Nothing Special   »   [go: up one dir, main page]

Kim et al., 1998 - Google Patents

A mathematical model of heat transfer and fluid flow in the gas metal arc welding process

Kim et al., 1998

Document ID
3927719058315975509
Author
Kim I
Basu A
Publication year
Publication venue
Journal of Materials Processing Technology

External Links

Snippet

Mathematical models of the Gas Metal Arc Welding (GMAW) process may be employed to predict welding process parameters to obtain the required weld-bead geometry and to study the effects of weld process parameters on the weld-bead dimensions. In this work, an …
Continue reading at www.sciencedirect.com (other versions)

Classifications

    • GPHYSICS
    • G06COMPUTING; CALCULATING; COUNTING
    • G06FELECTRICAL DIGITAL DATA PROCESSING
    • G06F17/00Digital computing or data processing equipment or methods, specially adapted for specific functions
    • G06F17/50Computer-aided design
    • G06F17/5009Computer-aided design using simulation
    • G06F17/5018Computer-aided design using simulation using finite difference methods or finite element methods

Similar Documents

Publication Publication Date Title
Kim et al. A mathematical model of heat transfer and fluid flow in the gas metal arc welding process
Wahab et al. The prediction of the temperature distribution and weld pool geometry in the gas metal arc welding process
Meng et al. Investigation of humping defect in high speed gas tungsten arc welding by numerical modelling
Farias et al. An efficient computational approach for heat source optimization in numerical simulations of arc welding processes
Wang et al. Investigation of heat transfer and fluid flow in activating TIG welding by numerical modeling
Xu et al. Three-dimensional modeling of arc plasma and metal transfer in gas metal arc welding
Cao et al. Three-dimensional simulation of transient GMA weld pool with free surface
Kidess et al. Marangoni driven turbulence in high energy surface melting processes
Wu et al. Numerical analysis of the heat and fluid flow in a weld pool with a dynamic keyhole
Jian et al. A unified 3D model for an interaction mechanism of the plasma arc, weld pool and keyhole in plasma arc welding
Wu et al. Numerical analysis of both front-and back-side deformation of fully-penetrated GTAW weld pool surfaces
Traidia et al. Hybrid 2D–3D modelling of GTA welding with filler wire addition
Cho et al. Impact of driving forces on molten pool in gas metal arc welding
Trautmann et al. Numerical simulation of TIG weld pool dynamics using smoothed particle hydrodynamics
Zargari et al. Visualizing the vibration effect on the tandem-pulsed gas metal arc welding in the presence of surface tension active elements
Bahrami et al. Study of mass transport in autogenous GTA welding of dissimilar metals
Traidia et al. On the effects of gravity and sulfur content on the weld shape in horizontal narrow gap GTAW of stainless steels
Bahrami et al. Fluid flow and mixing in linear GTA welding of dissimilar ferrous alloys
Dialami et al. Numerical simulation and visualization of material flow in friction stir welding via particle tracing
Ghosh Pulse current gas metal arc welding
Desmaison et al. A level set approach for the simulation of the multipass hybrid laser/GMA welding process
Xu et al. Modeling three-dimensional plasma arc in gas tungsten arc welding
Bahrami et al. Computational analysis of the effect of welding parameters on energy consumption in GTA welding process
Unnikrishnakurup et al. Estimation of heat flux parameters during static gas tungsten arc welding spot under argon shielding
Wang et al. Simulation on the thermal cycle of a welding process by space–time convection–diffusion finite element analysis