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Effect of Sensitization on Corrosion Fatigue Crack Propagation of Type 304 Stainless Steel in 3.5 NaCl

机译:敏化对304不锈钢在3.5%NaCl中腐蚀疲劳裂纹扩展的影响

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The present study was carried out to investigate the effect of sensitization on the kinetics of environmentally assisted fatigue crack propagation (FCP) in type 304 stainless steel exposed to chloride aqueous solution at ambient temperature. Sensitization was performed at 650°C for 10 hours. Constant AK fatigue crack growth rates in annealed and sensitized compact-tension specimens have been measured as a function of the loading frequency (0.1-30 Hz) in 3.5%NaCl solution. The effect of closure shielding has been monitored to separate any extrinsic contribution to the crack kinetics. FCP results reveal accelerated FCP rates in both microstructures when tested in the corrosive environment as compared to air data. For both microstructures, da/dN increase monotonically as the applied frequency is decreased with higher cracking rates associated with the sensitized microstructure. The difference in FCP rates between the annealed and sensitized microstructures increases as the applied frequency is reduced. Fatigue fracture surfaces of the annealed specimen exhibit transgranular crack path over the whole range of frequency tested. The sensitized microstructure shows similar transgranular mode of cracking at high frequency. The low-frequency cracking path in the sensitized microstructure exhibits distinct features and apparently grows near high-angle grain boundaries.
机译:进行本研究以研究敏化作用对环境温度下暴露于氯化物水溶液的304型不锈钢的环境辅助疲劳裂纹扩展(FCP)动力学的影响。在650℃下进行敏化10小时。在3.5%NaCl溶液中,已测量退火和敏化压紧试样的恒定AK疲劳裂纹扩展速率与加载频率(0.1-30 Hz)的关系。已经监测了封闭屏蔽的作用,以分离任何外在因素对裂纹动力学的影响。 FCP结果表明,与空气数据相比,在腐蚀性环境中进行测试时,两个微结构中的FCP速率均得到了提高。对于这两个微观结构,随着施加频率的降低,da / dN单调增加,并且与敏化微观结构相关的裂纹率更高。随着施加频率的降低,退火和敏化的微结构之间的FCP速率差异会增加。退火试样的疲劳断裂表面在整个测试频率范围内均表现出跨晶裂纹路径。敏化的微观结构在高频下显示出类似的跨晶裂纹形式。敏化微结构中的低频裂纹路径表现出明显的特征,并且显然在高角度晶界附近生长。

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