Thermaltransport phenomenon of submerged arc welding process
Aniruddha Ghosh
; Dept of Mechanical Engg, Govt. College of Engg. & Textile Technology, Berhampore, WB, India
Grzegorz Krolczyk
; Faculty of Production Engineering and Logistics, Opole University of Technology, 76 Prószkowska Street, 45-758 Opole, Poland
Ivan Samardzic
; J. J. Strossmayer University of Osijek, Mechanical Engineering Faculty, Trg I. B. Mažuranić 2, 35000 Slavonski Brod, Croatia
Ranjan Kumar Mitra
; Dept of Mechanical Engineering, National Institute of Technology Durgapur, West Bengal, India
APA 6th Edition Ghosh, A., Krolczyk, G., Samardzic, I. i Mitra, R.K. (2014). Pojava toplinskog prijelaza kod zavarivanja pod zaštitnim slojem. Tehnički vjesnik, 21 (6), 1303-1306. Preuzeto s https://hrcak.srce.hr/131221
MLA 8th Edition Ghosh, Aniruddha, et al. "Pojava toplinskog prijelaza kod zavarivanja pod zaštitnim slojem." Tehnički vjesnik, vol. 21, br. 6, 2014, str. 1303-1306. https://hrcak.srce.hr/131221. Citirano 04.03.2021.
Chicago 17th Edition Ghosh, Aniruddha, Grzegorz Krolczyk, Ivan Samardzic i Ranjan Kumar Mitra. "Pojava toplinskog prijelaza kod zavarivanja pod zaštitnim slojem." Tehnički vjesnik 21, br. 6 (2014): 1303-1306. https://hrcak.srce.hr/131221
Harvard Ghosh, A., et al. (2014). 'Pojava toplinskog prijelaza kod zavarivanja pod zaštitnim slojem', Tehnički vjesnik, 21(6), str. 1303-1306. Preuzeto s: https://hrcak.srce.hr/131221 (Datum pristupa: 04.03.2021.)
Vancouver Ghosh A, Krolczyk G, Samardzic I, Mitra RK. Pojava toplinskog prijelaza kod zavarivanja pod zaštitnim slojem. Tehnički vjesnik [Internet]. 2014 [pristupljeno 04.03.2021.];21(6):1303-1306. Dostupno na: https://hrcak.srce.hr/131221
IEEE A. Ghosh, G. Krolczyk, I. Samardzic i R.K. Mitra, "Pojava toplinskog prijelaza kod zavarivanja pod zaštitnim slojem", Tehnički vjesnik, vol.21, br. 6, str. 1303-1306, 2014. [Online]. Dostupno na: https://hrcak.srce.hr/131221. [Citirano: 04.03.2021.]
Sažetak In present work, thermal transport considering heat radiation by oval heat source shape and heat transfer of molten moving electrode was presented. In present paper, an analytical solution was presented by aggregating temperature increments caused by applying liquid metal and heat radiation of moving electrode. The assumptions for the study were heat source of temperature of applied metal in oval shape and Gaussian distribution of electric heat source. Accuracy of the solution was verified comparing experimental results.