11 Fatigue Analysis of Dissimilar Metal Welded …
385
Fig. 11.17 Fracture surface 2 at 5000×
References
1. Enz J (2017) Laser beam welding of high-alloyed aluminum-zinc alloys. Dissertation
2. Makhlouf ASH, Aliofkhazraei M (2015) Materials failure analysis with case studies from the
aerospace and automotive industries. Elsevier Science & Technology, Erscheinungsort nicht
ermittelbar
3. Meneghetti G, Campagnolo A, Berto D et al (2019) Fatigue properties of austempered ductile
iron-to-steel dissimilar arc-welded joints. Procedia Struct Integr 24:190–203. https://doi.org/
10.1016/j.prostr.2020.02.016
4. Ahmad HW, Chaudry UM, Tariq MR et al (2020) Assessment of fatigue and electrochemical
corrosion characteristics of dissimilar materials weld between alloy 617 and 12 Cr steel. J
Manuf Processes 53:275–282. https://doi.org/10.1016/j.jmapro.2020.02.038
5. Wang W-K, Liu Y, Guo Y et al (2020) High cycle fatigue and fracture behaviors of
CrMoV/NiCrMoV dissimilar rotor welded joint at 280 & #xB0;C. Mater Sci Eng A 786:139473.
https://doi.org/10.1016/j.msea.2020.139473
6. Shang Y-B, Shi H-J, Wang Z-X, Zhang G-D (2015) In-situ SEM study of short fatigue crack
propagation behavior in a dissimilar metal welded joint of nuclear power plant. Mater Des
88:598–609. https://doi.org/10.1016/j.matdes.2015.08.090
7. Kuwabara K, Takahashi Y, Kawaguchi S et al (1992) Fatigue strength of dissimilar welded
joints for the main vessel of an LMFBR. Nucl Eng Des 133:335–344. https://doi.org/10.1016/
0029-5493(92)90160-w
8. Pijpers RJM, Romeijn FSK, Kolstein MH, Bijlaard A (2007) The fatigue strength of butt welds
made of S960 and S1100. In: 3rd international conference on steel and composite structures.
Steel and composite structures proceedings. Taylor & Francis, London
9. Costa J, Ferreira J, Abreu L (2010) Fatigue behaviour of butt welded joints in a high strength
steel. Proc Eng 2:697–705. https://doi.org/10.1016/j.proeng.2010.03.075
385
Fig. 11.17 Fracture surface 2 at 5000×
References
1. Enz J (2017) Laser beam welding of high-alloyed aluminum-zinc alloys. Dissertation
2. Makhlouf ASH, Aliofkhazraei M (2015) Materials failure analysis with case studies from the
aerospace and automotive industries. Elsevier Science & Technology, Erscheinungsort nicht
ermittelbar
3. Meneghetti G, Campagnolo A, Berto D et al (2019) Fatigue properties of austempered ductile
iron-to-steel dissimilar arc-welded joints. Procedia Struct Integr 24:190–203. https://doi.org/
10.1016/j.prostr.2020.02.016
4. Ahmad HW, Chaudry UM, Tariq MR et al (2020) Assessment of fatigue and electrochemical
corrosion characteristics of dissimilar materials weld between alloy 617 and 12 Cr steel. J
Manuf Processes 53:275–282. https://doi.org/10.1016/j.jmapro.2020.02.038
5. Wang W-K, Liu Y, Guo Y et al (2020) High cycle fatigue and fracture behaviors of
CrMoV/NiCrMoV dissimilar rotor welded joint at 280 & #xB0;C. Mater Sci Eng A 786:139473.
https://doi.org/10.1016/j.msea.2020.139473
6. Shang Y-B, Shi H-J, Wang Z-X, Zhang G-D (2015) In-situ SEM study of short fatigue crack
propagation behavior in a dissimilar metal welded joint of nuclear power plant. Mater Des
88:598–609. https://doi.org/10.1016/j.matdes.2015.08.090
7. Kuwabara K, Takahashi Y, Kawaguchi S et al (1992) Fatigue strength of dissimilar welded
joints for the main vessel of an LMFBR. Nucl Eng Des 133:335–344. https://doi.org/10.1016/
0029-5493(92)90160-w
8. Pijpers RJM, Romeijn FSK, Kolstein MH, Bijlaard A (2007) The fatigue strength of butt welds
made of S960 and S1100. In: 3rd international conference on steel and composite structures.
Steel and composite structures proceedings. Taylor & Francis, London
9. Costa J, Ferreira J, Abreu L (2010) Fatigue behaviour of butt welded joints in a high strength
steel. Proc Eng 2:697–705. https://doi.org/10.1016/j.proeng.2010.03.075
