The aim of this paper is to investigate the behavior of different types of transferred-arc dual-gas plasma torches used for the cutting of metallic materials bymeans of a 2-D FLUENT-based numerical model, putting into evidence the physical reasons for the industrial success of various design and process solutions appeared over the last years, such as the following: vented-nozzle technology, various different approaches for the geometry of the plasma chamber, the effect of externally superimposed magnetic fields, and secondary-gas-swirl injections with different directions. Flow and heat-transfer equations are solved with coupled electromagnetic ones for local-thermodynamic-equilibrium optically thin plasma, whereas turbulence phenomena are taken into account by means of a κ−ε realizable model. The simulations include a prediction of the thermal behavior of the solid components of the torch head, including electrode and hafnium insert, and the efficiency of nozzle- and electrode-cooling systems in various operating conditions, including gas mixtures (O2/air, H35/N2, and N2/N2). Radiation is included in the calculation of heat transfer to the surfaces of the components, using a customized discrete-ordinate model. Results have been analyzed with respect to plasma behavior, and conclusions have been drawn, concerning the powerfulness of numerical simulation as a tool for cutting torch design.
V. Colombo, A. Concetti, E. Ghedini, S. Dallavalle, M. Vancini (2008). Understanding Plasma Fluid Dynamics Inside Plasma Torches Through Advanced Modeling. IEEE TRANSACTIONS ON PLASMA SCIENCE, 36 2, 389-402 [10.1109/TPS.2008.918664].
Understanding Plasma Fluid Dynamics Inside Plasma Torches Through Advanced Modeling
COLOMBO, VITTORIO;CONCETTI, ALESSIA;GHEDINI, EMANUELE;
2008
Abstract
The aim of this paper is to investigate the behavior of different types of transferred-arc dual-gas plasma torches used for the cutting of metallic materials bymeans of a 2-D FLUENT-based numerical model, putting into evidence the physical reasons for the industrial success of various design and process solutions appeared over the last years, such as the following: vented-nozzle technology, various different approaches for the geometry of the plasma chamber, the effect of externally superimposed magnetic fields, and secondary-gas-swirl injections with different directions. Flow and heat-transfer equations are solved with coupled electromagnetic ones for local-thermodynamic-equilibrium optically thin plasma, whereas turbulence phenomena are taken into account by means of a κ−ε realizable model. The simulations include a prediction of the thermal behavior of the solid components of the torch head, including electrode and hafnium insert, and the efficiency of nozzle- and electrode-cooling systems in various operating conditions, including gas mixtures (O2/air, H35/N2, and N2/N2). Radiation is included in the calculation of heat transfer to the surfaces of the components, using a customized discrete-ordinate model. Results have been analyzed with respect to plasma behavior, and conclusions have been drawn, concerning the powerfulness of numerical simulation as a tool for cutting torch design.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.