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1

Allison, J. E. Fe-Ni-Cr alloys for coatings and electroforms. Washington, DC: Dept. of the Interior, 1989.

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2

Allison, J. E. Fe-Ni-Cr alloys for coatings and electroforms. Pittsburgh, PA: U.S. Dept. of the Interior, Bureau of Mines, 1989.

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3

United States. Bureau of Mines. Fe-Ni-Cr alloys for coatings and electroforms. S.l: s.n, 1989.

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4

Ferguson, David Bruce. Characterization of high damping Fe-Cr-Mo and Fe-Cr-Al alloys for naval ships application. Monterey, California: Naval Postgraduate School, 1988.

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5

Stubbs, A. M. Chromium recovery from high-temperature shift Cr-Fe catalysts. Pittsburgh, PA: U.S. Dept. of the Interior, Bureau of Mines, 1988.

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6

Stubbs, A. M. Chromium recovery from high-temperature shift Cr-Fe catalysts. Washington, DC: U.S. Dept. of the Interior, 1988.

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7

Ciaś, Andrzej. Development and properties of Fe-Mn-(Mo)-(Cr)-C sintered structural steels. Kraków: Wydawnictwa AGH, 2004.

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8

Motta, A. T. Amorphization kinetics of Zr(Cr, Fe)₂ under ion irradiation. Chalk River, Ont: AECL Research, 1994.

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9

Motta, A. T. Amorphization kinetics of Zr(Cr, Fe)2 under ion irradiation. Chalk River, Ont: Chalk River Laboratories, 1994.

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10

Ward, Michael C. L. An EXAFS structural study of the passive films formed on Fe-Cr alloys. [s.l.]: typescript, 1986.

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11

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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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

Thompson, R. G. Effect of boron on intergranular hot cracking of Ni-Cr-Fe superalloys containing niobium. Birmingham, AL: The University of Alabama at Birmingham, 1990.

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14

Kawazoe, Y., U. Carow-Watamura, and J. Z. Yu, eds. Physical Properties of Ternary Amorphous Alloys. Part 3: Systems from Cr-Fe-P to Si-W-Zr. Berlin, Heidelberg: Springer Berlin Heidelberg, 2011. http://dx.doi.org/10.1007/978-3-642-14133-1.

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15

Rainford, Adam Coulter. The effect of ordering on the creep of Inconel 182 weld metal and a series of Ni-Cr-Fe alloys. Manchester: University of Manchester, 1995.

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16

Meyer, C. R. The corrosion and filming behaviour of an a1-cr-fe alloy. Manchester: UMIST, 1988.

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17

Bray, D. J. The fatigue crack growth properties of vapour deposited Al-Cr-Fe alloy sheet. London: HMSO, 1985.

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18

Cole, James I. Phase stability in thermally aged Fe-Cr-Mn alloys. 1991.

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19

United States. National Aeronautics and Space Administration., ed. Thermodynamic analysis of chemical compatability of several compounds with Fe-Cr-Al alloys. [Washington, DC]: NASA National Aeronautics and Space Administration, 1993.

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20

United States. National Aeronautics and Space Administration., ed. Thermodynamic analysis of chemical compatability of several compounds with Fe-Cr-Al alloys. [Washington, DC]: NASA National Aeronautics and Space Administration, 1993.

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21

Cronauer, Joseph T. A comparison of high damping shape memory alloys with Cu-Mn-based and Fe-Cr-based alloys. 1987.

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22

Schule, W., A. Panzarasa, and E. Lang. Study of Phase Transformations in Fe-Mn-Cr Alloys (Nuclear Science and Technology). European Communities / Union (EUR-OP/OOPEC/OPOCE), 1988.

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23

Kneeshaw, J. A. The corrosion behavior of Fe-Cr-Ni alloys in complex high temperature gaseous atmospheres containing the reactants oxygen, sulphur and carbon. 1987.

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24

Kneeshaw, J. A. The corrosion behavior of Fe-Cr-Ni alloys in complex high temperature gaseous atmospheres containing the reactants oxygen, sulphur and carbon. 1987.

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25

Petzow, G. Ternary Alloys: A Comprehensive Compendium of Evaluated Constitutional Data and Phase Diagrams, Vol. 10, As-Cr-Fe to As-I-Zn. Vch Pub, 1994.

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26

Hecht, Ulrike, Mark L. Weaver, and Sheng Guo, eds. Dual-phase Materials in the Medium and High Entropy Alloy Systems Al-Cr-Fe-Ni and Al-Co-Cr-Fe-Ni. Frontiers Media SA, 2021. http://dx.doi.org/10.3389/978-2-88971-225-0.

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