Fatigue life of welded joints is in general independent from the material strength. High-strength materials are only beneficial in the low-cycle-fatigue region due to their increased yield limit. This property leads to their application, for instance, in welded mobile crane structures. The high-cycle fatigue limit, however, depends mostly on the geometry and the metallurgy of the notch. Therefore, an optimized weld process is required to achieve a certain fatigue strength. This paper contributes to the obtainable fatigue limits for thin-walled, high-strength joints regarding an optimization of the gas metal arc weld process for fillet welds without additional post-treatment. A methodology is designed to manufacture welded specimens with minimized production scatter. The specimens were carefully analysed by metallographic studies, hardness, distortion and geometric weld toe measurements. The detailed analysis enables a profound link between experimental fatigue life and weld process settings. For the assessment of the fatigue life of thin-walled specimens, the nominal stress approach and the notch stress method are used. The thin wall thickness is considered in the nominal approach by a thickness correction factor. The experimental results showed that the highest fatigue strength for the specific specimen design in ‘as-welded’ condition can be obtained when using a high-strength metal-cored wire filler in combination with a three-component mixed gas.
[1]
Cetin Morris Sonsino,et al.
Fatigue assessment of welded joints by local approaches Second edition
,
2007
.
[2]
U. Kuhlmann,et al.
Welded Connections of High-Strength Steels For The Building Industry
,
2012,
Welding in the World.
[3]
Cetin Morris Sonsino,et al.
S-N Lines for Welded Thin Joints — Suggested Slopes and FAT Values for Applying the Notch Stress Concept with Various Reference Radii
,
2010
.
[4]
Wilfried Eichlseder,et al.
Application of fatigue approaches on fillet welds of high strength steel
,
2010
.
[5]
Michael Rygaard Hansen,et al.
Experience with the Notch Stress Approach for Fatigue Assessment of Welded Joints
,
2010
.
[6]
Michael Rygaard Hansen,et al.
Re-analysis of fatigue data for welded joints using the notch stress approach
,
2010
.
[7]
Cetin Morris Sonsino,et al.
Notch stress concepts for the fatigue assessment of welded joints – Background and applications
,
2012
.
[8]
Klemens Rother,et al.
Fatigue assessment of welded structures: practical aspects for stress analysis and fatigue assessment
,
2011
.
[9]
Wolfgang Fricke,et al.
Fatigue analysis of welded joints: state of development
,
2003
.