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Development of lean alloyed austenitic stainless steels with reduced tendency to hydrogen environment embrittlement

机译:降低氢环境脆化趋势的贫合金奥氏体不锈钢的开发

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摘要

Hydrogen gas is believed to play a more important role for energy supply in future instationary and mobile applications. In most cases, metallic materials are embrittled when hydrogen atoms are dissolved interstitially into their lattice. Concerning steels, in particular the ductility of ferritic grades is degraded in the presence of hydrogen. In contrast, austenitic steels usually show a lower tendency to hydrogen embrittlement. However, the so-called "metastable" austenitic steels are prone to hydrogen environmental embrittlement (HEE), too. Here, AISI 304 type austenitic steel was tensile tested in air at ambient pressure and in a 400 bar hydrogen gas atmosphere at room temperature. The screening of different alloys in the compositional range of the AISI 304 standard was performed with the ambition to optimize alloying for hydrogen applications. The results of the mechanical tests reveal the influence of the alloying elements Cr, Ni, Mn and Si on HEE. Besides nickel, a positive influence of silicon and chromium was found. Experimental results are supported by thermodynamie equilibrium calculations concerning austenite stability and stacking fault energy. All in all, the results of this work are useful for alloy design for hydrogen applications. A concept for a lean alloyed austenitic stainless steel is finally presented.
机译:氢气在未来的固定和移动应用中对于能源供应起着更为重要的作用。在大多数情况下,当氢原子间隙地溶解到其晶格中时,金属材料就会脆化。对于钢,特别是在氢存在下,铁素体钢的延展性降低。相反,奥氏体钢通常表现出较低的氢脆趋势。但是,所谓的“易变质”奥氏体钢也容易发生氢环境脆化(HEE)。在此,AISI 304型奥氏体钢在环境压力下的空气中和室温下在400 bar氢气气氛中进行了拉伸测试。对AISI 304标准成分范围内的不同合金进行了筛选,目的是优化用于氢气应用的合金。力学测试结果表明,合金元素Cr,Ni,Mn和Si对HEE的影响。除了镍,还发现了硅和铬的积极影响。实验结果得到有关奥氏体稳定性和堆垛层错能的热力学平衡计算的支持。总而言之,这项工作的结果对于氢气应用的合金设计很有用。最后提出了一种贫合金奥氏体不锈钢的概念。

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