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On the Stress Corrosion Cracking and Hydrogen Embrittlement Behavior of Austenitic Stainless Steels in Boiling Saturated Magnesium Chloride Solutions

机译:沸腾饱和氯化镁溶液中奥氏体不锈钢的应力腐蚀开裂和氢脆行为

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The stress corrosion cracking (SCC) and hydrogen embrittlement (HE) behaviors for types 304, 310, and 316 austenitic stainless steels were investigated in boiling saturated magnesium chloride solutions using a constant load method under different conditions including test temperature, applied stress, and sensitization. Both of type 304 and type 316 stainless steels showed quite similar behavior characteristics, whereas type 310 stainless steel showed a different behavior. The time to failure (tf) parameter was used among other parameters to characterize the materials behavior in the test solution and to develop a mathematical model for predicting the time to failure in the chloride solution. The combination of corrosion curve parameters and fracture surface micrographs gave some explanation for the cracking modes as well as an indication for the cracking mechanisms. On the basis of the results obtained, it was estimated that intergranular cracking was resulted from hydrogen embrittlement due to strain-induced formation of martensite along the grain boundaries, while transgranular cracking took place by propagating cracks nucleated at slip steps by dissolution.
机译:304、310和316型奥氏体不锈钢在沸腾的饱和氯化镁溶液中使用恒载荷法在不同条件下(包括测试温度,施加应力和敏化条件)研究了应力腐蚀开裂(SCC)和氢脆(HE)行为。 。 304型和316型不锈钢都表现出非常相似的行为特性,而310型不锈钢则表现出不同的行为特性。除其他参数外,还使用了失效时间(tf)参数来表征测试溶液中的材料性能,并开发出数学模型来预测氯化物溶液的失效时间。腐蚀曲线参数和断裂表面显微照片的结合为开裂方式提供了一些解释,并为开裂机理提供了指示。根据获得的结果,据估计,晶间开裂是由于应变诱导马氏体沿晶界形成而引起的氢脆而引起的氢脆化,而跨晶状开裂是通过在滑移步骤中通过溶解使成核的裂纹扩展而发生的。

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