Boldsaikhan, E., Corwin, E. M., Logar, A. M., & Arbegast, W. J. (2011). The use of neural network and discrete Fourier transform for real-time evaluation of friction stir welding. Applied Soft Computing, 11(8), 4839-4846. doi:10.1016/j.asoc.2011.06.017
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Fernandez JB., Roca, AS., Fals, HC., Macias, EJ., de la Parte, MP., 2012. Application of the vibro-acoustic signals to evaluate tools profile changes in the friction stir welding on AA1050 H24 alloy. Science and Technology of Welding and Joining. (no publicado). DOI: 10.1179/1362171812Y.0000000040.
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Boldsaikhan, E., Corwin, E. M., Logar, A. M., & Arbegast, W. J. (2011). The use of neural network and discrete Fourier transform for real-time evaluation of friction stir welding. Applied Soft Computing, 11(8), 4839-4846. doi:10.1016/j.asoc.2011.06.017
Chen, C., Kovacevic, R., & Jandgric, D. (2003). Wavelet transform analysis of acoustic emission in monitoring friction stir welding of 6061 aluminum. International Journal of Machine Tools and Manufacture, 43(13), 1383-1390. doi:10.1016/s0890-6955(03)00130-5
Fernandez JB., Roca, AS., Fals, HC., Macias, EJ., de la Parte, MP., 2012. Application of the vibro-acoustic signals to evaluate tools profile changes in the friction stir welding on AA1050 H24 alloy. Science and Technology of Welding and Joining. (no publicado). DOI: 10.1179/1362171812Y.0000000040.
Flores, V. M., Correa, M., & Alique, J. R. (2011). Modelo Pre-Proceso de predicción de la Calidad Superficial en Fresado a Alta Velocidad basado en Softcomputing. Revista Iberoamericana de Automática e Informática Industrial RIAI, 8(1), 38-43. doi:10.1016/s1697-7912(11)70006-1
Fratini, L., Buffa, G., & Palmeri, D. (2009). Using a neural network for predicting the average grain size in friction stir welding processes. Computers & Structures, 87(17-18), 1166-1174. doi:10.1016/j.compstruc.2009.04.008
Gajate, A., & Haber, R. E. (2009). Control Neuroborroso en Red. Aplicación al Proceso de Taladrado de Alto Rendimiento. Revista Iberoamericana de Automática e Informática Industrial RIAI, 6(1), 31-38. doi:10.1016/s1697-7912(09)70074-3
Kulekci, M. K., Esme, U., Er, O., & Kazancoglu, Y. (2011). Modeling and prediction of weld shear strength in friction stir spot welding using design of experiments and neural network. Materialwissenschaft und Werkstofftechnik, 42(11), 990-995. doi:10.1002/mawe.201100781
LAKSHMINARAYANAN, A. K., & BALASUBRAMANIAN, V. (2009). Comparison of RSM with ANN in predicting tensile strength of friction stir welded AA7039 aluminium alloy joints. Transactions of Nonferrous Metals Society of China, 19(1), 9-18. doi:10.1016/s1003-6326(08)60221-6
Macías, E. J., Roca, A. S., Fals, H. C., Fernández, J. B., & de la Parte, M. P. (2010). Time–frequency diagram applied to stability analysis in gas metal arc welding based on acoustic emission. Science and Technology of Welding and Joining, 15(3), 226-232. doi:10.1179/136217110x12665778348588
Okuyucu, H., Kurt, A., & Arcaklioglu, E. (2007). Artificial neural network application to the friction stir welding of aluminum plates. Materials & Design, 28(1), 78-84. doi:10.1016/j.matdes.2005.06.003
Roca, A. S., Fals, H. C., Fernández, J. B., Macías, E. J., & Adán, F. S. (2007). New stability index for short circuit transfer mode in GMAW process using acoustic emission signals. Science and Technology of Welding and Joining, 12(5), 460-466. doi:10.1179/174329307x213882
Roca, A. S., Fals, H. C., Fernández, J. B., Macías, E. J., & de la Parte, M. P. (2009). Artificial neural networks and acoustic emission applied to stability analysis in gas metal arc welding. Science and Technology of Welding and Joining, 14(2), 117-124. doi:10.1179/136217108x382981
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