Cite

[1] Harb, A. A., Ciuca, I., Ciocoiu, R., Vasile, M., Adrian, B., Rahali, B., Al Hawamda, I. “Effect of TIG welding and manual metal arc welding on mechanical properties of AISI 304 and 316L austenitic stainless-steel sheets”, Key Engineering Materials 750, pp. 26 – 33, 2017. DOI: 10.4028/www.scientific.net/KEM.750.2610.4028/www.scientific.net/KEM.750.26Open DOISearch in Google Scholar

[2] Santillana, I. A., Boyer, C., Pison, P. F., Foussat, A., Langeslag, S. A. E., Fontenla, A. T. P., Ruiz Navas, E. M., Sgobba, S. “A comparative study of fracture toughness at cryogenic temperature of austenitic stainless-steel welds”, Journal of Materials Engineering and Performance 27 (4), pp. 1995 – 2002, 2018. DOI: 10.1007/s11665-018-3266-110.1007/s11665-018-3266-1Open DOISearch in Google Scholar

[3] Ugur, E., Melih, B, Yugut, K., Sueda, O. “Optimization of weld bead geometry in TIG welding process using grey relation analysis and Taguchi method”, Materials and Technology 43 (3), pp. 143 – 149, 2009.Search in Google Scholar

[4] Tarng, Y. S., Yang, W. H. “Optimisation of the weld bead geometry in gas tungsten arc welding by the Taguchi method”, The International Journal of Advanced Manufacturing Technology 14 (8), pp. 549 – 554, 1998.10.1007/BF01301698Search in Google Scholar

[5] Juang, S. C., Tarng, Y. S. “Process parameter selection for optimizing the weld pool geometry in the tungsten inert gas welding of stainless steel”, Journal of Materials Processing Technology 122 (1), pp. 33 – 37, 2002.10.1016/S0924-0136(02)00021-3Search in Google Scholar

[6] Rudrapati, R., Chowdhury, N., Bandyopadhyay, A. “Parametric optimization of TIG welding process in butt joining of mild steel and stainless steel”, International Journal of Current Engineering and Technology 6, pp. 144 – 149, 2016.Search in Google Scholar

[7] Bodkhe, S. C., Dolas, D. R. “Optimization of activated tungsten inert gas welding of 304L austenitic stainless steel”, Procedia Manufacturing 20, pp. 277 – 282, 2018.10.1016/j.promfg.2018.02.041Search in Google Scholar

[8] Amudarasan, N. V., Palanikumar, K., Shanmugam, K. “Impact behaviour and Micro structural analysis of AISI 316L stainless steel weldments”, International Journal of Application or Innovation in Engineering & Management 2 (6), pp. 269 – 272, 2013.Search in Google Scholar

[9] Zou, Y., Ueji, R., Fujii, H. “Mechanical properties of advanced active-TIG welded duplex stainless steel and ferrite steel”, Materials Science and Engineering: A 620, pp. 140 – 148, 2015. DOI: 10.1016/j.msea.2014.10.00610.1016/j.msea.2014.10.006Open DOISearch in Google Scholar

[10] Gardner, L. “The use of stainless steel in structures”, Progress in Structural Engineering and Materials 7 (2), pp. 45 – 55, 2005.10.1002/pse.190Search in Google Scholar

[11] Selvaraj, D. P., Chandramohan, P., Mohanraj, M. “Optimization of surface roughness, cutting force and tool wear of nitrogen alloyed duplex stainless steel in a dry turning process using Taguchi method”, Measurements 49, pp. 205 – 215, 2014.10.1016/j.measurement.2013.11.037Search in Google Scholar

[12] Gunaraj,V., Murugan, N. “Application of response surface methodology for predicting weld bead quality in submerged arc welding of pipes”, Journal of Materials Processing Technology 88 (1 – 3), pp. 266 – 275, 1999.10.1016/S0924-0136(98)00405-1Search in Google Scholar

[13] Kumar,A., Sundarrajan, S. “Optimization of pulsed TIG welding process parameters on mechanical properties of AA 5456 Aluminum alloy weldments,” Materials and Design 30, pp. 1288 – 1297, 2009.10.1016/j.matdes.2008.06.055Search in Google Scholar

[14] Moi, S. C., Pal, P. K., Bandyopadhyay, A., Rudrapati, R. “Determination of tungsten inert gas welding input parameters to attain maximum tensile strength of 316L austenitic stainless steel”, Strojnícky časopis – Journal of Mechanical Engineering 68 (3), pp. 231 – 248, 2018. DOI: 10.2478/scjme-2018-003710.2478/scjme-2018-0037Open DOISearch in Google Scholar

[15] De, D., Nandi, T., Bandyopadhyay, A. “Parametric Study for Wire Cut Electrical Discharge Machining of Sintered Titanium”, Strojnícky časopis – Journal of Mechanical Engineering 69 (1), pp. 17 – 38, 2019. DOI: 10.2478/scjme-2019-000210.2478/scjme-2019-0002Open DOISearch in Google Scholar

[16] Vasantharaja, P., Vasudevan, M. “Optimization of A-TIG welding process parameters for RAFM steel using response surface methodology”, Journal of Materials: Design and Applications 232 (2), pp. 121 – 136, 2015. DOI: 10.1177/146442071561919210.1177/1464420715619192Open DOISearch in Google Scholar

[17] Kiaee, N., Aghaie-Khafri, M. “Optimization of gas tungsten arc welding process by response surface methodology”, Materials and Design 54, pp. 25 – 31, 2014. DOI: 10.1016/j.matdes.2013.08.03210.1016/j.matdes.2013.08.032Open DOISearch in Google Scholar

[18] Martinez-Conesa, E. J., Egea, J. A., Miguel, V., Toledo, C., Meseguer-Valdenebro, J. L. “Optimization of geometric parameters in a welded joint through response surface methodology”, Construction and Building materials 154, pp. 105 – 114, 2017. DOI: 10.1016/j.conbuildmat.2017.07.16310.1016/j.conbuildmat.2017.07.163Open DOISearch in Google Scholar

[19] Dao, T. P., Huang, S. C., Thang, P. T. “Hybrid Taguchi-cuckoo search algorithm for optimization of a compliant focus positioning platform”, Applied Soft Computing 57, pp. 526 – 538, 2017. DOI: 10.1016/j.asoc.2017.04.03810.1016/j.asoc.2017.04.038Open DOISearch in Google Scholar

[20] Azizah, B. M. “Enhancement of the machining surface roughness model with cuckoo algorithm” Thesis of Master of Science, Faculty of Computing, Universiti Teknologi Malaysia, 2014.Search in Google Scholar

[21] Burnwal, S., Deb, S. “Scheduling optimization of flexible Manufacturing system using cuckoo search-based approach”, International Journal of Advanced Manufacturing Technology 64, pp. 951 – 959, 2013.10.1007/s00170-012-4061-zSearch in Google Scholar

[22] Ferreira, S. L. C., Bruns, R. E., Ferreira, H. S., Matos, G. D., David, J. M., Brandao, G. C., Silva E. G. P., Portugal, L. A., Reis, P. S., Souza. A. S, Santos, W. N. L. “Box-Behnken design: An alternative for the optimization of analytical methods”, Analytica Chimica Acta 597, pp. 179 – 186, 2007.10.1016/j.aca.2007.07.01117683728Search in Google Scholar

[23] Yang, X. S., Deb, S. “Cuckoo search via Levy flights”, Proceeding of World Congress on Nature and Biologically Inspired Computing, India, 2009.10.1109/NABIC.2009.5393690Search in Google Scholar

[24] Fister, I. Jr., Fister, D., Fister, I. “A comprehensive review of cuckoo search: variants and hybrids”, Int. J. Mathematical Modelling and Numerical Optimisation 4 (4), pp. 387 – 409, 2013.10.1504/IJMMNO.2013.059205Search in Google Scholar

[25] Wang, T., Meskin, M., Grinberg, I. “Comparison between particle swarm optimization and Cuckoo search method for optimization in unbalanced active distribution system”, IEEE International Conference on Smart Energy Grid Engineering (SEGE), pp. 14 – 19, 2017.10.1109/SEGE.2017.8052769Search in Google Scholar

[26] Alam, M. S., Prima, S. S., Gupta, S. D., Razia, J. “Parameter optimization of Cuckoo Search Algorithm for Multi Dimensional Function Optimization Problem”, Communications on Applied Electronics 7(18), pp. 6 – 10, 2018. DOI: 10.5120/cae201865277610.5120/cae2018652776Open DOISearch in Google Scholar

[27] Mohamad, A., Zain, A. M., Bazin, N. E. N., Udin, A. “Cuckoo search algorithm for optimization problems - A literature review”, Applied Mechanics and Materials 421, pp. 502 – 506, 2013. DOI: 10.4028/www.scientific.net/AMM.421.50210.4028/www.scientific.net/AMM.421.502Open DOISearch in Google Scholar

eISSN:
2450-5471
Language:
English
Publication timeframe:
2 times per year
Journal Subjects:
Engineering, Mechanical Engineering, Fundamentals of Mechanical Engineering, Mechanics