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Global and Local Mechanical Properties of Autogenously Laser Welded Ti-6Al-4V
Authors:Xinjin Cao  Abu Syed H Kabir  Priti Wanjara  Javad Gholipour  Anand Birur  Jonathan Cuddy  Mamoun Medraj
Affiliation:1. Structures, Materials and Manufacturing Laboratory, National Research Council Canada - Aerospace, 5145 Decelles Avenue, Montreal, QC, H3T 2B2, Canada
2. Department of Mechanical and Industrial Engineering, Concordia University, 1455 De Maisonneuve Blvd. West, Montreal, QC, H3G 1M8, Canada
3. McGill University, Montreal, QC, H3A 0C5, Canada
4. Standard Aero Limited, 33 Allen Dyne Road, Winnipeg, MB, R3H 1A1, Canada
Abstract:Ti-6Al-4V sheets, 3.2-mm in thickness, were butt welded using a continuous wave 4 kW Nd:YAG laser welding system. The effect of two main process parameters, laser power and welding speed, on the joint integrity was characterized in terms of the joint geometry, defects, microstructure, hardness, and tensile properties. In particular, a digital image correlation technique was used to determine the local tensile properties of the welds. It was determined that a wide range of heat inputs can be used to fully penetrate the Ti-6Al-4V butt joints during laser welding. At high laser power levels, however, significant defects such as underfill and porosity, can occur and cause marked degradation in the joint integrity and performance. At low welding speeds, however, significant porosity occurs due to its growth and the potential collapse of instable keyholes. Intermediate to relatively high levels of heat input allow maximization of the joint integrity and performance by limiting the underfill and porosity defects. In considering the effect of the two main defects on the joint integrity, the underfill defect was found to be more damaging to the mechanical performance of the weldment than the porosity. Specifically, it was determined that the maximum tolerable underfill depth for Ti-6Al-4V is approximately 6 pct of the workpiece thickness, which is slightly stricter than the value of 7 pct specified in AWS D17.1 for fusion welding in aerospace applications. Hence, employing optimized laser process parameters allows the underfill depth to be maintained within the tolerable limit (6 pct), which in turn prevents degradation in both the weld strength and ductility. To this end, the ability to maintain weld ductility in Ti-6Al-4V by means of applying a high energy density laser welding process presents a significant advantage over conventional arc welding for the assembly of aerospace components.
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