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Procurando estudar diferentes propriedades, uma melhor compreensão da microestrutura e do aprimoramento das propriedades das ligas estudadas, são sugeridas as seguintes abordagens de pesquisa, baseando-se na análise e resultados deste trabalho:

 Averiguar as propriedades químicas, realizando ensaios de corrosão nas ligas Al- 5%Ni,Al-11%Si e Al-11%Si-5%Ni, estabelecendo a influência da microestrutura;

 Avaliar o coeficiente de expansão térmica, desgaste e as propriedades mecânicas sob alta temperatura da liga Al-11%Si-5%Ni;

 Utilizar outras técnicas de caracterização microestrutural para determinar o intermetálico com morfologia de “espinha de peixe”, presente na liga Al-11%Si-5%Ni;

 Empregar a técnica de dissolução na liga Al-11%Si-5%Ni, visando uma melhor visualização da morfologia dos intermetálicos;

 Adicionar um elemento de liga, agindo como modificador químico, nas ligas Al- 11%Si, Al-5%Ni e Al-11%Si-5%Ni, avaliando as mudanças na microestrutura, e consequentemente, nas propriedades mecânicas.

REFERÊNCIAS

ADABI, M.; AMADEH, A. A., Formation mechanisms of Ni–Al intermetallics during heat treatment of Ni coating on 6061 Al substrate, Transactions of Nonferrous Metals Society of

China, v. 25, n. 12, p. 3959–3966, 2015.

AKER, A.; KAYA, H., Measurements of Microstructural, Mechanical, Electrical, and Thermal Properties of an Al–Ni Alloy, International Journal of Thermophysics, v. 34, n. 2, p. 267–283, 2013.

AKER, A.; KAYA, H., Microstructure , Mechanical , Electrical and Thermal Properties of the Al-Si-Ni Ternary Alloy, International Journal of Chemical, Molecular, Nuclear,

Materials and Metallurgical Engineering, v. 9, n. 8, p. 908–913, 2015.

ALTINTAS, Y. et al., Determination of thermodynamic properties of aluminum based binary and ternary alloys, Journal of Alloys and Compounds, v. 649, p. 453–460, 2015.

ARAUJO, I. J. C. et al.., Evolution of eutectic spacing during unidirectional solidification of Al-Ni alloys, Materials Research, v. 14, n. 2, p. 268–273, 2011.

ARMSTRONG, R. W., The influence of polycrystal grain size on several mechanical properties of materials, Metallurgical and Materials Transactions, v. 1, n. 5, p. 1169–1176, 1970.

ASGHAR, Z.; REQUENA, G.; KUBEL, F., The role of Ni and Fe aluminides on the elevated temperature strength of an AlSi12 alloy, Materials Science and Engineering A, v. 527, n. 21–22, p. 5691–5698, 2010.

BERTELLI, F. et al., Cooling thermal parameters, microstructure, segregation and hardness in directionally solidified Al–Sn-(Si;Cu) alloys, Materials & Design, v. 72, p. 31–42, 2015.

BERTELLI, F. et al., Inward and outward solidification of cylindrical castings: The role of the metal/mold heat transfer coefficient, Materials Chemistry and Physics, v. 136, n. 2–3, p. 545–554, 2012.

BOONTEIN, S. et al., Reduction in secondary dendrite arm spacing in cast aluminium alloy A356 by Sb addition, International Journal of Cast Metals Research, v. 24, n. 2, p. 108– 112, 2011.

BOUCHARD, D.; KIRKALDY, J. S., Prediction of dendrite arm spacings in unsteady-and steady-state heat flow of unidirectionally solidified binary alloys, Metallurgical and

Materials Transactions B, v. 28, n. 4, p. 651–663, 1997.

BÖYÜK, U. et al., Directional solidification of Al-Cu-Ag alloy, Applied Physics A:

Materials Science and Processing, v. 95, n. 3, p. 923–932, 2009.

BÖYÜK, U., Physical and mechanical properties of Al-Si-Ni eutectic alloy, Metals and

Materials International, v. 18, n. 6, p. 933–938, 2012.

BÖYÜK, U.; ENGIN, S.; MARAŞLI, N., Microstructural characterization of unidirectional solidified eutectic Al-Si-Ni alloy, Materials Characterization, v. 62, n. 9, p. 844–851, 2011.

BRESCIANI FILHO, E.; SILVA, I.B.; BATALHA, G.F.; BUTTON, S.T. Conformação

plástica dos metais, 6ª ed. (1ª edição digital), São Paulo: EPUSP, 2011, 254 p.

BRITO, C. C. Parâmetros Térmicos e Microestruturais na Solidificação Transitória de

Ligas Al-Mg e Al-Mg-Si e Correlações com Resistências Mecânica e à Corrosão. 2016.

205p. Tese (Doutorado) - Faculdade de Engenharia Mecânica, Universidade Estadual de Campinas, Campinas, 2016.

BRITO, C. et al., Characterization of Dendritic Microstructure, Intermetallic Phases, and Hardness of Directionally Solidified Al-Mg and Al-Mg-Si Alloys, Metallurgical and

Materials Transactions A, v. 46, n. 8, p. 3342–3355, 2015.

BRUNELLI, K.; PERUZZO, L.; DABALÀ, M., The effect of prolonged heat treatments on the microstructural evolution of Al/Ni intermetallic compounds in multi layered composites,

Materials Chemistry and Physics, v. 149–150, p. 350–358, 2015.

ÇADIRLI, E. et al., Experimental investigation of the effect of solidification processing parameters on the rod spacings in the Sn–1.2wt.% Cu alloy, Journal of Alloys and

Compounds, v. 486, n. 1–2, p. 199–206, 2009.

ÇADIRLI, E.; KAYA, H.; GÜNDÜZ, M., Effect of growth rates and temperature gradients on the lamellar spacing and the undercooling in the directionally solidified Pb–Cd eutectic alloy, Materials Research Bulletin, v. 38, n. 9–10, p. 1457–1476, 2003.

CANTÉ, M. V. et al, Experimental analysis of the columnar-to-equiaxed transition in directionally solidified Al–Ni and Al–Sn alloys, Materials Letters, v. 61, n. 11–12, p. 2135– 2138, 2007.

CANTÉ, M. V. et al, Interrelation of cell spacing, intermetallic compounds and hardness on a directionally solidified Al-1.0Fe-1.0Ni alloy, Materials and Design, v. 51, p. 342–346, 2013.

CANTÉ, M. V. et al., Microstructural Development in Al-Ni Alloys Directionally Solidified under Unsteady-State Conditions, Metallurgical and Materials Transactions A, v. 39, n. 7, p. 1712–1726, 2008.

CANTÉ, M. V. et al., The correlation between dendritic microstructure and mechanical properties of directionally solidified hypoeutectic Al-Ni alloys, Metals and Materials

International, v. 16, n. 1, p. 39–49, 2010.

CANTÉ, M. V. Solidificação transitória, microestrutura e propriedades de ligas Al-Ni. 2009. 178p. Tese (Doutorado) - Faculdade de Engenharia Mecânica, Universidade Estadual de Campinas, Campinas, 2009.

CHEN, M., A brief overview of bulk metallic glasses, NPG Asia Materials, v. 3, n. 9, p. 82– 90, 2011.

CHEN, X. et al., Microstructure optimization and mechanical properties of lightweight Al– Mg 2 Si in-situ composite, International Journal of Materials Research, v. 107, n. 9, p. 842–850, 2016.

CRUZ, K. A. S. Microestrutura de Solidificação, Resistência Mecânica e ao Desgaste de

Ligas Al-Sn e Al-Si. 2008. 186p. Tese (Doutorado) - Faculdade de Engenharia Mecânica.

Universidade Estadual de Campinas, 2008.

CRUZ, K. S. et al., Dendritic Arm Spacing Affecting Mechanical Properties and Wear Behavior of Al-Sn and Al-Si Alloys Directionally Solidified under Unsteady-State Conditions, Metallurgical and Materials Transactions A, v. 41, n. 4, p. 972–984, 2010.

CRUZ, K. S. et al., Microstructural development in Al–Sn alloys directionally solidified under transient heat flow conditions, Materials Chemistry and Physics, v. 109, n. 1, p. 87– 98, 2008.

DAI, W. et al., Brazing 6061 aluminum alloy with Al-Si-Zn filler metals containing Sr, International Journal of Minerals, Metallurgy and Materials, v. 20, n. 4, p. 365–370, 2013.

DIAS, M. et al., Interconnection of thermal parameters, microstructure and mechanical properties in directionally solidified Sn-Sb lead-free solder alloys, Materials

DUARTE, R. N. Solidificação Unidirecional Transitória, Microestrutura e Propriedades

Termofísicas e Mecânicas de Ligas Al – Ag – (Cu). 2016. 208p. Tese (Doutorado) -

Faculdade de Engenharia Mecânica, Universidade Estadual de Campinas, Campinas, 2016.

EADY, J. A.; HOGAN, L. M., Some crystallographic observations of growth-twinned dendrites in aluminium, Journal of Crystal Growth, v. 23, n. 2, p. 129–136, 1974.

EFZAN, M. N. E; KONG, H. J.; KOK, C. K. Review: Effect of alloying element on Al-Si alloys, Advanced Materials Research, v. 845, p. 355-359, 2013.

ELLIOT, R. “Eutectic solidification processing”, 1ª ed., Butterworths & Co., 1983, 378 p.

ELMADAGLI, M.; PERRY, T.; ALPAS, A.T., A parametric study of the relationship between microstructure and wear resistance of Al–Si alloys, Wear, v. 262, n. 1–2, p. 79–92, 2007.

EL-MAHALLAWY, N.A., Effect of composition on the structure of directionally solidified Al-Ni and Al-Ni-Cu composites, Fibre Science and Technology, v. 19, n. 1, p. 27–36, 1983.

FABRICHNAYA, O. et al., Al-Ni-Si (Aluminium - Nickel - Silicon), Light Metal Systems. Part 3, Berlin/Heidelberg: Springer-Verlag, p. 1–25, 2005.

FAN, Y.; MAKHLOUF, M. M., The effect of introducing the Al–Ni eutectic composition into Al–Zr–V alloys on microstructure and tensile properties, Materials Science and

Engineering: A, v. 654, p. 228–235, 2016.

FARIA, J. D. et al., Influência na microestrutura e na microdureza decorrente da adição de 4%Ag na liga Al-4%Cu solidificada unidirecionalmente, Revista Materia, v. 20, n. 4, p. 1– 16, 2015.

FARIA, J.D. Correlações entre Variáveis Térmicas, Microestrutura e Propriedades

Mecânicas das Ligas Al-4%Cu e Al-4%Cu-4%Ag Solidificadas em Regime Transitório.

2015. 144p. Dissertação (Mestrado) - Faculdade de Engenharia Mecânica. Universidade Estadual de Campinas, 2015.

FATAHALLA, N.; HAFIZ, M.; ABDULKHALEK, M., Effect of microstructure on the mechanical properties and fracture of commercial hypoeutectic Al-Si alloy modified with Na, Sb and Sr, Journal of Materials Science, v. 34, n. 14, p. 3555–3564, 1999.

FEURER, U. Influence of alloy composition and solidification conditions on dendrite arm feeding and hot tearing properties of aluminum alloys, Proceedings of the Symposium on

Quality Control of Engineering Alloys, p. 131-145, 1977.

FREITAS, E. S. et al., Growth of tertiary dendritic arms during the transient directional solidification of hypoeutectic Pb–Sb alloys, Philosophical Magazine, v. 91, n. 35, p. 4474– 4485, 2011.

FU, J. W. et al., Effect of cooling rate on solidification microstructures in AISI 304 stainless steel, Materials Science and Technology, v. 24, n. 8, p. 941–944, 2008.

GARCIA, A. “Solidificação: Fundamentos e aplicações”, 2ª ed., Campinas: Editora Unicamp, p. 400, 2007.

GARCÍA-HINOJOSA, J, Structure and properties of Al–7Si–Ni and Al–7Si–Cu cast alloys nonmodified and modified with Sr, Journal of Materials Processing Technology, v. 143– 144, n. 1, p. 306–310, 2003.

GÖGEBAKAN, M.; OKUMUS, M., Structure and crystallization kinetics of amorphous Al – Ni – Si alloy, Materials Science-Poland, v. 27, n. 1, p. 79–87, 2009.

GOMES, L. G. Microestrutura Dendrítica, Macrossegregação e Microporosidade na

Solidificação de Ligas Ternárias Al-Si-Cu. 2012. 178p. Tese (Doutorado) - Faculdade de

Engenharia Mecânica, Universidade Estadual de Campinas, Campinas, 2012.

GONZALEZ, G. et al., The influence of cooling rate on the microstructure of an Al–Ni hypereutectic alloy, Materials Characterization, v. 59, n. 11, p. 1607–1612, 2008.

GOULART, P. R. et al., Mechanical properties as a function of microstructure and solidification thermal variables of Al–Si castings, Materials Science and Engineering: A, v. 421, n. 1–2, p. 245–253, 2006.

GOURLAT, P. R. Caracterização da Microestrutura de Solidificação de Ligas Al-Fe e

Correlação com Propriedades Mecânicas. 2010. 160p. Tese (Doutorado) - Faculdade de

Engenharia Mecânica, Universidade Estadual de Campinas, Campinas, 2010.

GRUGEL, R. N., Secondary and tertiary dendrite arm spacing relationships in directionally solidified Al-Si alloys, Journal of Materials Science, v. 28, n. 3, p. 677–683, 1993.

GÜNDÜZ, M. et al., Interflake spacings and undercoolings in Al-Si irregular eutectic alloy,

Materials Science and Engineering A, v. 369, n. 1–2, p. 215–229, 2004.

HAO, Y. et al., Improved wear resistance of Al-15Si alloy with a high current pulsed electron beam treatment, Nuclear Instruments and Methods in Physics Research, Section B: Beam

Interactions with Materials and Atoms, v. 269, n. 13, p. 1499–1505, 2011.

HAQUE, M. M.; ISMAIL, A. F., Effect of superheating temperatures on microstructure and properties of strontium modified aluminium–silicon eutectic alloy, Journal of Materials

Processing Technology, v. 162–163, n. SPEC. ISS., p. 312–316, 2005.

HEGDE, S.; PRABHU, K. N., Modification of eutectic silicon in Al–Si alloys, Journal of

Materials Science, v. 43, n. 9, p. 3009–3027, 2008.

HIMEMIYA, T.; UMEDA, T., Three-Phase Planar Eutectic Growth Models for a Ternary Eutectic System, Materials Transactions, JIM, v. 40, n. 7, p. 665–674, 1999.

HOSCH, T.; ENGLAND, L. G.; NAPOLITANO, R. E., Analysis of the high growth-rate transition in Al–Si eutectic solidification, Journal of Materials Science, v. 44, n. 18, p. 4892–4899, 2009.

HOSCH, T.; NAPOLITANO, R. E., The effect of the flake to fiber transition in silicon morphology on the tensile properties of Al–Si eutectic alloys, Materials Science and

Engineering: A, v. 528, n. 1, p. 226–232, 2010.

HU, X. W. et al., Research on lamellar structure and microhardness in directionally solidified ternary Sn–40.5Pb–2.6Sb eutectic alloy, Journal of Alloys and Compounds, v. 493, n. 1–2, p. 116–121, 2010.

HUNT, J. D. Cellular and primary dendrite spacings. In: Solidification and Casting of

Metals: Proceedings of an International Conference on Solidification, London: The

Metals Society, p. 3-9, 1979.

HUNT, J. D.; LU, S. -Z., Numerical modelling of cellular and dendritic array growth: spacing and structure predictions, Materials Science and Engineering A, v. 173, n. 1–2, p. 79–83, 1996.

IKUNO, H.; HOHJO, H.; SUGIMOTO, Y.; UEDA, I.; IWAHORI, H. Kabushiki Kaisha Toyota Chuo Kenkyusho. “Aluminum alloys for casting and aluminum alloy castings”, C22C 21/04 (20060101) US 20050100473 A1, out. 2004, mai. 2005, p. 12.

JACKSON K. A.; HUNT J. D. Lamellar and Rod Eutectic Growth, Transactions of the

Metallurgical Society of AIME, v. 236, p. 1129-1142, 1966.

JAIN, M.; GUPTA, S. P., Formation of intermetallic compounds in the Ni-Al-Si ternary system, Materials Characterization, v. 51, n. 4, p. 243–257, 2003.

JEONG, C.-Y., Effect of Alloying Elements on High Temperature Mechanical Properties for Piston Alloy, Materials Transactions, v. 53, n. 1, p. 234-239, 2012.

JUAREZ-HERNANDEZ, A; JONES, H, Growth Temperature Measurements and Solidification Microstructure Selection of Primary Al3Ni and Eutectic in the αAl-Al3Ni System, Scripta Materialia, v. 38, n. 5, p. 729–734, 1998.

KARAKULAK, E. et al., Mechanical properties of hypoeutectic Al-Ni alloys with Al 3 Ni intermetallics, Materials Testing, v. 58, n. 2, p. 117–121, 2016.

KAYA, H. et al, Effect of the Temperature Gradient, Growth Rate, and the Interflake Spacing on the Microhardness in the Directionally Solidified Al-Si Eutectic Alloy, Journal of

Materials Engineering and Performance, v. 12, n. 5, p. 544–551, 2003.

KAYA, H. et al,. Measurements of the microhardness, electrical and thermal properties of the Al-Ni eutectic alloy, Materials and Design, v. 34, p. 707–712, 2012.

KAYA, H. et al., Unidirectional solidification of aluminium-nickel eutectic alloy, Metallic

Materials, v. 48, n. 5, p. 291–300, 2010.

KAYA, H.; ÇADIRLI, E.; GÜNDÜZ, M., Dendritic Growth in an Aluminum-Silicon Alloy,

Journal of Materials Engineering and Performance, v. 16, n. 1, p. 12–21, 2007.

KAYGISIZ, Y.; MARAŞLI, N., Microstructural, mechanical and electrical characterization of directionally solidified Al–Si–Mg eutectic alloy, Journal of Alloys and Compounds, v. 618, p. 197–203, 2015.

KAZAKOVA, E. F.; LOBODA, T. P.; RUSNYAK, Yu I., Formation of supersaturated solid solutions in aluminum alloys with Mo, Ti, Zr, and Cr, Metal Science and Heat Treatment, v. 51, n. 9–10, p. 482–485, 2009.

KHAN, S. et al., Hardness and mechanical property relationships in directionally solidified aluminium-silicon eutectic alloys with different silicon morphologies, Journal of Materials

Science, v. 28, n. 21, p. 5957–5962, 1993.

KOVACOVA, K.; DILLE, J.; BERGHEZAN, A., Unidirectional solidification of ternary eutectic Al-Ni-Si alloys, Composites, v. 7, n. 4, p. 249–255, 1976.

KUKUŁA-KURZYNIEC, A. et al., Amorphous - Nanocrystalline Melt Spun Al-Si-Ni Based Alloys Modified with Cu and Zr, Archives of Metallurgy and Materials, v. 58, n. 2, p. 419– 423, 2013.

KURZ, W.; FISHER, D. J. Fundamentals of Solidification, Trans Tech Publications Ltd; 4ª ed., 1998, 316 p.

KURZ, W.; FISHER, D. J., Dendrite growth at the limit of stability: tip radius and spacing,

Acta Metallurgica, v. 29, n. 1, p. 11–20, 1981.

LEE, J. H. et al., Microstructure evolution in directionally solidified Fe–18Cr stainless steels,

Materials Science and Engineering: A, v. 413–414, n. 4, p. 306–311, 2005.

LI, C. et al., Reaction diffusion in Ni–Al diffusion couples in steady magnetic fields, Journal

of Alloys and Compounds, v. 641, p. 7–13, 2015.

LI, M. et al., Study on liquid structure feature of Al100−xNix alloy with resistivity and rapid solidification method, Journal of Non-Crystalline Solids, v. 411, p. 26–34, 2015.

LIAO, H. C. et al., Eutectic Solidification in Near-eutectic Al-Si Casting Alloys, Journal of

Materials Science & Technology, v. 26, n. 12, p. 1089–1097, 2010.

LIU, J. C.; MAYER, J. W.; BARBOUR, J. C., Kinetics of NiAl 3 and Ni 2 Al 3 phase growth on lateral diffusion couples, Journal of Applied Physics, v. 64, n. 2, p. 656–662, 1988.

LIU, Y. et al., Effect of Fe, Si and Cooling Rate on the Formation of Fe- and Mn-rich Intermetallics in Al-5Mg-0.8Mn Alloy, Journal of Materials Science and Technology, v. 32, n. 4, p. 305–312, 2016.

LIU, Y.; DING, C.; LI, Y. X., Grain refining mechanism of Al-3B master alloy on hypoeutectic Al-Si alloys, Transactions of Nonferrous Metals Society of China (English

LU, L.; NOGITA, K.; DAHLE, A. K., Combining Sr and Na additions in hypoeutectic Al–Si foundry alloys, Materials Science and Engineering: A, v. 399, n. 1–2, p. 244–253, 2005. MA, D.; CHANG, Y. A., Competitive formation of ternary metallic glasses, Acta Materialia, v. 54, n. 7, p. 1927–1934, 2006.

MATSUNAGA, T.; KADOI, K.; NAKAE, H., Influence of Gravity on Microstructure of Directionally Solidified Al-Ni Eutectic Alloy, Journal of the Japan Institute of Metals, v. 74, n. 4, p. 231–236, 2010.

MBUYA, T. O.; SINCLAIR, I.; MOFFAT, A. J.; REED, P. A. S., Analysis of Fatigue Crack Initiation and S-N Response of Model Cast Aluminium Piston Alloys, Materials Science and

Engineering A, v. 528, p. 7331-7340, 2011.

MCCARTNEY, D. G.; HUNT, J. D.; JORDAN, R. M., The structures expected in a simple ternary eutectic system: Part 1. Theory, Metallurgical Transactions A, v. 11, n. 8, p. 1243– 1249, 1980.

MCKAY, B. J. et al., Heterogeneous nucleation in an Al–Ni–Si alloy studied using a metallic glass technique, Materials Science and Engineering: A, v. 304–306, n. 1–2, p. 240–244, 2001.

MORTENSEN, A., On the rate of dendrite arm coarsening, Metallurgical Transactions A, v. 22, n. 2, p. 569–574, 1991.

MOUTINHO, D. J. C. Análise da evolução microestrutural e da formação de

macrossegregação e microporosidade na solidificiação unidirecional transitória de ligas ternárias Al-Cu-Si. 2002. 172p. Tese (Doutorado) - Faculdade de Engenharia Mecânica,

Universidade Estadual de Campinas, Campinas, 2012.

NAPOLITANO, R. E., Coupled Growth Structures in Univariant and Invariant Eutectic Solidification, Solidification of Containerless Undercooled Melts, Weinheim, Germany: Wiley-VCH Verlag GmbH & Co. KGaA, p. 483–507, 2012.

NAVE, M. D.; DAHLE, A. K.; STJOHN, D. H., Halo formation in directional solidification,

Acta Materialia, v. 50, n. 11, p. 2837–2849, 2002.

OJHA, K. V. et al., Shape, microstructure and wear of spray formed hypoeutectic Al-Si alloys, Materials Science and Engineering A, v. 487, n. 1–2, p. 591–596, 2008.

aluminum, tin, and zinc base binary alloys, Journal of Crystal Growth, v. 29, n. 2, p. 137– 146, 1975.

OKAMOTO, Y. Showa Denko K. K. “Method for producing shaped article of aluminum

alloy, shaped aluminum alloy article and production system”, C22F 1/04 (20060101) US

20070144629 A1, jun. 2005, jun. 2007, p. 20.

OKAYASU, M.; TAKEUCHI, S., Crystallization characteristics of cast aluminum alloys during a unidirectional solidification process, Materials Science and Engineering: A, v. 633, p. 112–120, 2015.

OSÓRIO, W. R. et al, Experimental analysis of corrosion resistance on columnar to equiaxed transition region of as cast structures of Al–Cu alloys, Materials Science and Technology, v. 24, n. 12, p. 1433–1437, 2008.

PADALKO, A. G. et al., Barothermal analysis and structure of the eutectic Al-Ni (2.7 at % Ni) alloy, Inorganic Materials, v. 48, n. 6, p. 582–587, 2012.

PAN, X. M.; JIN, Z. P.; ZHAO, J. -C., Determination of the isothermal sections of the Al-Ni- Si ternary system at 750 °C and 850 °C, Metallurgical and Materials Transactions A, v. 36, n. July, p. 1757–1767, 2005.

PERES, M. D. Desenvolvimento da Macroestrutura e da Microestrutura na Solidificação

Unidirecional Transitória de Ligas Al-Si. 2005. 151p. Tese (Doutorado) - Faculdade de

Engenharia Mecânica. Universidade Estadual de Campinas, 2005.

PERES, M. D.; SIQUEIRA, C. A.; GARCIA, A., Macrostructural and microstructural development in Al–Si alloys directionally solidified under unsteady-state conditions, Journal

of Alloys and Compounds, v. 381, n. 1–2, p. 168–181, 2004.

PRATHEESH, K.; RAVI, M.; KANJIRATHINKAL, A.; JOSEPH, M. A., Effects of Sr and Pressure on Microstructure, Mechanical and Wear Properties of Near Eutectic Al-Si Piston Alloys, International Journal of Cast Metals Research, v. 28, n. 5, 2015.

PRŮŠA, F. et al., Mechanical properties and thermal stability of Al-Fe-Ni alloys prepared by centrifugal atomisation and hot extrusion, Materials Science and Engineering A, v. 603, p. 141–149, 2014.

QUARESMA, J. M. V.; SANTOS, C. A.; GARCIA, A., Correlation between unsteady-state solidification conditions, dendrite spacings, and mechanical properties of Al-Cu alloys,

RAGHAVAN, V., Al-Ni-Si (Aluminum-Nickel-Silicon), Journal of Phase Equilibria &

Diffusion, v. 26, n. 3, p. 262–267, 2005.

RAPPAZ, M.; BOETTINGER, W. J., On dendritic solidification of multicomponent alloys with unequal liquid diffusion coefficients, Acta Materialia, v. 47, n. 11, p. 3205–3219, 1999.

RAVISHANKAR, P. S; WILCOX, W. R; LARSON, D. J., The microstructure of MnBi/Bi eutectic alloys, Acta Metallurgica, v. 28, n. 11, p. 1583–1590, 1980.

REIS, B. P. et al., The effects of dendritic arm spacing (as-cast) and aging time (solution heat- treated) of Al-Cu alloy on hardness, Journal of Alloys and Compounds, v. 549, p. 324–335, 2013.

REN, X. et al., Formation and growth kinetics of intermediate phases in Ni-Al diffusion couples, Journal of Wuhan University of Technology-Mater. Sci. Ed., v. 24, n. 5, p. 787– 790, 2009.

REYES, R. V. et al., Cooling thermal parameters, microstructural spacing and mechanical properties in a directionally solidified hypereutectic Al–Si alloy, Philosophical Magazine

Letters, v. 96, n. 6, p. 228–237, 2016.

RINALDI, M. D.; SHARP, R. M.; FLEMINGS, M. C., Growth of ternary composites from the melt: Part I, Metallurgical Transactions, v. 3, n. 12, p. 3133–3138, 1972.

ROCHA, O. F. L. Análise Teórico-Experimental da Transição Celular/Dendrítica e da

Evolução da Morfologia Dendrítica na Solidificação Unidirecional em Condições de Fluxo de Calor Transitório. 2003. 168p. Tese (Doutorado) - Faculdade de Engenharia

Mecânica, Universidade Estadual de Campinas, Campinas, 2009.

ROCHA, O. L; SIQUEIRA, C. A; GARCIA, A., Heat flow parameters affecting dendrite spacings during unsteady-state solidification of Sn-Pb and Al-Cu alloys, Metallurgical and

Materials Transactions A, v. 34, n. 4, p. 995–1006, 2003.

ROHATGI, P K; SHARMA, R. C.; PRABHAKAR, K V, Microstructure and mechanical properties of unidirectionally solidified Al-Si-Ni ternary eutectic, Metallurgical

Transactions A, v. 6, n. 3, p. 569–575, 1975.

ROSA, D. M. Estruturas celulares, transição celular/dendrítica e estruturas dendríticas

na solidificação unidirecional transitória. 2007. 174p. Tese (Doutorado) - Faculdade de

ROSA, D. M.; SPINELLI, J. E.; GARCIA, A., Tertiary dendrite arm spacing during downward transient solidification of Al-Cu and Al-Si alloys, Materials Letters, v. 60, n. 15, p. 1871–1874, 2006.

SÁ, F. A. Influência das Variáveis de Solidificação Transitória no Surgimento e

Evolução dos Espaçamentos Dendríticos Terciários. 2004. 113p. Tese (Doutorado) -

Faculdade de Engenharia Mecânica, Universidade Estadual de Campinas, Campinas, 2004.

SÁ, F. et al., The effect of solidification variables on tertiary dendrite arm spacing in unsteady-state directional solidification of Sn–Pb and Al–Cu alloys, Materials Science and

Engineering: A, v. 373, n. 1–2, p. 131–138, 2004.

ŞAHIN, M.; ÇADIRLI, E., Mechanical, electrical, and thermal properties of the directionally solidified Bi-Zn-Al ternary eutectic alloy, International Journal of Minerals, Metallurgy,

and Materials, v. 21, n. 10, p. 999–1008, 2014.

SALGADO-ORDORICA, M. A.; RAPPAZ, M., Twinned dendrite growth in binary aluminum alloys, Acta Materialia, v. 56, n. 19, p. 5708–5718, 2008.

SANTOS, R. G. “Transformações de fases em materiais metálicos”, 1ª ed., Campinas: Editora Unicamp, p. 432, 2006.

SAUTHOFF, G., Multiphase intermetallic alloys for structural applications, Intermetallics, v. 8, n. 9–11, p. 1101–1109, 2000.

SHA, M. et al., Effects of cobalt content on microstructure and mechanical properties of hypereutectic Al–Si alloys, Materials Science and Engineering: A, v. 535, p. 258–263, 2012.

SILVA, A. P. et al., Microstructural development during transient directional solidification of a hypomonotectic Al–In alloy, Philosophical Magazine Letters, v. 92, n. 9, p. 442–450, 2012.

SILVA, B. et al., Correlation between dendrite arm spacing and microhardness during unsteady-state directional solidification of Al-Ni alloys, Philosophical Magazine Letters, v. 91, n. 5, p. 337–343, 2011.

SILVA, B. L. et al., Microstructural development and mechanical properties of a near-eutectic directionally solidified Sn–Bi solder alloy, Materials Characterization, v. 107, p. 43–53, 2015.

SILVA, B. L.; GARCIA, A.; SPINELLI, J. E., Cooling thermal parameters and microstructure features of directionally solidified ternary Sn–Bi–(Cu,Ag) solder alloys,

Materials Characterization, v. 114, p. 30–42, 2016.

SIQUEIRA, C. A.; CHEUNG, N.; GARCIA, A., Solidification thermal parameters affecting the columnar-to-equiaxed transition, Metallurgical and Materials Transactions A, v. 33, n. 7, p. 2107–2118, 2002.

SONG, K. et al., Effects of Ce and Mm additions on the glass forming ability of Al–Ni–Si metallic glass alloys, Journal of Alloys and Compounds, v. 440, n. 1–2, p. L8–L12, 2007.

SPINELLI, J. E. et al., Influence of melt convection on dendritic spacings of downward unsteady-state directionally solidified Al–Cu alloys, Materials Science and Engineering: A, v. 383, n. 2, p. 271–282, 2004.

SPINELLI, J. E.; GARCIA, A., Microstructural development and mechanical properties of hypereutectic Sn–Cu solderalloys, Materials Science and Engineering: A, v. 568, p. 195– 201, 2013.

STADLER, F. et al., The Influence of Solution Treatment on the High-Temperàture Strength of Al-Si Foundry Alloys with Ni, in: Light Metals 2012, Hoboken, NJ, USA: John Wiley & Sons, Inc., p. 431–434, 2012.

STEFANESCU, D. M. “Science and engineering of casting solidification”, 2ª ed., Springer, 2009, 402 p.

SUN, Y.; WANG, Q.; GENG, H., Effects of complex modificating technique on microstructure and mechanical properties of hypereutectic Al-Si alloys, Journal of Materials

Science, v. 47, n. 5, p. 2104–2109, 2012.

TANIHATA, A.; SATO, N.; KOJIMA, H.; KATSUMATA, K.; SHIRAISHI, T. Honda Motor Co., Ltd. “Piston for internal combustion engine”, F02F 3/00 (20060101) US 20070062479 A1, set. 2006, mar. 2007, p. 9.

TIEDJE, N. S.; TAYLOR, J. A.; EASTON, M. A., Feeding and Distribution of Porosity in Cast Al-Si Alloys as Function of Alloy Composition and Modification, Metallurgical and

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