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Cyclic long‐term testing of gas turbine burner materials in reducing environments at 700℃

机译:700℃还原环境下燃气轮机燃烧器材料的循环长期测试

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Gas turbines operating under fuel‐rich conditions may suffer from material degradation and metal dusting. To evaluate this cyclic exposures have been done at 700℃ during 5000 h in two synthetic environments having a carbon activity of 0.26 and above unity. It was found that the common stainless steel 304L is incapable of withstanding either of the environments, while the stainless steel 253MA performs well because a protective silica layer is formed. The ferritic alumina formers Kanthal APM and Kanthal APMT perform well, together with several commercial chromia forming Ni‐base alloys. As a general trend the material degradation is slower in the environment with the higher carbon activity, but pre‐oxidised samples of chromia forming alloys did experience sudden and rapid carburisation after scale failure. Also a TBC system failed earlier in this environment, because graphite formation at the top coat/bond coat interface caused spalling of the top coat. Further the MCrAlY bond coat cracked and caused carburisation of the underlying Ni‐based substrate. A silicon modified aluminide coating showed good degradation resistance, but stimulated excessive carbon deposition in the environment of high carbon activity.
机译:在富含燃料的条件下运行的燃气轮机可能会遭受材料降解和金属粉尘的困扰。为了评估这种循环暴露,已经在碳活度为0.26或更高的两个合成环境中于700℃下进行了5000小时的循环暴露。已经发现,普通的不锈钢304L不能承受任何一种环境,而不锈钢253MA则表现良好,因为形成了保护性二氧化硅层。铁素体氧化铝形成者Kanthal APM和Kanthal APMT以及几种商业氧化铬形成的Ni基合金表现良好。一般的趋势是,在具有较高碳活性的环境中,材料的降解速度较慢,但​​是氧化铬形成合金的预氧化样品在氧化皮破坏后确实会发生突然而快速的渗碳。在这种环境下,TBC系统也较早出现故障,因为在面漆/粘结层界面处形成的石墨会导致面漆剥落。此外,MCrAlY粘结层开裂并导致下面的镍基基底渗碳。硅改性的铝化物涂层显示出良好的抗降解性,但在高碳活性的环境中刺激了过多的碳沉积。

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