TY - JOUR
T1 - Numerical simulation of droplet transfer with TiO2flux column during flux cored arc welding by 3D smoothed particle hydrodynamics method
AU - Ueno, Ryo
AU - Komen, Hisaya
AU - Shigeta, Masaya
AU - Tanaka, Manabu
N1 - Publisher Copyright:
© 2020 Japan Welding Society. All rights reserved.
PY - 2021
Y1 - 2021
N2 - A molten metal droplet transfer processes were simulated by a numerical model using a three-dimensional smoothed particle hydrodynamics method in order to clarify the flux column formation mechanism at the tip of a wire during a flux cored arc welding process. This study focuses on the flux cored arc welding with TiO2based wire.As a result, although the average droplet size obtained by the computation was larger than that by the experiment, the average length of the flux column obtained by the computation showed agreement with that by the experiment, which supports supported validity of this computational model. Moreover, the melting rate of the metal-pipe around flux was higher than flux. The flux column was formed at the tip of the wire. The simulations with different values of a specific heat and a thermal conductivity were performed to investigate the effect of the heat conduction in the wire on the flux column formation. The unmelted flux column was formed at the tip of the wire when the specific heat of the flux component was smaller and the thermal conductivity was higher than those of TiO2. The result indicated that the heat conduction in flux played an important role in the flux column formation during flux cored arc welding.
AB - A molten metal droplet transfer processes were simulated by a numerical model using a three-dimensional smoothed particle hydrodynamics method in order to clarify the flux column formation mechanism at the tip of a wire during a flux cored arc welding process. This study focuses on the flux cored arc welding with TiO2based wire.As a result, although the average droplet size obtained by the computation was larger than that by the experiment, the average length of the flux column obtained by the computation showed agreement with that by the experiment, which supports supported validity of this computational model. Moreover, the melting rate of the metal-pipe around flux was higher than flux. The flux column was formed at the tip of the wire. The simulations with different values of a specific heat and a thermal conductivity were performed to investigate the effect of the heat conduction in the wire on the flux column formation. The unmelted flux column was formed at the tip of the wire when the specific heat of the flux component was smaller and the thermal conductivity was higher than those of TiO2. The result indicated that the heat conduction in flux played an important role in the flux column formation during flux cored arc welding.
KW - Flux Column
KW - Flux Cored Arc Welding
KW - Molten Metal Droplet Transfer
KW - Smoothed Particle Hydrodynamics
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U2 - 10.2207/QJJWS.38.84S
DO - 10.2207/QJJWS.38.84S
M3 - Article
AN - SCOPUS:85099613082
SN - 0288-4771
VL - 38
SP - 84S-88S
JO - Yosetsu Gakkai Ronbunshu/Quarterly Journal of the Japan Welding Society
JF - Yosetsu Gakkai Ronbunshu/Quarterly Journal of the Japan Welding Society
IS - 2
ER -