INVESTIGADORES
ALVAREZ Iris
congresos y reuniones científicas
Título:
Short crack growth during low cycle fatigue in Duplex Stainless Steel
Autor/es:
M BALBI; S HEREÑU; MC MARINELLI; H KNOBBE; U KRUPP; I ALVAREZ
Lugar:
Trodheim
Reunión:
Simposio; International Symposium on Fatigue Design & Material Defects; 2011
Institución organizadora:
Department of Engineering Design and Materials, NTNU, Trondheim, and the Swedish Fatigue Network, UTMIS
Resumen:
Damage evolution during low- and high-cycle fatigue in an embrittled duplex stainless steel is characterized in this paper. Moreover, scanning electron microscopy observations (SEM) in combination with electron backscattered diffraction (EBSD) measurements and transmission electron microscopy (TEM) were employed in order to analyze microcracks formation and propagation. During low-cycle fatigue, microcracks initiate the ferrite phase either along slip planes with the highest Schmid factor (SF) inside the grains or at the alpha/alpha grain boundary. Then, microcracks propagation take place in ferrite or austenite grains with the highest SF. An analysis of the dislocation structure in the near-surface and in ferritic grains in the bulk of the specimen has shown that dislocation microbands are associated with microcrack initiation. In the high-cycle fatigue regime, damage generally initiates in the austenite by slip band formation followed by crack initiation either at an alpha/alpha boundary or at an alpha/gamma boundary in the intersection of slip bands in the austenite. The microstructure in the austenite consists of a low density of dislocation pile-ups while the ferrite is practically inactive or develops only micro-yielding at boundaries. Despite the differences in both fatigue regimes, phase boundaries are an effective barrier against crack propagation because they delay the advance of the crack tip