The reconsitution of the weld pool surface in stationary TIG welding process with filler wire

Welding in the World - Tập 65 - Trang 2437-2447 - 2021
Shurong Yu1, Guangyin Liu2, Jing He3, Huizi Chen2, Ding Fan2, Jiankang Huang2, Wei Pan2, Shien Liu2
1Mechanical and Electrical College, Lanzhou University of Technology, Lanzhou, China
2State Key Laboratory of Advanced Processing and Recycling of Non-Ferrous Metals, Lanzhou University of Technology, Lanzhou, China
3Department of Mechanical Energy Engineering, Southern University of Science and Technology, Shenzhen, China

Tóm tắt

The behavior of the welding pool plays an important role in determining the quality of the weld, and the surface behavior of the welding pool contains some important information as feedback to adjust welding parameters. In order to study the dynamic characteristics of the molten pool surface in the TIG welding process with the filler wire, a grid structure laser measurement platform, based on the principle of surface reflection, was designed to observe the molten pool surface in this work. CCD was used to record the imaging on the projection screen. A new three-dimensional reconstruction algorithm was proposed for calculation of the welding pool surface. This algorithm analyzes the image which is captured by the CCD to restore the three-dimensional topography of the fixed-point wire-filled TIG welding pool, so as to obtain the three-dimensional topography evolution the during welding process. The difference between the obtained weld pool height and the experimental results is very small.

Tài liệu tham khảo

Tseng KH, Hsu CY (2011) Performance of activated tig process in austenitic stainless steel welds. J Mater Process Technol 211:503–512 Modenesi PJ, Apolinário ER, Pereira IM (2000) TIG welding with single-component fluxes. J Mater Process Technol 99:260–265 Wang JJ, Lin T, Chen SB (2005) Obtaining weld pool vision information during aluminium alloy TIG welding. Int J Adv Manuf Technol 26:219–227 Zhao PC, Wu CS, Zhang YM (2004) Numerical simulation of the dynamic characteristics of weld pool geometry with step-changes of welding parameters. Model Simul Mater Sci Eng 12:765 Wu CS, Chen J, Zhang YM (2007) Numerical analysis of both front- and back-side deformation of fully-penetrated gtaw weld pool surfaces. Comput Mater Sci 39:635–642 Saeed G, Zhang YM (2003) Mathematical formulation and simulation of specular reflection based measurement system for gas tungsten arc weld pool surface. Meas Sci Technol 14:1671 Fan H, Ravala NK, Iii HCW, Chin BA (2003) Low-cost infrared sensing system for monitoring the welding process in the presence of plate inclination angle. J Mater Process Technol 140:668–675 Liu A, Tang X, Lu F (2013) Weld pool profile characteristics of al alloy in double-pulsed GMAW. Int J Adv Manuf Technol 68:2015–2023 Iii HCW, Kottilingam S, Zee RH, Chin BA (2001) Infrared sensing techniques for penetration depth control of the submerged arc welding process. J Mater Process Technol 113:228–233 Guu AC, Rokhlin SI (1992) Arc weld process control using radiographic sensing. Mater Eval 50:1344–1348 Liu ZM, Wu CS, Gao JQ (2013) Vision-based observation of keyhole geometry in plasma arc welding. Int J Therm Sci 63:38–45 Ma XJ, Zhang YM (2013) Reconstruction of three-dimensional gas metal arc weld pool surface from reflected laser pattern. J Manuf Sci Eng 135(2):021002 Wang ZJ, Zhang GJ, Liang ZM, Zhang YM, Gao HM, Wu L (2007) Current status and development trend of tridimensional monitoring and measurement technology for weld pool surface. Weld J 8:15–19 Dinham M, Fang G (2013) Autonomous weld seam identification and localisation using eye-in-hand stereo vision for robotic arc welding. Robot Comp-Integr Manuf 29:288–301 Li LP, Lin T, Chen SB, Yang XQ (2006) The surface height acquisition of welding pool based on shape from Shading(SFS). J Shanghai Jiaotong Univ (Chin Ed) 40:97–107 Huang L, Ng CS, Asundi AK (2011) Dynamic three-dimensional sensing for specular surface with monoscopic fringe reflectometry. Opt Express 19:12809–12814 Zhang YM, Kovacevic R (1997) Real-time sensing of Sag geometry during GTA welding. J Manuf Sci Eng 119:151–160 Wang ZZ, Zhang YM, Yang RG (2013) Analytical reconstruction of three-dimensional weld pool surface in GTAW. J Manuf Process 15:34–40 Wei YQ, Liu NS, Hu X, Ai XP (2011) Phase-correction algorithm of deformed grating images in the depth measurement of weld pool surface in gas tungsten arc welding. Optic Eng 50:057209 Wang ZZ (2015) An imaging and measurement system for robust reconstruction of weld pool during arc welding. IEEE Trans Industr Electron 62:5109–5118 Huang JK, He J, He XY, Yu SR, Fan D (2017) Study on dynamic development of three-dimensional weld pool surface in stationary GTAW. High Temp Mater Processes (London) 37:455–462