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1

P, Villars, ed. Pearson's handbook: Crystallographic data for intermetallic phases. Materials Park, OH: ASM International, 1997.

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2

Daams, J. L. C. Atlas of crystal structure types for intermetallic phases. Materials Park, OH: ASM International, 1991.

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3

Pearson, W. B. Pearson's handbook of crystallographic data for intermetallic phases. Ohio: American Soceity for metals, 1985.

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4

Daams, J. L. C. Atlas of crystal structure types for intermetallic phases. Materials Park, OH: ASM International, 1991.

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5

Villars, P. Pearson's handbook of crystallographic data for intermetallic phases. 2nd ed. Materials Park, OH: ASM International, 1991.

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6

Daams, J. L. C. Atlas of crystal structure types for intermetallic phases. Materials Park, OH: ASM International, 1991.

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7

Daams, J. L. C. Atlas of crystal structure types for intermetallic phases. Materials Park, OH: ASM International, 1991.

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8

Daams, J. L. C. Atlas of crystal structure types for intermetallic phases. Materials Park, OH: ASM International, 1991.

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9

D, Calvert L., and Pearson W. B, eds. Pearson's handbook of crystallographic data for intermetallic phases. Metals Park, Oh: American Society for Metals, 1985.

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10

Hellner, E. Structure type descriptions for intermetallic phases in the monoclinic system. Karlsruhe: Fachinformationszentrum Karlsruhe, 1993.

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11

Hellner, E. Structure type descriptions for intermetallic phases in the orthorhombic system. Eggenstein-Leopoldshafen: Fachinformationszentrum Karlsruhe, 1992.

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12

Fässler, Thomas F. Zintl Phases: Principles and Recent Developments. Berlin, Heidelberg: Springer-Verlag Berlin Heidelberg, 2011.

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13

Esther, Belin-Ferré, ed. Basics of thermodynamics and phase transitions in complex intermetallics. Singapore: World Scientific, 2008.

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14

Nikiforovich, Eremenko Valentin, and Instytut problem materialoznavstva (Akademii͡a︡ nauk Ukraïnsʹkoï RSR), eds. Poverkhnostnoe nati͡a︡zhenie i termodinamika metallicheskikh rasplavov. Kiev: Nauk. dumka, 1988.

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15

Nikiforovich, Eremenko Valentin, and Instytut problem materialoznavstva (Akademii͡a︡ nauk Ukraïnsʹkoï RSR), eds. Fizicheskai͡a︡ khimii͡a︡ neorganicheskikh materialov: V trekh tomakh. Kiev: Nauk. dumka, 1988.

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16

K, Hoffman Eric, and Langley Research Center, eds. Evaluation of the transient liquid phase (TLP) bonding process for Ti₃-Based honeycomb core sandwich structure. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1998.

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17

F, Giamei Anthony, Inoue K, Mishima Yoshinao, Minerals, Metals and Materials Society. Structural Materials Division., and Minerals, Metals and Materials Society. Fall Meeting, eds. Mechanical properties and phase transformations of multiphase intermetallic alloys: Proceedings of a symposium sponsored by the TMS-SMD Physical Metallurgy Committee at the '94 TMS Fall Meeting in Rosemont, Illinois, October 2-6, 1994. Warrendale, Pa: Minerals, Metals & Materials Society, 1995.

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18

Lawrence, John Edward. Intermetallic Phases of Titanium-Beryllium. Creative Media Partners, LLC, 2021.

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19

Villars, P. Pearson's Handbook: Desk Edition : Crystallographic Data for Intermetallic Phases. Asm Intl, 1998.

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20

Fässler, Thomas F. Zintl Phases: Principles and Recent Developments. Springer, 2013.

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21

Belin-Ferré, Esther. Basics of Thermodynamics and Phase Transitions in Complex Intermetallics. WORLD SCIENTIFIC, 2008. http://dx.doi.org/10.1142/6718.

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22

Basics of Thermodynamics and Phase Transitions in Complex Intermetallics. World Scientific Publishing Co Pte Ltd, 2008.

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23

Basics of Thermodynamics and Phase Transitions in Complex Intermetallics. World Scientific Publishing Co Pte Ltd, 2008.

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24

Termodinamika intermetallidov i fazovye ravnovesii͡a︡ v metallicheskikh sistemakh. Kiev: Nauk. dumka, 1988.

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25

Humpston, Giles, and David M. Jacobson. Principles of Soldering. ASM International, 2004. http://dx.doi.org/10.31399/asm.tb.ps.9781627083522.

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Abstract:
Principles of Soldering serves as a problem-solving guide for engineers who work with soldering processes and soldered components and assemblies. It begins with a review of key process parameters, including surface energy and tension, wetting and contact angle, fluid flow, filler spreading characteristics, dissolution of parent materials, and intermetallic growth. It then examines the factors that influence the functional integrity of soldered joints and the practicality of the process employed. It discusses the metallurgy of solder alloy systems, the effect of metallic impurities, and the use of phase diagrams to better understand and control the soldering process. It explains how joining atmospheres influence chemical reactions and how fluxes help remove surface oxides and other films. It describes the benefits of fluxless soldering and the role of materials in defining process constraints. It also covers lead-free solders, bump bonding, amalgams, and diffusion soldering as well as mechanical property testing, joint characterization and modeling techniques, and solderability standards. For information on the print version, ISBN 978-0-87170-792-5, follow this link.
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26

(Editor), A. F. Giamei, K. Inoue (Editor), and Y. Mishima (Editor), eds. Mechanical Properties and Phase Transformations of Multiphase Intermetallic Alloys: Proceedings of a Symposium Sponsored by the Tms-Smd Physical Metallurgy ... in Rosemont, Illinois, October 2-6, 1994. Minerals, Metals, & Materials Society, 1996.

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