يعرض 1 - 20 نتائج من 29 نتيجة بحث عن '"Ensayo de dureza"', وقت الاستعلام: 0.84s تنقيح النتائج
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    Academic Journal

    وصف الملف: 11 páginas; application/pdf

    Relation: INGE CUC; [1] Eurocode.com, “Table of design material properties for structural steel,” eurocodeapplied.com, [online], 1993. Available: https://www.eurocodeapplied.com/design/en1993/steel-design-properties; [2] N. F. Ak, C. Tekmen, I. Ozdemir, H. S. Soykan & E. Celik, “NiCr coatings on stainless steel by HVOF technique,” Surf Coat Technol, vol. 174-175, pp. 1070–1073, Sep. 2003. https://doi.org/10.1016/S0257- 8972(03)00367-0; [3] G. Faraji, H. S. Kim, & H. T. Kashi, “Chapter 7 - Mechanical Properties of Ultrafine-Grained and Nanostructured Metals,” in Severe Plastic Deformation, THR, IRN: Elsevier, pp. 223–257, 2018.; [4] Z.-Q. Chen, H. Niu, D. Li & Y. Li, “Modeling hardness of polycrystalline materials and bulk metallic glasses,” Intermetallics, vol. 19, no. 9, pp. 1275–1281, Sep. 2011. https://doi.org/10.1016/j.intermet.2011.03.026; [5] J. Gong, J. Wu & Z. Guan, “Examination of the indentation size effect in low-load vickers hardness testing of ceramics,” J Eur Ceram Soc, vol. 19, no. 15, pp. 2625–2631, Nov. 1999. https://doi.org/10.1016/ S0955-2219(99)00043-6; [6] J. M. Antunes, L. F. Menezes, & J. V. Fernande, “Three-dimensional numerical simulation of Vickers indentation tests,” Inter J Solids Struct, no. 43, pp. 784–806, 2006. https://doi.org/10.1016/j.ijsolstr.2005.02.048; [7] A. Harish, “Finite Element Method – What Is It? FEM and FEA Explained”, simscale blog, Oct. 2020. Available: https://www.simscale.com/blog/2016/10/what-is-finite-element-method/; [8] J. Zottis, C. A. T. Soares Diehl & A. da S. Roch, “Evaluation of experimentally observed asymmetric distributions of hardness, strain and residual stress in cold drawn bars by FEM-simulation,” J Mater Res Technol, vol. 7, no. 4, pp. 469–478, 2018. https://doi.org/10.1016/j.jmrt.2018.01.004; [9] W. Han, K. Kuepper, P. Hou, W. Akram & H. Eickmeier, “Free-Sustaining Three-Dimensional S235 Steel-Based Porous Electrocatalyst for Highly Efficient and Durable Oxygen Evolution,” ChemSusChem, vol. 11, no. 20, pp. 3661–3671,Oct. 2018. https://doi.org/10.1002/cssc.201801351; [10] H. Schäfer, K. Küpper, J. Wollshläger, N. Kashavae, J. Hardege, L. Walder, S. M. Beladi-Mousavi, B. Hartmann-Azanza, M. Steinhart, S. Sadaf & F. Dorn, “Oxidized Mild Steel S235: An Efficient Anode for Electrocatalytically Initiated Water Splitting,” ChemSusChem, vol. 8, no. 18, pp. 3099–3110, Sep. 2015. https://doi.org/10.1002/cssc.201500666; [11] G. Marot, M. Martínez & J. Lesage, Modelado Computacional de un Ensayo Interfacial de Dos Materiales, 2007.; [12] Designation E92-17: Standard Test Methods for Vickers Hardness and Knoop Hardness of Metallic Materials, ASTM E92, ASTM, 2017. https://doi.org/10.1520/E0092-17; [13] D. R. Askenland, Ciencia e Ingeniería de los Materiales, 7 ed, BOS, USA: Cengage Learning, 2016.; [14] A. Singh, K. Ramachandra & A. R. Devarhubli, “Evaluation and comparison of shear bond strength o porcelain to a beryllium-free alloy of nickel-chromium, nickel and beryllium free alloy of cobalt-chromium, and titanium: An in vitro study,” J Indian Prosthodont Socv, vol. 17, no. 3, pp. 261–266, 2017. https://doi.org/10.4103/jips.jips_337_16; [15] SharcNet, “Ansys (Application),” sharcnet.ca, [online], 2016. Available: https://www.sharcnet.ca/my/ software/show/22; 339; 329; 17; L. Fuentes Rueda, D. Campillo Carreño & L. Calderón Vergel, “ Evaluation of surface hardness of NiCr coating using Finite Elements Analysis”, INGECUC, vol. 17. no. 1, pp. 329–339. DOI: http://doi.org/10.17981/ingecuc.17.1.2021.24; https://hdl.handle.net/11323/10335; Corporación Universidad de la Costa; REDICUC - Repositorio CUC; https://repositorio.cuc.edu.co/

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    Dissertation/ Thesis
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    Dissertation/ Thesis

    المساهمون: Sierra Cetina, Mauricio Alejandro

    جغرافية الموضوع: Bogotá

    وصف الملف: PDF; application/pdf

    Relation: Criado, A. (2008). Estructuras metalograficas de aleaciones hierro-carbono . Universidad Complutense de Madrid.; Davies, R. (1980). High strength dual-phase steel . Ford Motor Company.; DELGADO, A. (1999). Anisotropia de cinta de acero de bajo carbono laminada en caliente. Universidad Atonoma de Nuevo Leon; Gutiérrez, A. L. (2013). Análisis microestructural y de propiedades mecánicas a temperaturas elevadas de aceros avanzados de alta resistencia para el conformado en caliente. Universidad Autónoma De Nuevo León.; Gutierrez, D. (2012). Aplicación de criterios de conformabilidad en productos planos de aceros de alta resistencia. Escola Tècnica Superior d'Enginyeria Industrial de Barcelona; NORTON, R. (1999, Mexico). Diseño de máquinas. . Prentice Hall. , p.72-73; Parra Y, Arroyo J. y Rodríguez R. (s.f.). Estudio de la recuperación elástica en aceros avanzados de alta resistencia de doble fase. Universidad Nacional. Facultad de Ingeniería. Departamento de Mecánica y Mecatrónica. Bogotá, Colombia.; Serra, J. S. (2008). Caracterización y comparación de las propiedades mecánicas de dos chapas de acero avanzado de alta resistencia (AHSS): TRIP800 Y DP800. Ingeniería de Materiales; Vasquez E. y Barrera D. (2013). INFLUENCIA DEL TRATAMIENTO TÉRMICO DE TEMPLE DESDE TEMPERATURAS.; Angarita C; Moewis P. y Sáenz L. (2003). Evaluación del comportamiento mecánico de un acero microaleado X-60 laminado en frío y sometido a un tratamiento térmico de recocido. Facultad de Ingeniería, Escuela de Ingeniería Mecánica, Universidad de Carabobo, Valencia, Venezuela; BELZUNCE, F. (2001). Aceros Y Fundiciones: Estructuras, Transformaciones, Tratamientos Termicos Y Aplicaciones. Universidad de Oviedo.; Callister, W. (2007). Ciencia e Ingenieria de los Materiales 2. Barcelona, España: Reverte.; Estructura y Propiedades de las Aleaciones . (s.f.). Facultad de Ingeniería UNLP, Cap.3; Kalpakjian, S. (2002). Manufactura ingeniería y tecnología. cuarta edición,Prentice Hall; Laminación protocolo, curso de materiales. (2008). Facultad Ingenieria Industrial Laboratorio De Producción.; Monsalve A., Artigas A., Castro F., Colás R. e Houbaert Y. (2011). Caracterización de aceros dual-phase obtenidos por laminación en caliente. REVISTA DE METALURGIA.; Newell, J. (2012). Ciencia de Materiales Aplicaciones en Ingenieria. Mexico: Alfaomega.; NTC 5613:2008,Referencias bibliográficas contenido forma y estructura. (s.f.).; Tarkany, N. (2007). Aceros de alta resistencia. Metalforming; NTC 1486 Documentación. Presentación De Tesis, Trabajos De Grado Y Otros Trabajos De Investigación; Esclapes, J. (2008). Manual de ADIMαT, asistente de diagramas de fases para ingenieros de materiales . San vicente (España): Editorial Club Universitario .; FAIRES, V. (s.f.). Diseño de elementos de maquinas. Montaner y Simon, S.A. Barcelona, p. 23-57.; Ghassemi-Armaki H.; Maaß R.; Bhat S.; Sriram S.; Greer J y Kumar K. (2013). Deformation response of ferrite and martensite in a dual-phase steel. School of Engineering, Brown University, Providence, RI 02912, USA.; Jiang Z., GuanL Z. y Lian J. (s.f.). Effects of microstructural variables on the deformation behaviour of dual-phase steel. Materials Science and Engineering A; Lai Q., Brassart L., Bouaziz O., Gouné M., Verdier M., Parry G., Perlade A., Bréchet Yves y Pardoen T. (2015). Influence of martensite volume fraction and hardness on theplastic behavior of dual-phase steels: Experiments andmicromechanical modelin. International Journal of Plasticity; Modi, A. P. (2006). Effects of microstructure and experimental parameters on high stress abrasive wear behaviour of a 0.19wt% C dual phase steel. Mechanical Engineering, Room No. 26, Hostel-Topaz, National Institute of Technology, Tiruchirappalli, TN 620 015, India.; Neil, T. (2011). Mechanical properties and microstructures of dual phase steels containing silicon, aluminum and. Lawrence Berkeley National Laboratory.; Rochaa R.; Meloa T., Perelomab E. y Santos B. (2004). Microstructural evolution at the initial stages of continuous annealing of cold rolled dual-phase steel. School of Physics and Materials Engineering, Monash University, Vic. 3800, Australia.; Seetharaman, S. (2013). On the Tensile Elongation of Advanced HighStrength Steels. Transactions are indexed through Chemical Abstracts Service.; Stuart, K. y Kimchi, M. (2014). Advanced High-Strength Steels Application Guidelines. WorldAutoSteel.; Sudersanan P. , Kori N., Aprameyan S. y Kempaiah U. (2012). The Effect of Carbon Content in Martensite on the Strength of Dual Phase Steel. Bonfring International Journal of Industrial Engineering and Management Science.; ASTM E8 Standard Test Methods for Tension Testing of Metallic MaterialsASTM E10-15 Standard Test Method for Brinell Hardness of Metallic Materials. (s.f.).; Lorusso H. y Svoboda H. (2015). Effect of Carbon Content on Microstructure and Mechanical Properties of Dual Phase Steels. International Congress of Science and Technology of Metallurgy and Materials, SAM -CONAMET 2013; Ahmad E.; Manzoor T. y Hussain N. (2009). Thermomechanical processing in the intercritical region and tensile properties of dual-phase steel. Materials Division, PINSTECH, P. O. Nilore, Islamabad, Pakistan.; ASTM 568/A568M-11Standard Specification for Steel, Sheet, Carbon, Structural, and High-Strength, Low-Alloy, Hot-Rolled and Cold-Rolled, General Requirements for. (s.f.).; ASTM 8 Standard Test Method for Tension Testing of Metallic Materials. (s.f.).; ASTM E10-15 Standard Test Method for Brinell Hardness of Metallic Materials. (s.f.).; ASTM E3 – 11 Standard Guide for Preparation of Metallographic Specimens. (s.f.).; ASTMG65-16. (s.f.). : Standard Test Method for Measuring Abrasion Using the Dry Sand/Rubber Wheel Apparatus.; Bedolla A.; Zuno J.; Mejia C. y Maldonado I. (2012). The effect of Titanium on the thermomechanical processing of a dual phase steel. The Iron and Steel Society; Bello K., Hassan B., Abdulwahab M., Shehu U., Umoru L, Oyetunji A. y Suleiman I. (2007). Effect of Ferrite-Martensite Microstructural Evolution on Hardness and Impact Toughness Behaviour of High Martensite Dual Phase Steel. Ahmadu Bello University, Zaria, Nigeria.; Bleck W.;Frehn A. y Ohlert J. (2016). Niobium in dual phase and trip steels. Aachen University of Technology; Fallahi, A. (2002). Microestructure-Properties Correlation of Dual Phase Steels Produced by Controleed Rolling Process; Granbom, Y. (2010). Structure and mechanical properties of dualphase steels –An experimental and theoretical analysis. Royal Institute of Technology.; HERNANDEZ B., NAYAK S. y ZHOU Y. . (2011). Tempering of Martensite in Dual-Phase Steels and Its Effects on Softening Behavior. The Minerals, Metals & Materials Society and ASM International.; Pouranvari, M. (2010). Tensile strength and ductility of ferrite-martensite. Association of Metallurgical Engineers of Serbia; Seetharaman, S. (2013). On the Tensile Elongation of Advanced HighStrength Steels. Transactions are indexed through Chemical Abstracts Service; STM E7-15: Standard Terminology Relating to Metallography. (s.f.).; Sun S. y Pugh M. (2001). Properties of thermomechanically processed dualphase steels containing fibrous martensite.; Yovanovich, M. (2006). Micro and Macro Hardness Measurements,. University of Waterloo,.; ASTM E23-16b Standard Test Methods for Notched Bar Impact Testing of Metallic Materials (s.f.).; https://hdl.handle.net/10901/10582; instname:Universidad Libre; reponame:Repositorio Institucional Universidad Libre

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    Dissertation/ Thesis

    المساهمون: Sierra Cetina, Mauricio Alejandro

    جغرافية الموضوع: Bogotá

    وصف الملف: PDF; application/pdf

    Relation: ANANTAPONG, J., et al. (2014). Effect of Hot Working on Microstructure Evolution of As-Cast Nickel Aluminum Bronze Alloy; ASTM B148-14: Standard Specification for Aluminum-Bronze Sand Castings. (s.f.).; ASTM B208-14: Standard Practice for Preparing Tension Test Specimens for Copper Alloy Sand, Permanent Mold, Centrifugal, and Continuous Castings. (s.f.).; ASTM B846 - 11: Standard Terminology for Copper and Copper Alloys. (s.f.).; ASTM E10-15 Standard Test Method for Brinell Hardness of Metallic Materials. (s.f.).; ASTM E3 – 11 Standard Guide for Preparation of Metallographic Specimens. (s.f.).; ASTM E8 / E8M - 15ª : Standard Test Methods for Tension Testing of Metallic Materials. (s.f.); CENOZ, Isaac . (2010). METALLOGRAPHY OF ALUMINIUM BRONZE ALLOY AS CAST IN PERMANENT IRON DIE; CIOCAN, Anisoara. (2011). Versatility of Nickel-Aluminium Bronzes as Wear Resisting Materials.; KADHUM,Abdul Amir H. (2013). Corrosion of Nickel-AluminumBronze Alloy in Aerated 0.1 M Sodium Chloride Solutions under Hydrodynamic Condition.; PIETROWSKI,S. Y SZYMCZAK, T. (2010). Crystalization, Microestructure and Mechanical Properties of Silumins with Micro-additions of Cr,Mo , W and V. .; Rosario F., Samuel. et al. (2011). Tratamiento Térmico de los Bronces al Aluminio Complejos, Transformación Martensitica y la Fase Kappa-Templabilidad; SEKUNOWO,O. I., et al. (2013). Mechanical Characterisation Of Aluminium Bronze-Iron Granules Composite; Sláma, Peter ;Dlouhý,Jaromír y Kövér,Michal. (2013). Influence of Heat Treatment on the Microstructure and Mechanical Properties of Aluminium Bronze; W.S.,LI, et al. (2005). Mechanical and Tribological Properties of a Novel Aluminum Bronze Material for Drawing Dies.; ASTM E7-15: Standard Terminology Relating to Metallography. (s.f.).; CENOZ, I. y GUTIERREZ, M. (2011). Phase Transformations in Cu – Al Alloy.; EMAD-ELDIN MOHAMED ELGALLAD. (2010). Effect of Additives on the Mechanical Properties and Machinability of a New Aluminum-Copper Base Alloy; GRONOSTAJSKI, Z. (2002). The Deformation Processing Map for Control of Microstructure in CuAl9,2Fe3 Aluminiun Bronze.; GÜNDÜZ,M. y ÇARDILI,E. (2001). Directional Solidification of Aluminium–Copper Alloys.; PING RUI, CHEN et al. (2007). Effect of Heat Treatment on Microstructure and Properties of Hot-Extruded Nickel-Aluminum Bronze.; RANA, R.S.; PUROHIT, Rajesh y DAS,S. (2012). Review on the Influences of Alloying Elements on the Microstructure and Mechanical Properties of Aluminum Alloys and Aluminum Alloy Composites.; RODRIGUEZ, C. M., et al. (2011). Structural Characterization and Dimensional Analysis During Directional Solidification of Al-Cu Alloys.; Askeland, Donald R. Ciencia e Ingeniería de los Materiales. 3 ed. Mexico Thomson.1998.P.130-138.ISBN 9687529369. (s.f.).; CENOZ ECHEVERRÍA,I. y FERNÁNDEZ CARRASQUILLA,J. (2007). Influencia de la Composición y el Tratamiento Térmico en las Propiedades Mecánicas de Aleaciones de Bronce al Aluminio.; DEGARMO, E. Paul; BLACK, J. T. y KOHER, Ronald A. Materiales y Procesos de Fabricación. 6 ed. España. Reverte. 1994. 159 p. ISBN 8429148221, 9788429148220. (s.f.).; FAIRES,V.M. Diseño de elementos de maquinas. 4 ed. Barcelona. Montaner y Simon, S.A. p. 23-57 . ISBN 9789702608127. (s.f.).; GROOVER, Mikell P. Fundamentos de manufactura moderna. 3ed. Mexico. Prentice Hall.1997. p.44-61. (s.f.).; HERENGUEL, Jean. Metalurgia especial. Urmo. 1971. p. 100-105. ISBN 9788431400941. (s.f.).; KING, Frank. El aluminio y sus aleaciones. Mexico. Limusa.1992. p.15-36. ISBN 9681843746. (s.f.).; MALISHEV,A; NIKOLAIEV, G y SHUVALOV, Yu. Tecnologia de los metales. Mir. Moscú. 1979. p.153-171. (s.f.).; MONTGOMERY, Douglas. Diseno y analisis de experimentos.2 Ed.Mexico.pag 107-110, 647-650 . Limusa.2004.ISBN 968-18-61156-6. (s.f.).; NORTON, Robert L. Diseño de máquinas. 3ed. Mexico. Prentice Hall. 1999. p.72-73. ISBN 978-970-17-0257-4. (s.f.); NTC 5613:2008,Referencias bibliográficas contenido forma y estructura. (s.f.).; R. C. Hibbeler. Mecánica de Materiales. 6 Ed. Mexico. Pearson Educación. 2006. 88p. ISBN 9702606543, 9789702606543. (s.f.).; REIPRICH, Johannes. Manual Del Aluminio : Principios Y Procedimientos Modernos De Fabricacion. 11a ed. Barcelona. Reverté, S.A.1959. p.641-651. (s.f.).; VEGA CALVO, Carolina, et al. (2009). Mejoramiento de la Aleación de Bronce al Aluminio.; WILLIAM D., Callister Junior. Introduccion a la ciencia e ingenieria de los materiales. 2ed. Reverte.1995. p.376-377. ISBN 9788429172539. (s.f.).; HUFNAGEL, W.Manual de aluminio. 2ed. Barcelona. Reverté, S.A. 1992. p. 58-62. ISBN 9788429160116. (s.f.); MORRAL, F.R.; JIMEO,E y MOLERA,P. Metalurgia general. Barcelona. Reverté, S.A. 1985. p.1251-1285. ISBN 842916071X. (s.f.).; NTC 1486:2008,Documentación. Presentación de tesis, trabajos de grado y otros trabajos de investigación. (s.f.).; PADILLA, Eusebio Dionicio, et a.l. (s.f.). Influencia de los Microaleantes en la Aleacion de los Bronces.; VELASQUEZ G. Juan Pablo. Produccion De Aleaciones Base Cobre Y Su Tratamiento. Bogota. 1996. p.8-23. (s.f.).; https://hdl.handle.net/10901/10588; instname:Universidad Libre; reponame:Repositorio Institucional Universidad Libre

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    Dissertation/ Thesis

    المساهمون: Sierra Cetina, Mauricio Alejandro

    جغرافية الموضوع: Bogotá

    وصف الملف: PDF; application/pdf

    Relation: ASM, Metal handbook. (2001). Properties and Selection; Non Ferrous Alloys and Special –Purpose Materials. (s.f.).; ASM, Metal handbook. (2001). Volume 8,Mechanical testing and evaluation. (s.f.).; ASTM, American Society for Testing Materials (2004), Standard Test Method for Vickers Hardness of Metallic Materials. (s.f.).; BALDISSERA, P. y DELPRETE, C. (2008). Deep Cryogenic Treatment: A Bibliographic Review. . (s.f.).; BRAND,D., WARNER, J.,(2005). Metallurgy fundamemtals. (s.f.); CANDANE, D., ALAGUMURTHI, N. y PALANIRADJA, K. (2013). Effect of cryogenic treatment on microstructure and wear characteristics of AISI M35 HSS. . (s.f.).; CHEN, Po, et al. (2002). Effects Of Cryogenic Treatment On The Residual Stress And Mechanical Properties Of An Aerospace Aluminum Alloy. (s.f.).; DA SILVA, Flavio J., et al. (2006). Performance of cryogenically treated HSS tools. (s.f.).; GLAZER, J, et al. (1987). Mechanical Behavior of Aluminum Lithium Alloys at Cryogenic Temperatures. (s.f.).; GUPTA, R. K., et al. (2006). Development and characterization of Al– Li alloys. . (s.f.).; MARKUSHEV, M. V., et al. (2011). Microstructure and Properties of an Aluminum D16 Alloy Subjected to Cryogenic Rolling. (s.f.).; PANCHAKSHARI, H. V, GIRISH, D. P. y KRISHNA, M. (2012). Investigation on Effect of Cryogenic Parameters on Wear Behavior of Aluminium-AL2O3 MMCSS Using Taguchi Method. . (s.f.).; RAIPURKAR, K. C. y SARODE, Pravin L. (2012). Cryogenic Treatment of Metals and Enhancement of Mechanical Properties. . (s.f.).; SABIROV, I., MURASHKIN, M. Yu y VALIEV, R. Z. (2012). Nanostructured aluminium alloys produced by severe plastic deformation: New horizons in development. . (s.f.).; SIDNEY, Avner H. (1974). Introduction to physical metallurgy. (s.f.).; YUGANDHAR, T. y KRISHNAN, P. K. (2013). Cryogenic Treatment And It’s Effect. . (s.f.).; ASTM, American Society for Testing Materials (2004), Standard Test Methods for Rockwell Hardness and Rockwell Superficial Hardness of Metallic Materials. (s.f.).; CASTRO, Luisa F. (2014). Revista metal actual, Brazing uniones de calidad, ed. 31. (s.f.); HUFNAGEL, W., (1992). Manual del Aluminio. (s.f.).; MURGUIA, L., et al. (2006). Efecto del Tratamiento Criogénico Sobre el Comportamiento en el Desgaste del Acero AISI M2. (s.f.); OBANDO, Johnny F. (2011). Subcero y Criogénicos: El Frío, Secreto de los Fórmula Uno. (s.f.).; PRECIADO, M., et al. (2008). Tratamientos Criogenicos Sobre el Acero f1560 Cementado para la Mejora de Propiedades a Fatiga. . (s.f.).; RENDÓN, A. y ARMENDARIZ, C. (2010). Aumento en la Resistencia al Desgaste de Aceros para Herramientas a Través de la Aplicaciones de Tratamiento Criogénico. (s.f.).; https://hdl.handle.net/10901/10386; instname:Universidad Libre; reponame:Repositorio Institucional Universidad Libre

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    Dissertation/ Thesis

    المساهمون: Sierra Cetina, Mauricio Alejandro

    جغرافية الموضوع: Bogotá

    وصف الملف: PDF

    Relation: ACERO OMAÑA Anggie Maricel, “Caracterización de la aleación (〖Fe〗_0.65 〖Ni〗_0.35 )_(1-x) 〖Mn〗_x en su fase SplinGlass”, Universidad Nacional departamento de ciencias físicas 2007; ASCE 2013 Report card FOR AMERICA’S INFRAESTRUCTURE Released March; B. A. Baker and G. D. Smith, “High-Temperature Oxidation Behavior of a New Ni-Cr-Mo-Si Alloy”, Special Metals Corp. 3200 Riverside Drive Huntington, WV 25705, Oak Ridge National Laboratory, Bethel Valley Road Oak Ridge, TN 37831; BRAGONZI, LONATE POZZOLO, ITALY. Catalogue Ni-Hard Material Data and applications, available online [http://www.nickelinstitute.org/~/Media/Files/TechnicalLiterature/Ni_HardMaterialDataandApplications_11017_.pdf] distributed by Nickel institute org; CALLISTER William D. “INTRODUCCIÓN A LA CIENCIA E INGENIERÍA DE LOS MATERIALES” .Volumen 2. Editorial reverte; CASTRO Guillermo, “FUNDICIONES”, DEPARTAMENTO DE INGENIERIA MECANICA F.I.U.B.A.,FEBRERO 2009; Catalogue HAYNES CAST HASTELLOY ALLOYS: CORROSION PROPERTIES AND CHARACTERIST International HIGH PERFORMANCE ALLOYS TECHNICAL INFORMATION ,http://www.haynesintl.com/pdf/h2095.pdf, For Referral to Authorized Distributors in your area Fax: 1-765-456-6079,Printed in U.S.A. 091099, For more information : Houston, Texas 77041, The Northwood Industrial Park, 12241 FM 529, Tel: 713-937-7597, 800-231-4548,FAX: 713-937-459; CUESTA FERNANDEZ Luis Francisco, “ANALISIS DEL FENOMENO DE LA CORROSIÓN EN MATERIALES DE USO TECNICO: METALES”. Procedimientos de protección D.N.I Fecha de publicación Noviembre-2009; D. B. Mitton, J.H. Yoon, J.A. Cline, H.S. Kim, N. Eliaz, and R. M. Latanision, “Corrosion Behavior of Nickel-Based Alloys in Supercritical Water Oxidation Systems”, H.H. Uhlig Corrosion Laboratory, Department of Materials Science and Engineering, Massachusetts Institute of Technology, Room 8-204, Cambridge, Massachusetts 02139,Ind. Eng. Chem. Res. 2000, 39, 4689-4696; DONALD B. Wagner (8 May 2008). Science and Civilizations in China: Volume 5, Chemistry and Chemical Technology, Part 11, Ferrous Metallurgy. Cambridge University Press. pp. 159–169; Engineering Properties and Application of Nickel-Iron, INGO (Nov. 1961); FLORES B. Oscar, CASTAÑO V. Rafael A., HIGUERA C. Oscar Fabián “COMPORTAMIENTO MICROESTRUCTURAL DE UNA FUNDICIÓN BLANCA AL ALTO CROMO SOMETIDA A CICLOS DE TRATAMIENTO TÉRMICO”. Universidad Tecnológica de Pereira Agosto de 2010; G.J. Cox, “Controlled cooling transformation diagrams for Ni-hard alloy white cast irons”. Foundry Trade Journal (1991); G.W. Form AND J.F. Wallace, “Nickel in Gray Iron Influence on structure and properties”, institute of Technology, Cleveland. INCO, The international Nickel Company. Inc. one New York Plaza, New York, N.Y. 10004; GILLESPIE, LAROUX K. “Troubles hooting manufacturing processes”. [Artículo de internet]. http://books.google.com.co/books?id=SX_SO_CkiUIC&pg=PT195&lpg=PT195&redir_esc=y#v=onepage&q&f=false.[Consulta:11/09/2013]; GLOAG John and BRIDGWATER Derek, “A History of Cast Iron in Architecture”, Allen and Unwin, London (1948); HAYNES International, HAYNES INTERNATIONAL, INC.GUIDE TO CORROSION-RESISTANT NICKEL ALLOYS, 1020 West Park Avenue Kokomo, In 46904-9013 800-354-0806 Fax 765-456-6905 www.haynesintl.com, For More Information Contact: Southern Service Center, The Northwood Industrial Park 12241 FM 529, Houston, Texas 77041, Tel: 713-937-7597, 800-231-4548; History of Nickel & Nickel Alloys [online] Aerodyne Alloys 800.243.4344, 2006-[citado el 23/09/2013] disponible en internet :< http://www.aerodynealloys.com/products/nickel/history.php>; INCO, 36% NICKEL-IRON ALLOY For low Temperature Service, Southern Service Center ,The Northwood Industrial Park 12241 FM 529 Houston, Texas 77041, Tel: 713-937-7597,800-231-4548; ISMAIL Andijani, SHAHREER Ahmad, A.U. 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