Nalazite se na CroRIS probnoj okolini. Ovdje evidentirani podaci neće biti pohranjeni u Informacijskom sustavu znanosti RH. Ako je ovo greška, CroRIS produkcijskoj okolini moguće je pristupi putem poveznice www.croris.hr
izvor podataka: crosbi

Numerical investigation of the transient spray cooling process for quenching applications (CROSBI ID 255115)

Prilog u časopisu | izvorni znanstveni rad | međunarodna recenzija

Baleta, Jakov ; Qi, Fengsheng ; Živić, Marija ; Lovrenić-Jugović, Martina Numerical investigation of the transient spray cooling process for quenching applications // Thermal science, 22 (2018), 5; 1-11. doi: 10.2298/tsci180120261b

Podaci o odgovornosti

Baleta, Jakov ; Qi, Fengsheng ; Živić, Marija ; Lovrenić-Jugović, Martina

engleski

Numerical investigation of the transient spray cooling process for quenching applications

Water spray quenching distinguished itself as a promising method for industry production, especially for the parts which require good mechanical strength while simultaneously retaining the initial toughness. Studies have shown that the heat transfer process during the spray quenching is mostly influenced by the spray impingement density, particle velocities and sizes. The application of advanced numerical methods still plays insufficient role in the development of the production process, in spite of the fact that industry today is facing major challenges that can be met only by development of new and more efficient systems using advanced tools for product development, one of which is computational fluid dynamics. Taking the above stated, the object of this research is numerical simulation of spray quenching process in order to determine validity of mathematical models implemented within the commercial computational fluid dynamics code Fire, especially droplet evaporation/condensation and droplet-wall heat transfer model. After review of the relevant literature suitable benchmark case was selected and simulated by employing discrete droplet method for the spray treatment and Eulerian approach for the gas phase description. Simulation results indicated that existing droplet/wall heat transfer model is not able to reproduce heat transfer of dense water spray. Thus, Lagrangian spray model was improved by implementing experimental correlation for heat transfer coefficient during spray quenching. Finally, verification of the implemented model was assessed based on the conducted simulations and recommendations for further improvements were given.

spray quenching, computational fluid dynamics, spray/wall interaction, heat transfer

nije evidentirano

nije evidentirano

nije evidentirano

nije evidentirano

nije evidentirano

nije evidentirano

Podaci o izdanju

22 (5)

2018.

1-11

objavljeno

0354-9836

2334-7163

10.2298/tsci180120261b

Povezanost rada

Metalurgija, Strojarstvo

Poveznice
Indeksiranost