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Modelling of thermal plasmas for arc welding: the role of the shielding gas properties and of metal vapour

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TLDR
In this article, the influence of thermophysical properties on the parameters of tungsten-inert-gas (TIG) welding arcs, particularly those that affect the weld pool, is investigated using a two-dimensional model in which the arc, anode and cathode are included self-consistently.
Abstract
The methods used to model thermal plasmas, including treatments of diffusion in arcs in gas mixtures, are reviewed. The influence of thermophysical properties on the parameters of tungsten–inert-gas (TIG) welding arcs, particularly those that affect the weld pool, is investigated using a two-dimensional model in which the arc, anode and cathode are included self-consistently. The effect of changing each of six thermophysical properties on the characteristics of an argon TIG arc is assessed. The influence of the product of specific heat and mass density is found to be particularly important in determining the arc constriction. By examining the influence of the different properties on the heat flux density, current density and shear stress at the anode, it is concluded that the weld pool depth can be increased by using shielding gases with high specific heat, thermal conductivity and viscosity. The effect of metal vapour on the arc and weld pool properties is assessed. The most important effect of the metal vapour is found to be the increased electrical conductivity at low temperatures, which leads to lower heat flux density and current density at the weld pool, implying a shallower weld pool.

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Journal ArticleDOI

Fluid and particle dynamics in laser powder bed fusion

TL;DR: In this paper, a combination of high-speed imaging and schlieren imaging, as well as multiphysics modeling, was employed to elucidate the effects of the interaction between the laser beam and the powder bed.
Journal ArticleDOI

The effects of metal vapour in arc welding

TL;DR: In this article, the effect of metal vapour on the distributions of temperature, current density and heat flux in arcs is examined in terms of these thermophysical properties, and different approaches to treat diffusion of metal vapor in plasmas, and the production of vapour from molten metal, are compared.
Journal ArticleDOI

Numerical analysis of heat transfer and fluid flow in multilayer deposition of PAW-based wire and arc additive manufacturing

TL;DR: In this paper, a three-dimensional numerical model was developed to investigate the fluid flow and heat transfer behaviors in multilayer deposition of plasma arc welding (PAW) based wire and arc additive manufacture (WAAM).
Journal ArticleDOI

Metal vapour causes a central minimum in arc temperature in gas-metal arc welding through increased radiative emission

TL;DR: In this article, a computational model of the argon arc plasma in gas-metal arc welding (GMAW) that includes the influence of metal vapour from the electrode is presented, and the occurrence of a central minimum in the radial distributions of temperature and current density is demonstrated.
Journal ArticleDOI

Plasma modelling and numerical simulation

TL;DR: An editorial review of plasma modelling provides a bird’s eye perspective on plasma modelling and discussing the historical context in which it has surfaced, as well as introducing and complementing 20 invited contributions.
References
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Book

Numerical heat transfer and fluid flow

TL;DR: In this article, the authors focus on heat and mass transfer, fluid flow, chemical reaction, and other related processes that occur in engineering equipment, the natural environment, and living organisms.
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Molecular theory of gases and liquids

TL;DR: Molecular theory of gases and liquids as mentioned in this paper, molecular theory of gas and liquids, Molecular theory of liquid and gas, molecular theories of gases, and liquid theory of liquids, مرکز
Journal ArticleDOI

Volume of fluid (VOF) method for the dynamics of free boundaries

TL;DR: In this paper, the concept of a fractional volume of fluid (VOF) has been used to approximate free boundaries in finite-difference numerical simulations, which is shown to be more flexible and efficient than other methods for treating complicated free boundary configurations.
Journal ArticleDOI

Enhancements of the simple method for predicting incompressible fluid flows

TL;DR: The performances of SIMPLE, SIMPLER, and SIMPLEC are compared for two recirculating flow problems and several modifications to the method are shown which both simplify its implementation and reduce solution costs.
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