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1

A, Aksenov A., and Eskin D. G, eds. Iron in aluminum alloys: Impurity and alloying element. London: Taylor & Francis, 2002.

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2

Wysłocki, Jerzy J. Mechanizm koercji magnetycznie twardego anizotropowego stopu Fe-Al-C. Częstochowa: Wydawn. Politechgniki Częstochowskiej, 1996.

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3

International Seminar on Refining and Alloying of Liquid Aluminium on Ferro-Alloys (1985 Trondheim, Norway). Refining and alloying of liquid aluminium and ferro-alloys: Proceedings of the International Seminar of Refining and Alloying of Liquid Aluminium and Ferro-Alloys, the Norwegian Institute of Technology, Trondheim, August 1985. Düsseldorf: Aluminium-Verlag, 1985.

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4

Woodyard, Jack R. Machining of Fe3Al intermetallics. Washington, D.C: U.S. Dept. of the Interior, Bureau of Mines, 1992.

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5

Śleboda, Tomasz. Cieplno-mechaniczna przeróbka stopów FeAI: Thermomechanical processing of FeAI alloys. Kraków: Wydawnictwa AGH, 2013.

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6

1950-, Cheng Shu-hong, and Mobley Carroll E. 1941-, eds. A fractography atlas of casting alloys. Columbus, Ohio: Battelle Press, 1992.

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7

Guzik, Edward. Model wzrostu eutektyki nieregularnej na przykładzie eutektyki grafitowej w stopach Fe-C. Kraków: Wydawnictwa AGH, 1994.

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8

International Seminar on Refining and Alloying of Liquid Aluminium and Ferro-Alloys (1985 Norwegian Institute of Technology). Refining and alloying of liquid aluminium and ferro-alloys: Proceedings of the International Seminar on Refining and Alloying of Liquid Aluminium and Ferro-Alloys, the Norwegian Institute of Technology, Trondheim, August 1985. Düsseldorf: Aluminium-Verlag, 1985.

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9

Dunning, J. S. Effect of aluminum additives on sulfidation resistance of some Fe-Cr-Ni alloys. Washington, DC: Dept. of the Interior, 1989.

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10

Schanssema, Marko. Iron-aluminium alloys for fossil fuel combustion systems. Birmingham: University of Birmingham, 1996.

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11

C, Deevi Seetharama, ASM International. Materials Science Critical Technologies., and ASM International. Specialty Materials Critical Technologies Sector., eds. International Symposium on Nickel and Iron Aluminides: Processing, Properties, and Applications: Proceedings from Materials Week '96, 7-9 October 1996, Cincinnati Convention Center, Cincinnati, Ohio. Materials Park, OH: ASM International, 1997.

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12

Dunning, J. S. Effects of Al additions on sulfidation resistance of some Fe-Cr-Ni alloys. Washington, D.C: Bureau of Mines, U.S. Dept. of the Interior, 1989.

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13

Materials Research Society. Meeting Symposium U., ed. Advanced intermetallic-based alloys for extreme environment and energy applications: Symposium held December 1-4, 2008, Boston, Massachusetts, U.S.A. Warrendale, Pa: Materials Research Society, 2009.

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14

Polzin, Ralf. Beitrag zur Klärung der Vorgänge beim laserunterstützten Walzplattieren. Freiberg: Technische Universität Bergakademie, 2005.

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15

Nyichomba, Blasius Bavo. The dimensional accuracy of sand castings (commercial aluminium alloys and grey cast iron). Birmingham: University of Birmingham, 1990.

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16

Jones, S. J. The influence of homogenisation treatment and manganese content on the aluminium-iron-silicon intermetallics in 6063 aluminium alloys. Manchester: UMIST, 1994.

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17

International Workshop on Effect of Iron and Silicon in Aluminium and its Alloys (1989 Balatonfured, Hungary). Effect of iron and silicon in aluminium and its alloys: Proceedings of the International Workshop, held in Balatonfured, Hungary, May 1989. Zurich, Switzerland: Trans Tech Publications, 1990.

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18

Elfadhli, Abd Elhafid Ibrahim. The effect of yttrium on the spallation of oxide scales formed on iron-chromium aluminium alloys at elevated temperatures. Manchester: UMIST, 1998.

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19

Hiramatsu, N. The effects of alloying elements on the oxidation of thin foils of iron-chromium-aluminium alloys at high temperatures. Manchester: UMIST, 1996.

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20

A, Belov N., and Glazoff Michael V, eds. Casting aluminum alloys. Amsterdam: Elsevier Science, 2007.

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21

Grushko, Olga, Boris Ovsyannikov, and Viktor Ovchinnokov. Aluminum-Lithium Alloys. Boca Raton : Taylor & Francis, CRC Press, 2017. | Series:: CRC Press, 2016. http://dx.doi.org/10.1201/9781315369525.

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22

Deniszczyk, Józef. Struktura elektronowa, właściwości magnetyczne i parametry struktury nadsubtelnej wybranych międzymetalicznych związków żelaza o strukturze typu B2, DO3 i L21. Katowice: Wydawnictwo Uniwersytetu Śląskiego, 2005.

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23

Kiefer, Max. Arkansas Aluminum Alloys, Inc. [Atlanta, Ga.?]: U.S. Dept. of Health and Human Services, Public Health Service, Centers for Disease Control and Prevention, National Institute for Occupational Safety and Health, 1995.

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24

Kiefer, Max. Arkansas Aluminum Alloys, Inc. [Atlanta, Ga.?]: U.S. Dept. of Health and Human Services, Public Health Service, Centers for Disease Control and Prevention, National Institute for Occupational Safety and Health, 1995.

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25

Kiefer, Max. Arkansas Aluminum Alloys, Inc. [Atlanta, Ga.?]: U.S. Dept. of Health and Human Services, Public Health Service, Centers for Disease Control and Prevention, National Institute for Occupational Safety and Health, 1995.

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26

King, Frank. Aluminium and its alloys. Chichester [West Sussex]: Ellis Horwood, 1987.

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27

Sheppard, T. Extrusion of aluminium alloys. Dordrecht: Kluwer Academic Publishers, 1999.

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28

Muster, T. H. Copper distributions in aluminum alloys. New York: Nova Science Publishers, 2008.

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29

Fine, ME, and EA Starke, eds. Rapidly Solidified Powder Aluminum Alloys. 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959: ASTM International, 1986. http://dx.doi.org/10.1520/stp890-eb.

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30

Piascik, Robert S. Environmental fatigue in aluminum-lithium alloys. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1992.

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31

Persson, Erik L. Aluminum alloys: Preparation, properties, and applications. Hauppauge, N.Y: Nova Science, 2010.

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32

Nafisi, Shahrooz, and Reza Ghomashchi. Semi-Solid Processing of Aluminum Alloys. Cham: Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-40335-9.

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33

Aluminum alloys: Preparation, properties, and applications. Hauppauge, N.Y: Nova Science, 2010.

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34

Symposium on "Dispersion Strengthened Aluminum Alloys" (6th 1988 Phoenix, Ariz.). Dispersion strengthened aluminum alloys: Proceedings of the six-session Symposium on "Dispersion Strengthened Aluminum Alloys". Warrendale, Pa: TMS, 1988.

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35

Schütze, Michael. Corrosion resistance of aluminium and aluminium alloys: Corrosive agents and their interaction with aluminium and ist [i.e. its] alloys. Frankfurt (Main), Germany: [Wiley-VCH for] DECHEMA, 2010.

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36

Aluminum alloy structures. 2nd ed. London: E & FN Spon, 1995.

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37

Belov, N. A., D. G. Eskin, and A. A. Aksenov. Iron in Aluminium Alloys: Impurity and Alloying Element (Advances in Metallic Alloys). CRC, 2002.

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38

Processing, properties, and applications of iron aluminides: Proceedings of a symposium sponsored by the ASM/MSD Flow and Fracture Committee, the SMD Physical Metallurgy Committeee and the TMS-SMD/ASM-MSD Corrosion and Environmental Effects Committee held at the Annual Meeting of the Minerals, Metals & Materials Society in San Francisco, California, February 27-March 3, 1994. Warrendale, Pa: TMS, 1994.

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39

United States. National Aeronautics and Space Administration. Scientific and Technical Information Branch., ed. Effects of chromium and aluminum on mechanical and oxidation properties of iron-nickel-base superalloys based on CG-27. [Washington, D.C.]: National Aeronautics and Space Administration, Scientific and Technical Information Branch, 1985.

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40

DeVan, J. H. Sulfidatiion/oxidation properties of iron-based alloys containing niobium and aluminum. 1989.

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41

Refining and alloying of liquid aluminium and ferro-alloys: Proceedings of the International Seminar on Refining and Alloying of Liquid Aluminium and Ferro-Alloys, ... of Technology, Trondheim, August 1985. Aluminium-Verlag, 1985.

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42

United States. National Aeronautics and Space Administration. Scientific and Technical Information Division., ed. Thermodynamic analysis of compatibility of several reinforcement materials with FeAl alloys. [Washington, DC]: National Aeronautics and Space Administration, Scientific and Technical Information Division, 1988.

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43

Advances in Lightweight Automotive Castings and Wrought Aluminum Alloys (Sae International). Society of Automotive Engineers Inc, 2004.

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44

United States. Bureau of Mines, ed. Machining of Feb3sAl intermetallics. Washington, D.C: U.S. Dept. of the Interior, Bureau of Mines, 1992.

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45

Center, Langley Research, ed. NASA-UVa light aerospace alloy and structures technology program supplement: Aluminum-based materials for high speed aircraft : semi-annual report July 1, 1992 - December 31, 1992. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1995.

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46

Center, Langley Research, ed. NASA-UVa light aerospace alloy and structures technology program supplement: Aluminum-based materials for high speed aircraft : semi-annual report July 1, 1992 - December 31, 1992. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1995.

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47

Center, Langley Research, ed. NASA-UVa light aerospace alloy and structures technology program supplement: Aluminum-based materials for high speed aircraft : semi-annual report July 1, 1992 - December 31, 1992. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1995.

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48

The Electrodeposition of Cobalt, Iron, and Antimony and their Aluminum Alloys from Room-Temperature Aluminum Chloride 1-Methyl-3-Ethylimidazolium Chloride Molten Salt. Storming Media, 1997.

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49

Kovacs, Istvan, and INTERNATIONAL WORKSHOP ON EFFECT OF IRON. Effect of Iron and Silicon in Aluminum and Its Alloys: Proceedings of the International Workshop Held in Balatonfured, Hungary, May, 1989 (Key Eningeering Materials,). Trans Tech Publications, 1990.

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50

Aluminum Alloys. MDPI, 2018. http://dx.doi.org/10.3390/books978-3-03842-475-8.

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