| Authors | Seyed Ali Mirbozorgi |
| Journal | International Journal of Advanced Manufacturing Technology |
| Page number | 615-624 |
| Serial number | 87 |
| Volume number | 87 |
| IF | 2.209 |
| Paper Type | Full Paper |
| Published At | 2016 |
| Journal Grade | ISI |
| Journal Type | Electronic |
| Journal Country | Iran, Islamic Republic Of |
| Journal Index | JCR،Scopus |
| Keywords | Submerged arc welding (SAW) . API X65 steel . Thermal cycle . Finite element method (FEM) . Goldak model |
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Abstract
This article reports on a numerical and experimental
investigation to understand and improve computer
methods in application of the Goldak model for predicting
thermal distribution in submerged arc welding (SAW) of
APIX65 pipeline steel. Accurate prediction of the thermal
cycle and residual stresses will enable control of the fusion
zone geometry, microstructure, and mechanical properties of
the SAW joint. In this study, a new Goldak heat source distribution
model for SAW is presented first. Both 2D and 3D
finite element models are developed using the solution of
heat transfer equations in ABAQUS Standard implicit. The
obtained results proved that the 2D axi-symmetric model
can be effectively employed to simulate the thermal cycles
and the welding residual stresses for the test steel. As
compared to the 3D analysis, the 2D model significantly
reduced the time and cost of the FE computation. The
numerical accuracy of the predicted fusion zone geometry
is compared to the experimentally obtained values for
bead-on-plate welds. The predictions given by the present
model were found to be in good agreement with experimental
measurements.