer, Mahadeo Anant Nabar, Kurt Steinberg, and Otto Schmitz-DuMont. Zur Frage der Mischkristallbildung Von Nitriden, Phosphiden und Arseniden Der Übergangselemente. VS Verlag fur Sozialwissenschaften GmbH, 2013.

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48

Cockrem, Jeremy Maurice. Investigation of plasma nitriding and titanium nitride coating by physical vapour deposition of titanium 6A14V alloy to improve the wear resistance of inner bores V2:Final test results of plasma nitrided and physical vapour deposited titanium nitride coated titanium 6A1-4V samples and compared with samples coated using the established techniquesof electroless nickel phosphorous plating. 1995.

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