NASA NTRS · 20260002047
Laser Beam Welding Benchmark Experiments Performed in Reduced Gravity and Vacuum
Abstract
Laser beam welding (LBW) is affected by the extreme temperatures, reduced pressure, and reduced gravity present in space environments. Gravity and pressure especially influence its melt pool and solidification dynamics. A compact, modular vacuum chamber adaptable to flight platforms from parabolic to orbital currently hosts an experiment to investigate the combined influence of reduced gravity and pressure on LBW. A swappable cartridge contains a rotating platen on which customizable workpieces can be welded under vacuum, greatly increasing experimental throughput. Instrumentation includes weld and thermal cameras observing the process, thermocouples placed on workpieces, accelerometers, and vacuum sensors. Experimental data gathered during the welding process will be combined with post-flight nondestructive evaluation, metallography, and mechanical testing to provide validation datasets for computational modeling. Phase I of this effort involves a parabolic flight campaign in low gravity while an anticipated Phase II would proceed to in-space demonstration to access extended duration microgravity.
Explore related subjects
Keep this discovery
Andrew O'Connor, Emma Jaynes, Benjamin Rupp, Louise Littles, Thomas Bryan, Christopher Protz, Jennifer Jones, Jeffrey Sowards. Laser Beam Welding Benchmark Experiments Performed in Reduced Gravity and Vacuum. https://ntrs.nasa.gov/citations/20260002047
Cite the original work for its findings. Save a collection to share your selection of sources.
Discover connections
Connections use source metadata and explicit phrase matches, not verified experimental comparisons.