Activity measurements on the Al-rich region of the Ni–Al system – A high temperature mass spectrometric study
Abstract
Systematic vaporisation studies on the Ni –Al system with 0.32 ≤ x(Ni) ≤ 0.50 were carried out in the temperature range 1077 – 1592 K by Knudsen effusion mass spectrometry. While Al(g) was the vapour species observed over all the samples, Ni(g) was also detected over samples with the compositions x(Ni) = 0.50 and 0.49. From the p(Al) –T relations, activities of Al, and subsequently activities of Ni (by Gibbs–Duhem integration) were obtained. Moreover, partial and integral molar enthalpies and Gibbs energies of formation were evaluated. The variation of activities and other thermodynamic properties with composition are discussed. The enthalpy and Gibbs energy of formation of Ni0.5Al0.5(s) at 298.15 K were obtained as
-
We acknowledge Dr. E. Wessel and Mr. P. Lersch (both from IWV-2) for WDX and XRD characterisation of the samples. Our sincere thanks to Dr. L. Bencze of Roland Eötvös University, Budapest, Hungary for very useful discussions. T.S.L.N. thanks the Indo-German bilateral agreement on Cooperation in Science and technology for the support.
References
[1] T.B. Massalski (Ed.): Binary Alloy Phase Diagrams, ASM Metals Park, OH, 1 (1986) 140.Suche in Google Scholar
[2] R. Hultgren, P.R. Desai, D.T. Hawkins, M. Gleiser, K.K. Kelley: Selected Values of the Thermodynamic Properties of Binary Alloys, American Society for Metals, Metals Park, Ohio (1973).Suche in Google Scholar
[3] P.D. Desai: J. Phys. Chem. Ref. Data 16 (1987) 109.10.1063/1.555788Suche in Google Scholar
[4] I. Ansara, N. Dupin, H.L. Lukas, B. Sundman: J. Alloys Compds. 247 (1997) 20.10.1016/S0925-8388(96)02652-7Suche in Google Scholar
[5] W. Huang, Y.A. Chang: Intermetallics 6 (1998) 487.10.1016/S0966-9795(97)00099-XSuche in Google Scholar
[6] J.P. Neumann, Y.A. Chang, C.M. Lee: Acta Metall. 24 (1976) 593.10.1016/0001-6160(76)90078-XSuche in Google Scholar
[7] F. Zhang, Y.A. Chang, Y. Du, S.-L. Chen,W.A. Oates: Acta Mater. 51 (2003) 207.10.1016/S1359-6454(02)00392-0Suche in Google Scholar
[8] O. Kubaschewski: Trans. Faraday Soc. 54 (1958) 814.10.1039/tf9585400814Suche in Google Scholar
[9] P. Nash, O. Kleppa: J. Alloys Compds. 321 (2001) 228.10.1016/S0925-8388(01)00952-5Suche in Google Scholar
[10] E.T. Henig, H.L. Lukas: Z. Metallkd. 66 (1975) 98.Suche in Google Scholar
[11] A. Grün, E.T. Henig, F. Sommer: Z. Metallkd. 89 (1998) 591.Suche in Google Scholar
[12] K. Ryzman, Z. Moser, R.E. Watson, M. Weinert: J. Phase Equil. 19 (1998) 106.10.1361/105497198770342562Suche in Google Scholar
[13] H.D. Dannöhl, H.L. Lukas: Z. Metallkd. 65 (1974) 642.Suche in Google Scholar
[14] L. Perring, J.J. Kuntz, F. Bussy, J.C. Gachon: Intermetallics 7 (1999) 1235.10.1016/S0966-9795(99)00026-6Suche in Google Scholar
[15] J. Wang, H.J. Engell: Steel Res. 63 (1992) 320.10.1002/srin.199200527Suche in Google Scholar
[16] S.C. Schaefer: Bureau of mines report U.S. No. 7993, 1975.Suche in Google Scholar
[17] A. Steiner, K.L. Komarek: Trans. Metall. Soc. AIME 230 (1964) 786.Suche in Google Scholar
[18] N.C. Oforka: Ind. J. Chem. A 25 (1986) 1027.Suche in Google Scholar
[19] N.S. Jacobson, in: P. Nash, B. Sundman (Eds.), Applications of Thermodynamics in the Synthesis and Processing of Materials, The Minerals, Metals and Materials Society, TMS, Warrendale, PA (1995) 319.Suche in Google Scholar
[20] K. Hilpert, D. Kobertz, V. Venugopal, M. Miller, H. Gerads, F.J. Bremer, H. Nickel: Z. Naturforsch. A 42 (1987) 1327.10.1515/zna-1987-1117Suche in Google Scholar
[21] L. Bencze, D.D. Raj, D. Kath, W.A. Oates, L. Singheiser, K. Hilpert: Metall. Mater. Trans B 35 (2004) 867.10.1007/s11663-004-0081-xSuche in Google Scholar
[22] D. Raj, L. Bencze, D. Kath, W.A. Oates, J. Herrmann, L.Singheiser, K. Hilpert: Intermetallics 11 (2003) 1119.10.1016/S0966-9795(03)00149-3Suche in Google Scholar
[23] X. Ren, K. Otsuka: Phil. Mag. A 80 (2000) 467.10.1080/01418610008212062Suche in Google Scholar
[24] K. Hilpert, M. Albers, M. Eckert, D. Kath, in: M.V. Nathal, R. Darolia, C.T. Liu, P.L. Martin, D.B. Miracle, R. Wagner, M. Yamaguchi (Eds.), Structural Intermetallics, Proc. 2nd Int. Symp. Structural Intermetallics, TMS Warrendale, PA (1997) 63.Suche in Google Scholar
[25] K. Hilpert, K. Ruthardt: Ber. Bunsenges Phys. Chem. 91 (1987) 724.10.1002/bbpc.19870910707Suche in Google Scholar
[26] K. Hilpert, K.A. Gingerich: Int. J. Mass Spectrom. Ion Phys. 47 (1983) 247.10.1016/0020-7381(83)87181-2Suche in Google Scholar
[27] V.S. Yungmann, V.A. Medvedev, I.V. Veits, G.A. Bergman: IVTAN-THERMO – A Thermodynamic Database and Software System for the Personal Computer, CRC Press and Begel House, Boca Raton, FL, 1993.Suche in Google Scholar
[28] J.B. Mann, in: K. Ogata, T. Hayakawa (Eds.), Recent Developments in Mass Spectrometry. In the Proceedings of International Conference on Mass Spectrometry, Univ. Tokyo Press, Tokyo, (1970) 814 and personal communication.Suche in Google Scholar
[29] D.R. Gaskell: Introduction to Metallurgical Thermodynamics, McGraw-Hill, Tokyo (1940).Suche in Google Scholar
[30] M.W. Chase, Jr.: NIST-JANAF Thermochemical Tables Fourth Edition, J. Phys. Chem. Ref. Data monograph No. 9 (1998).Suche in Google Scholar
[31] I. Barin: Thermochemical Data of Pure Substances, Third Edition, VCH, Weinheim (1995).10.1002/9783527619825Suche in Google Scholar
[32] R.E. Hanneman, A.U. Seybolt: Trans. Metall. Soc. AIME 245 (1969) 434.Suche in Google Scholar
[33] C.G. Libowitz: Metall. Trans. 2 (1971) 85.10.1007/BF02662641Suche in Google Scholar
[34] Y.A. Chang, J.P. Neumann: Prog. Solid State Chem. 14 (1982) 221.10.1016/0079-6786(82)90004-8Suche in Google Scholar
© 2006 Carl Hanser Verlag, München
Artikel in diesem Heft
- Frontmatter
- Editorial
- Evolution of the mixed-mode character of solid-state phase transformations in metals involving solute partitioning
- Liquid–liquid interfacial tension in themonotectic alloy (Al34.5Bi65.5)95Si5 (wt.%)
- Influence of Sb additions on surface tension and density of Sn–Sb, Sn–Ag–Sb and Sn–Ag–Cu–Sb alloys: Experiment vs. modeling
- Liquid–liquid transition in elemental liquids investigated by sound velocity measurements: trends in the periodic table
- Bulk and surface properties of liquid Ga–Tl and Zn–Cd alloys
- Structure-induced order – disorder transformation in Cd – Na liquid alloys
- An indirect approach to measure glass transition temperature in metallic glasses
- Fragility, kinetic stability and phase separations in the undercooled state of bulk glass formers – a case study on metallic model systems
- Development of long-period ordered structures during crystallisation of amorphous Mg80Cu10Y10 and Mg83Ni9Y8
- Isothermal crystallization behavior of undercooled liquid Pd40Cu30Ni10P20 in terms of crystal growth, overall volume crystallization kinetics and their relation to the viscosity temperature dependence
- The magnesium-ytterbium system: A contribution to the thermodynamics of solid alloys
- Experimental investigation and thermodynamic modelling of the Mg–Al-rich region of the Mg–Al–Sr System
- Thermodynamic properties and phase relations of Zn-rich alloys in the system Pt–Zn
- Comparison of thermodynamic data of the ternary Cu–Sn–Zn system, measured with the EMF and with the calorimetric method
- Analysis of phase formation in Ni-rich alloys of the Ni–Ta–W system by calorimetry, DTA, SEM, and TEM
- Site preference, thermodynamic, and magnetic properties of the ternary Laves phase Ti(Fe1 – xAlx)2 with the crystal structure of the MgZn2-type
- Activity measurements on the Al-rich region of the Ni–Al system – A high temperature mass spectrometric study
- Metastable phases and nanocrystalline-forming ability (NFA) of melt-quenched Ni-rich (Zr, Hf)–Ni alloys
- Low temperature deposition with inductively coupled plasma
- Instructions for Authors
- Personal/Personelles
- Press/Presse
- Conferences/Konferenzen
- Frontmatter
- Editorial
- Editorial
- BBasic
- Evolution of the mixed-mode character of solid-state phase transformations in metals involving solute partitioning
- Liquid–liquid interfacial tension in themonotectic alloy (Al34.5Bi65.5)95Si5 (wt.%)
- Influence of Sb additions on surface tension and density of Sn–Sb, Sn–Ag–Sb and Sn–Ag–Cu–Sb alloys: Experiment vs. modeling
- Liquid–liquid transition in elemental liquids investigated by sound velocity measurements: trends in the periodic table
- Bulk and surface properties of liquid Ga–Tl and Zn–Cd alloys
- Structure-induced order – disorder transformation in Cd – Na liquid alloys
- An indirect approach to measure glass transition temperature in metallic glasses
- Fragility, kinetic stability and phase separations in the undercooled state of bulk glass formers – a case study on metallic model systems
- Development of long-period ordered structures during crystallisation of amorphous Mg80Cu10Y10 and Mg83Ni9Y8
- Isothermal crystallization behavior of undercooled liquid Pd40Cu30Ni10P20 in terms of crystal growth, overall volume crystallization kinetics and their relation to the viscosity temperature dependence
- The magnesium-ytterbium system: A contribution to the thermodynamics of solid alloys
- Experimental investigation and thermodynamic modelling of the Mg–Al-rich region of the Mg–Al–Sr System
- Thermodynamic properties and phase relations of Zn-rich alloys in the system Pt–Zn
- Comparison of thermodynamic data of the ternary Cu–Sn–Zn system, measured with the EMF and with the calorimetric method
- Analysis of phase formation in Ni-rich alloys of the Ni–Ta–W system by calorimetry, DTA, SEM, and TEM
- Site preference, thermodynamic, and magnetic properties of the ternary Laves phase Ti(Fe1 – xAlx)2 with the crystal structure of the MgZn2-type
- Activity measurements on the Al-rich region of the Ni–Al system – A high temperature mass spectrometric study
- Metastable phases and nanocrystalline-forming ability (NFA) of melt-quenched Ni-rich (Zr, Hf)–Ni alloys
- AApplied
- Low temperature deposition with inductively coupled plasma
- Notifications/Mitteilungen
- Instructions for Authors
- Personal/Personelles
- Press/Presse
- Conferences/Konferenzen
Artikel in diesem Heft
- Frontmatter
- Editorial
- Evolution of the mixed-mode character of solid-state phase transformations in metals involving solute partitioning
- Liquid–liquid interfacial tension in themonotectic alloy (Al34.5Bi65.5)95Si5 (wt.%)
- Influence of Sb additions on surface tension and density of Sn–Sb, Sn–Ag–Sb and Sn–Ag–Cu–Sb alloys: Experiment vs. modeling
- Liquid–liquid transition in elemental liquids investigated by sound velocity measurements: trends in the periodic table
- Bulk and surface properties of liquid Ga–Tl and Zn–Cd alloys
- Structure-induced order – disorder transformation in Cd – Na liquid alloys
- An indirect approach to measure glass transition temperature in metallic glasses
- Fragility, kinetic stability and phase separations in the undercooled state of bulk glass formers – a case study on metallic model systems
- Development of long-period ordered structures during crystallisation of amorphous Mg80Cu10Y10 and Mg83Ni9Y8
- Isothermal crystallization behavior of undercooled liquid Pd40Cu30Ni10P20 in terms of crystal growth, overall volume crystallization kinetics and their relation to the viscosity temperature dependence
- The magnesium-ytterbium system: A contribution to the thermodynamics of solid alloys
- Experimental investigation and thermodynamic modelling of the Mg–Al-rich region of the Mg–Al–Sr System
- Thermodynamic properties and phase relations of Zn-rich alloys in the system Pt–Zn
- Comparison of thermodynamic data of the ternary Cu–Sn–Zn system, measured with the EMF and with the calorimetric method
- Analysis of phase formation in Ni-rich alloys of the Ni–Ta–W system by calorimetry, DTA, SEM, and TEM
- Site preference, thermodynamic, and magnetic properties of the ternary Laves phase Ti(Fe1 – xAlx)2 with the crystal structure of the MgZn2-type
- Activity measurements on the Al-rich region of the Ni–Al system – A high temperature mass spectrometric study
- Metastable phases and nanocrystalline-forming ability (NFA) of melt-quenched Ni-rich (Zr, Hf)–Ni alloys
- Low temperature deposition with inductively coupled plasma
- Instructions for Authors
- Personal/Personelles
- Press/Presse
- Conferences/Konferenzen
- Frontmatter
- Editorial
- Editorial
- BBasic
- Evolution of the mixed-mode character of solid-state phase transformations in metals involving solute partitioning
- Liquid–liquid interfacial tension in themonotectic alloy (Al34.5Bi65.5)95Si5 (wt.%)
- Influence of Sb additions on surface tension and density of Sn–Sb, Sn–Ag–Sb and Sn–Ag–Cu–Sb alloys: Experiment vs. modeling
- Liquid–liquid transition in elemental liquids investigated by sound velocity measurements: trends in the periodic table
- Bulk and surface properties of liquid Ga–Tl and Zn–Cd alloys
- Structure-induced order – disorder transformation in Cd – Na liquid alloys
- An indirect approach to measure glass transition temperature in metallic glasses
- Fragility, kinetic stability and phase separations in the undercooled state of bulk glass formers – a case study on metallic model systems
- Development of long-period ordered structures during crystallisation of amorphous Mg80Cu10Y10 and Mg83Ni9Y8
- Isothermal crystallization behavior of undercooled liquid Pd40Cu30Ni10P20 in terms of crystal growth, overall volume crystallization kinetics and their relation to the viscosity temperature dependence
- The magnesium-ytterbium system: A contribution to the thermodynamics of solid alloys
- Experimental investigation and thermodynamic modelling of the Mg–Al-rich region of the Mg–Al–Sr System
- Thermodynamic properties and phase relations of Zn-rich alloys in the system Pt–Zn
- Comparison of thermodynamic data of the ternary Cu–Sn–Zn system, measured with the EMF and with the calorimetric method
- Analysis of phase formation in Ni-rich alloys of the Ni–Ta–W system by calorimetry, DTA, SEM, and TEM
- Site preference, thermodynamic, and magnetic properties of the ternary Laves phase Ti(Fe1 – xAlx)2 with the crystal structure of the MgZn2-type
- Activity measurements on the Al-rich region of the Ni–Al system – A high temperature mass spectrometric study
- Metastable phases and nanocrystalline-forming ability (NFA) of melt-quenched Ni-rich (Zr, Hf)–Ni alloys
- AApplied
- Low temperature deposition with inductively coupled plasma
- Notifications/Mitteilungen
- Instructions for Authors
- Personal/Personelles
- Press/Presse
- Conferences/Konferenzen