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Surface residual stresses in multipass welds produced using low transformation temperature filler alloys
Authors:T I Ramjaun  H J Stone  L Karlsson  M A Gharghouri  K Dalaei  R J Moat
Affiliation:1. Materials Science and Metallurgy, University of Cambridge, Cambridge CB3 0FS, UKtir20@cam.ac.uk;3. Materials Science and Metallurgy, University of Cambridge, Cambridge CB3 0FS, UK;4. Department of Engineering Science, University West, SE-461 86 Trollh?ttan, Sweden;5. Canadian Neutron Beam Centre, Chalk River Laboratories, Chalk River, Ont. K0J 1J0, Canada;6. ESAB AB, Lindholmsallen 9, 40277 Gothenburg, Sweden;7. Materials Engineering, The Open University, Milton Keynes MK7 6AA, UK
Abstract:Tensile residual stresses at the surface of welded components are known to compromise fatigue resistance through the accelerated initiation of microcracks, especially at the weld toe. Inducement of compression in these regions is a common technique employed to enhance fatigue performance. Transformation plasticity has been established as a viable method to generate such compressive residual stresses in steel welds and exploits the phase transformation in welding filler alloys that transform at low temperature to compensate for accumulated thermal contraction strains. Neutron and X-ray diffraction have been used to determine the stress profiles that exist across the surface of plates welded with low transformation temperature welding alloys, with a particular focus on the stress at the weld toe. For the first time, near surface neutron diffraction data have shown the extent of local stress variation at the critical, fusion boundary location. Compression was evident for the three measurement orientations at the fusion boundaries. Compressive longitudinal residual stresses and tensile transverse stresses were measured in the weld metal.
Keywords:Transformation induced plasticity  Martensite  Residual stress  Welding  Neutron  X-ray diffraction
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