Fatigue & Fracture of Engineering Materials & Structures · 2020 · 17 citations · 29 references
EngineeringMechanical EngineeringHigh Strength Low Alloy SteelMechanics Of MaterialsStructural SteelMicrostructure ObservationsStructural MaterialsX80 WeldmentWelding ProcessSolidificationMaterials ScienceSolid MechanicsWeld Pool SolidificationFusion LineMicrostructureFracture Toughness PropertyHigh Temperature MaterialsExplosion WeldingCold-formed SectionDifferent ZonesHeat Input
Abstract In this paper, microstructure observations and mechanical behaviour of fusion line and offsetting positions from fusion line by 1, 2 and 3 mm were analysed. For the welding of X80 pipeline steel plates, different magnitudes of heat inputs such as high heat input (HHI) 25 kJ/cm, medium heat input (MHI) 20 kJ/cm and low heat input (LHI) 15 kJ/cm were employed. Critical values of J‐integral ( J 0.2 ) and crack tip opening displacement ( CTOD 0.2 ) for predetermined regions in the X80 weldment were determined as per ASTM‐E1820a. M‐A constituents of different sizes such as small (1–2 μm), large >2 μm and slender (>4 μm) were observed in the microstructure of subzones of weldments for different heat inputs. Formation of granular bainite, M‐A constituents and inclusions of Ti, Si, Mo in the microstructure impaired fracture toughness property. In the X80 weldment, the fusion line (FL) for HHI was found weakest in terms of fracture resistance, which subsequently increases the risk of fracture.
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Liangyun Lan, Chunlin Qiu, Dewen Zhao et al. · Materials Science and Engineering A · 2011 · 295 citations
Xueda Li, Xiaoping Ma, S. Subramanian et al. · Materials Science and Engineering A · 2014 · 186 citations
Engineering, Mechanical Engineering, High Strength Low Alloy Steel +4