Abstract
Filler wire metallurgy was modified through temporally shaped laser pulses, controlling cooling cycles in a recently developed method. Trends were identified through efficient mapping while maintaining representative thermal cycles of welding processes. A primary pulse melted preplaced filler wires while a secondary, linearly ramped-down pulse elevated the nugget to re-austenization temperatures. Ramped-down pulses resulted in linear cooling rates comparable with and exceeding furnace-based methods, between 50 and 300∘C/s. The linear decay of laser output power guided the temperature through a regime to obtain desired microstructures. For three very high-strength steel filler wire chemistries, quenching resulted in smaller plates with cross-hatched microstructures, accompanied by grain boundary ferrite. Finer bainite microstructures started forming for fast linear temperature decay, about 250∘C/s. Slower decay or a weaker third cycle formed coarser microstructures with coalescent sheaves and less cross-hatching.
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Robertson, S. M., Frostevarg, J., Ramasamy, A., Kalfsbeek, B., Volpp, J., & Kaplan, A. F. H. (2020). Microstructures of high-strength steel welding consumables from directed thermal cycles by shaped laser pulses. International Journal of Advanced Manufacturing Technology, 109(9–12), 2653–2662. https://doi.org/10.1007/s00170-020-05749-1
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