scholarly journals Study on Fatigue Crack Propagation in Carbon Steels : Observation on Topography and Plastic Deformation of Fracture Surfaces

1973 ◽  
Vol 39 (328) ◽  
pp. 3531-3542 ◽  
Author(s):  
Shuji TAIRA ◽  
Keisuke TANAKA ◽  
Teruyoshi TANABE ◽  
Jae Gil RYU
Author(s):  
João Ferreira ◽  
José A. F. O. Correia ◽  
Grzegorz Lesiuk ◽  
Sergio Blasón González ◽  
Maria Cristina R. Gonzalez ◽  
...  

Pressure vessels and piping are commonly subjected to plastic deformation during manufacturing or installation. This pre-deformation history, usually called pre-strain, may have a significant influence on the resistance against fatigue crack growth of the material. Several studies have been performed to investigate the pre-strain effects on the pure mode I fatigue crack propagation, but less on mixed-mode (I+II) fatigue crack propagation conditions. The present study aims at investigating the effect of tensile plastic pre-strain on fatigue crack growth behavior (da/dN vs. ΔK) of the P355NL1 pressure vessel steel. For that purpose, fatigue crack propagation tests were conducted on specimens with two distinct degrees of pre-strain: 0% and 6%, under mixed mode (I+II) conditions using CTS specimens. Moreover, for comparison purposes, CT specimens were tested under pure mode I conditions for pre-strains of 0% and 3%. Contrary to the majority of previous studies, that applied plastic deformation directly on the machined specimen, in this work the pre-straining operation was carried out prior to the machining of the specimens with the objective to minimize residual stress effects and distortions. Results revealed that, for the P355NL1 steel, the tensile pre-strain increased fatigue crack initiation angle and reduced fatigue crack growth rates in the Paris region for mixed mode conditions. The pre-straining procedure had a clear impact on the Paris law constants, increasing the coefficient and decreasing the exponent. In the low ΔK region, results indicate that pre-strain causes a decrease in ΔKth.


2020 ◽  
Vol 222 (1-2) ◽  
pp. 111-122
Author(s):  
Shigeru Hamada ◽  
Kejin Zhang ◽  
Motomichi Koyama ◽  
Masaharu Ueda ◽  
Hiroshi Noguchi

2011 ◽  
Vol 399-401 ◽  
pp. 2169-2172
Author(s):  
Yu Xin Yao

Fractals and catastrophe analysis are applied to analyze photos of the law of crack of three sets of fatigue samples under different stress cycles. The results indicate that the law of crack has fractal characteristics. For undestroyed samples, the law of crack appears and develops, and the fractal dimension tends to be constant eventually. For destroyed samples, fractal dimension development is divided into four stages, that is, increasing gradually, increasing stably, decreasing stably and decreasing rapidly to the approximate value of one. When rupture occurs, the catastrophe point is the corresponding number of stress cycle.


Materials ◽  
2021 ◽  
Vol 14 (21) ◽  
pp. 6621
Author(s):  
Qingyan Zhu ◽  
Peng Zhang ◽  
Xingdong Peng ◽  
Ling Yan ◽  
Guanglong Li

The fatigue crack growth behavior and fracture toughness of EH36 thermo-mechanical control process (TMCP) steel were investigated by fatigue crack growth rate testing and fracture toughness testing at room temperature. Scanning electron microscopy was used to observe the fracture characteristics of fatigue crack propagation and fracture toughness. The results indicated that the microstructure of EH36 steel is composed of ferrite and pearlite with a small amount of texture. The Paris formula was obtained based on the experimental data, and the value of fracture toughness for EH36 steel was also calculated using the J-integral method. The observations conducted on fatigue fracture surfaces showed that there were a lot of striations, secondary cracks and tearing ridges in the fatigue crack propagation region. Additionally, there existed many dimples on the fracture surfaces of the fracture toughness specimens, which indicated that the crack was propagated through the mechanism of micro-void growth/coalescence. Based on the micromechanical model, the relationship between the micro-fracture surface morphology and the fracture toughness of EH36 steel was established.


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