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Some studies on weld bead geometries for laser spot welding process using finite element analysis
Highlights ► In this study, a 2kW Nd:YAG laser welding system is used to conduct laser spot welding trials. ► The size and shape of the laser spot weld is predicted using finite element simulation. ► The heat input is assumed to be a three-dimensional conical Gaussian heat source. ► The result highlights the effect of beam incident angle on laser spot welds. ► The achieved results of numerical simulation are almost identical with a real weldment.
Abstract Nd:YAG laser beam welding is a high power density welding process which has the capability to focus the beam to a very small spot diameter of about 0.4mm. It has favorable characteristics namely, low heat input, narrow heat affected zone and lower distortions, as compared to conventional welding processes. In this study, finite element method (FEM) is applied for predicting the weld bead geometry i.e. bead length (BL), bead width (BW) and depth of penetration (DP) in laser spot welding of AISI 304 stainless steel sheet of thickness 2.5mm. The input parameters of laser spot welding such as beam power, incident angle of the beam and beam exposure time are varied for conducting experimental trials and numerical simulations. Temperature-dependent thermal properties of AISI 304 stainless steel, the effect of latent heat of fusion, and the convective and radiative aspects of boundary conditions are considered while developing the finite element model. The heat input to the developed model is assumed to be a three-dimensional conical Gaussian heat source. Finite-element simulations of laser spot welding were carried out by using Ansys Parametric Design Language (APDL) available in finite-element code, ANSYS. The results of the numerical analysis provide the shape of the weld beads for different ranges of laser input parameters that are subsequently compared with the results obtained through experimentation and it is found that they are in good agreement.
Some studies on weld bead geometries for laser spot welding process using finite element analysis
Highlights ► In this study, a 2kW Nd:YAG laser welding system is used to conduct laser spot welding trials. ► The size and shape of the laser spot weld is predicted using finite element simulation. ► The heat input is assumed to be a three-dimensional conical Gaussian heat source. ► The result highlights the effect of beam incident angle on laser spot welds. ► The achieved results of numerical simulation are almost identical with a real weldment.
Abstract Nd:YAG laser beam welding is a high power density welding process which has the capability to focus the beam to a very small spot diameter of about 0.4mm. It has favorable characteristics namely, low heat input, narrow heat affected zone and lower distortions, as compared to conventional welding processes. In this study, finite element method (FEM) is applied for predicting the weld bead geometry i.e. bead length (BL), bead width (BW) and depth of penetration (DP) in laser spot welding of AISI 304 stainless steel sheet of thickness 2.5mm. The input parameters of laser spot welding such as beam power, incident angle of the beam and beam exposure time are varied for conducting experimental trials and numerical simulations. Temperature-dependent thermal properties of AISI 304 stainless steel, the effect of latent heat of fusion, and the convective and radiative aspects of boundary conditions are considered while developing the finite element model. The heat input to the developed model is assumed to be a three-dimensional conical Gaussian heat source. Finite-element simulations of laser spot welding were carried out by using Ansys Parametric Design Language (APDL) available in finite-element code, ANSYS. The results of the numerical analysis provide the shape of the weld beads for different ranges of laser input parameters that are subsequently compared with the results obtained through experimentation and it is found that they are in good agreement.
Some studies on weld bead geometries for laser spot welding process using finite element analysis
Siva Shanmugam, N. (author) / Buvanashekaran, G. (author) / Sankaranarayanasamy, K. (author)
2011-08-02
15 pages
Article (Journal)
Electronic Resource
English
Some studies on weld bead geometries for laser spot welding process using finite element analysis
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