• No results found

CHAPTER – III METHODOLOGY

DISCUSSION

fibras de material con buena conductividad térmica, de tal manera que cuando

sean interrumpidas por la resistencia de una anomalía, ayuden a mostrar un

cambio en la distribución de la temperatura más efectivamente, así como

también la aplicación a materiales anisotrópicos.

BIBLIOGRAFÍA

[1]. The American Society for Nondestructive Testing (NDT). http:/www.asnt.org/ndt/primer1.htm Activa en junio del 2003.

[2]. Mendelis. A. Non-Destructive Evaluation (NDE) - Volumen II, Prentice Hall (1994).

[3]. Krenzinger, Ammo – Vera, Luis. Software de Post-procesamiento de imágenes Termográficas. Universidad Nacional del Nordeste Argentina, 2006.

[4]. Sánchez, Aldana Natalia – Velásquez, Gómez Juliana. Imágenes por radiación infrarroja y termografía. Escuela de ingeniería de Antioquia (EIA) e Instituto de Ciencias de la Salud (CES).

[5]. Maldague, X. Introduction to NDT by Active Infrared Thermography. Electrical and Computing Engineering Department. Université Laval. Quebec City Canada 2001. [6]. Howell, J.R. A catalog of radiation configuration factors. Mc Graw Hill. New

York. 1982.

[7]. Modest, Michael F. Radiative heat transfer. Mc Graw Hill. New York. 1993.

[8]. Agudelo, Nicolás. Velez, Juan Esteban. Radiación infrarroja y termografía. Escuela de Ingeniería de Antioquia -Instituto de Ciencias de la Salud. 2006.

[9]. Balageas, Daniel L. Termografía infrarroja: una técnica multifacética para la evaluación no destructiva. IV conferencia panamericana de ensayos no destructivos Buenos Aires, Argentina. Pg. 1-14. 2007.

[10]. D. P. DeWitt, G. D. Nutter, Theory and Practice of Radiation Thermometry, John Wiley, New York, 1988.

[11]. H. Kaplan, Practical Applications of Infrared Thermal Sensing and Imaging Equipment, Second Edition, Proc. Soc. of Photo-Opt. Instrumentation Eng. (SPIE), 1999.

[12]. Clinical thermography. Disponible en internet en: http:/www.iact-org/patients/quality-assurance-safety.html

[13]. Maldague, X. Applications of Infrared Thermography in nondestructive evaluation. Electrical and Computing Engineering Department. Université Laval. Quebec City Canada 2001.

[14]. Flir systems, the global leader in infrared cameras. Disponible en internet en: http:/www.flirthermography.com/software/default.asp

[15]. Thermal imaging in far infrared. Disponible en internet en:

[16]. Background information about weather-satellite images. Disponible en internet en: http:/www.atsf.co.uk/ilight/tech/termal.html

[17]. Figliola-Beasley. Mediciones mecánicas teoría y diseño. Alfaomega grupo editor, México, pags. 306-307. 2003.

California regional weather server.

[18]. Benedict, R.P. Fundamentals of temperature, pressure and flow measurements. 3ª edición, Willey, Nueva York, 1988.

[19]. Patterson, E.C. Eponyms: why Celsius? American scientist, 1989. [20]. Hecht. Óptica. Pearson educación, pg. 73, 2000.

[21]. American Society For Nondestructive Testing - ASNT, Infrared and Thermal Testing, Nondestructive Handbook on Infrared Technology, Volume 3, ASNT Handbook Series, X. Maldague technical ed., P. O. Moore ed., 3rd edition, Columbus, Ohio, ASNT Press, 2001.

[22]. K. Ammer, Thermology 2002 - A computer-assisted literature survey, Thermology International, Vol. 13, Issue 1, páginas 10-27, 2003.

[23]. K. Ammer, Thermology 2003 - A computer-assisted literature survey with a focus on non medical applications of thermal imaging, Thermology International, Vol. 14, Issue 1, páginas 5-36, 2004.

[24]. K. Ammer, Thermology 2004 - A computer-assisted literature survey, Thermology International, Vol. 15, Issue 1, páginas 5-37, 2005.

[25]. K. Ammer, Thermology 2005 - A computer-assisted literature survey, Thermology International, Vol. 16, Issue 1, páginas 16-36, 2006.

[26]. Incopera, Frank. De Witt, David. Fundamentos de transferencia de calor. Prentice Hall, 4ª. ed. , México DF. 1999. Capítulos 1, 2, 6, 7, 12.

[27]. Kreith Frank / Bohn S. Mark Principios de transferencia de calor. Thomson Learning, 2001. sexta edición, paginas 1 – 4.

[28]. Welty James R. Fundamentos de transferencia de momento, calor y masa. Limusa. México. 1982. Primera edición. Capítulo 3, Capítulo 15.

[29]. Welty James R. Transferencia calor aplicada a la ingeniería. Limusa. México. 1995. sexta edición. Capítulo 1.

[30]. Cengel, Yunus A., Transferencia de calor y masa, McGraw Hill, 3ra Edición, México, 2007.

[31]. Martynenko O.G., Khramtsov P.P., Free-convective Heat Transfer, Springer, Netherlands, 2005.

[32]. Bird R.B., Stewart W.E., Lightfoot E.N.; Fenómenos de transporte, Editorial Reverté, S.A. 2005, capítulo 3, capítulo 10.

[33]. Díaz Cárdenas Alen; Notas sobre transferencia de calor, México 1984.

[34]. Schlichting, Hermann, Gersten Klaus; Boundary layer theory, Springer, Octava edición, 2006, página 795.

[35]. Ortega Herrera. J.A., Gutiérrez Villegas M.A., Métodos variacionales en la transferencia de calor. Serie de monografías en ciencias e ingeniería, Vol. 11 Instituto Politécnico Nacional.

[36]. Banerjee, P.K., The Boundary Element Methods in Engineering. McGraw Hill Europe, Maidenhead, Berkshire, UK., 1994.

[37]. Becker, A.A., The Boundary Element Method in Engineering. Mc-Graw Hill International, Singapore, 1992.

[38]. Bonnet, M., Boundary Integral Equation Methods for Solids and Fluids. Wiley, Chichester, UK., 1995.

[39]. Brebbia, C.A. and Dominguez, J., Boundary Elements: An Introductory Course. 2nd edition. Computational Mechanics Publications, Southampton, UK, and McGraw Hill, New York., 1992.

[40]. Zienkiewics O. C., The Finite Element Method, Butterworth-Heinemann, Oxford, 2000, 5ª edición.

[41]. Terres Peña Hilario, Ortega Herrera J. A., Termografía Computacional para el Análisis de Falla Utilizando el Método del Elemento Frontera Hibrido, Tesis doctoral, IPN, México, 2009.

[42]. Chandra, A. and Mukherjee, S., Boundary Element Methods in Manufacturing. Oxford University Press, NY., 1997.

[43]. Gaul, L., K¨ogl, M. and Wagner, M., Boundary Element Methods for Engineers and Scientists. Springer Verlag, Heidelberg, Germany, 2003

[44]. Hartmann, F., Introduction to Boundary Elements: Theory and Applications. Springer Verlag, Berlin, New York, 1989.

[45]. Kane, J.H., Boundary Element Analysis in Engineering Continuum Mechanics. Prentice Hall, Englewood Cliffs, NJ., 1994.

[46]. París, F. and Cañas, J., Boundary Element Method: Fundamentals and Applications. Oxford University Press, UK., 1997.

[47]. Krishnasamy, G., Rizzo, F.J. and Rudolphi, T.J. Hypersingular boundary integral equations: their occurrence, interpretation, regularization and computation. Developments in Boundary Element Methods-7, P.K. Banerjee and S. Kobayashi eds., Elsevier Applied Science, London, 1992, pp.207-252.

[48]. Tanaka, M., Sladek, V. and Sladek, J., Regularization techniques applied to boundary element methods. ASME Applied Mechanics Reviews, 47:457-499, 1994 [49]. Paulino, G.H., Novel Formulations of the Boundary Element Method for Fracture

Mechanics and Error Estimation. Ph.D. Dissertation, Cornell University, Ithaca, NY., 1995.

[50]. Chen, J.T. and Hong, H.K., Review of dual boundary element methods with emphasis on hypersingular integrals and divergent series. ASME Applied Mechanics Reviews 52:17-33, 1999

[51]. Guiggiani, M. Hypersingular formulation for boundary stress evaluation. Engineering Analysis with Boundary Elements 13:169-179. 1994.

[52]. Wilde, A.J. and Aliabadi, M.H. Direct evaluation of boundary stresses in the 3D BEM of elastostatics. Communications in Numerical Methods in Engineering 14:505-517, 1998.

[53]. Zhao, Z.Y. and Lan, S.R., Boundary stress calculation - a comparison study. Computers and Structures 71:77-85, 1999.

[54]. Chati, M.K. and Mukherjee, S., Evaluation of gradients on the boundary using fully regularized hypersingular boundary integral equations. Acta Mechanica 135:41-55., 1999.

[55]. Krishnasamy, G., Schmerr, L.W., Rudolphi, T.J. and Rizzo, F.J. Hypersingular boundary integral equations: some applications in acoustic and elastic wave scattering. ASME Journal of Applied Mechanics 57:404-414, 1990.

[56]. Cruse, T.A., Boundary Element Analysis in Computational Fracture Mechanics. Kluwer, Dordrecht, The Netherlands, 1988.

[57]. Gray, L.J., Martha, L.F. and Ingraffea, A.R., Hypersingular integrals in boundary element fracture analysis. International Journal for Numerical Methods in Engineering 29:1135-1158, 1990.

[58]. Lutz, E.D., Ingraffea, A.R. and Gray, L.J., Use of ‘simple solutions’ for boundary integral methods in elasticity and fracture analysis. International Journal for Numerical Methods in Engineering 35:1737-1751, 1992.

[59]. Gray, L.J. and Paulino, G.H. (1998). Crack tip interpolation revisited. SIAM Journal of Applied Mathematics 58:428-455.

[60]. Mukherjee, Y.X., Shah, K. and Mukherjee, S., Thermoelastic fracture mechanicswith regularized hypersingular boundary integral equations. Engineering Analysis with Boundary Elements 23:89-96, 1999.

[61]. Bonnet, M., Boundary Integral Equation Methods for Solids and Fluids. Wiley, Chichester, UK., 1995.

[62]. Gray, L.J., Balakrishna, C. and Kane, J.H. Symmetric Galerkin fracture analysis. Engineering Analysis with Boundary Elements 15:103-109, 1995

[63]. Gray, L.J. and Paulino, G.H., Symmetric Galerkin boundary integral formulation for interface and multizone problems. International Journal for Numerical Methods in Engineering 40:3085-3101, 1997.

[64]. Gray, L.J. and Paulino, G.H., Symmetric Galerkin boundary integral fracture analysis for plane orthotropic elasticity. Computational Mechanics 20:26-33, 1997.

[65]. Mukherjee, S., Chati, M.K. and Shi, X., Evaluation of nearly singular integrals in boundary element contour and node methods for three-dimensional linear elasticity. International Journal of Solids and Structures 37:7633-7654, 2000.

[66]. Rudolphi, T.J., The use of simple solutions in the regularization of hypersingular boundary integral equations. Mathematical and Computer Modeling 15:269-278, 1991.

[67]. Cruse, T.A. and Richardson, J.D., Non-singular Somigliana stress identities in elasticity. International Journal for Numerical Methods in Engineering 39:3273- 3304, 1996.

[68]. Poon, H., Mukherjee, S. and Ahmad, M.F., Use of simple solutions in regularizing hypersingular boundary integral equations in elastoplasticity. ASME Journal of Applied Mechanics 65:39-45, 1998.

[69]. Mukherjee, S., Regularization of hypersingular boundary integral equations: a new approach for axisymetric elasticity. Engineering Analysis with Boundary Elements 26:839-844, 2002.

[70]. Green, G., an Essay on the Application on Mathematical Analysis to the Theories of Electricity and Magnetism, Notingham, 1828.

[71]. Betti, E., Theoria dell' Elasticita, il Nuovo Cimento, Ser. 2, pp.7-10, 1872.

[72]. Somigliana, C., Sopra 1' Equilibrio di' un Corpo Elastico Isotropo,/Nuovo Comento, Set. 3, pp. 17-20, 1885.

[73]. Fredholm, I., Sur une Classe d' Equations Fonctionelles, Acta Mathematica, Vol.27, pp.365-390, 1903.

[74]. Kupradze, V.D., Potential Methods in the Theory of Elasticity, Israel Program for Scientific Translations, Jerusalem, 1965.

[75]. Kellog, O.D., Foundations of Potential Theory, Springer-Verlag, Berlin, 1967. [76]. Jaswon, M.A. and Symm, G.T., lntegral Equation Methods in Potential Theory

and Elastostatics, Academic Press, London, 1977.

[77]. Katsikadelis, J.T., Massalas, C.V. and Tzivanidis, G.J., An Integral Equation Solution of the Plane Problem of the Theory of Elasticity, Mechanics Research Communications, Vol.4, 1977, pp. 199-208.

[78]. Jaswon, M.A., Integral Equation Methods in Potential Theory I, Proceedings of the Royal Society, Ser. A, Vol.275, 1963, pp.23-32.

[79]. Symm, G.T., Integral Equation Methods in Potential Theory II, Proceedings of the Royal Society, Ser. A, Vol.275, 1963, pp.33-46.

[80]. Terres, H., A. Ortega, J., Vargas, J. H., Bautista, J., Termografía computacional para la determinación de la altura de operación en una placa usada en un proceso electroquímico, XI Congreso Nacional de Ingeniería Electromecánica y de

Sistemas, 9-13, noviembre de 2009, D. F., México.

[81]. Sandra Coutin, Arlex Chaves, A thermal analysis approach for the detection of damage in carbon-carbon type composite. Journal of composite materials, Vol. 41,

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