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Improvement of the oxidation behaviour of electron beam remelted MCrAlY coatings

机译:电子束重熔MCrAlY涂层的氧化行为的改善

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The efficiency of gas turbine engines can be significantly improved by increasing their operating temperatures. The engine components, especially the hot-end components, should maintain their mechanical integrity at high-temperatures. The complex environment (thermal, chemical and mechanical) of the gas turbine engine makes it extremely difficult for one material to meet all the different requirements imposed on the various engine components.Coatings are thus required to provide increased corrosion protection at high temperatures in order to assure durability and field performance of the base alloys. Problems include: substrate compatibility, interdiffusion, adhesion, porosity of the coating, possibilities of repairing or recoating, effect of thermal cycling, wear and corrosion resistance and costs.Ni-base turbine blades are generally corrosion protected by an NlCrAlY overlay and a ceramic thermal barrier top-layer, both thermally sprayed. A new technique used for these coatings is high-velocity oxygen-fuel (HVOF) spraying.A subsequent remelting of the HVOF-coatings by electron beam (EB) irradiation has proven to minimize the oxide content and the porosity of the thermally sprayed MCrAlY coatings. The surface was remelted up to a depth of approximately 30 pm. The high cooling rates produce modifications in the morphology and the phase composition of the MCrAlY coating.In this paper the influences of EB-remelting process on the characteristics of the thermally grown oxide (TGO) scale formed during oxidation in air at 950° C in the MCrAlY coating will be discussed. © 2005 Elsevier SAS. All rights reserved.
机译:燃气涡轮发动机的效率可以通过提高其工作温度来显着提高。发动机部件,特别是热端部件,应在高温下保持其机械完整性。燃气涡轮发动机的复杂环境(热,化学和机械环境)使一种材料很难满足对各种发动机组件施加的所有不同要求,因此需要使用涂层来提高高温下的腐蚀防护能力,以便确保基础合金的耐用性和现场性能。问题包括:基材相容性,相互扩散,附着力,涂层的孔隙率,修复或重涂的可能性,热循环的影响,耐磨性和耐腐蚀性以及成本。镍基涡轮叶片通常受到NlCrAlY覆盖层和陶瓷热保护的腐蚀保护。阻隔顶层,均热喷涂。用于这些涂层的一种新技术是高速氧气-燃料(HVOF)喷涂。随后通过电子束(EB)辐射对HVOF涂层进行重熔已被证明可将热喷涂MCrAlY涂层的氧化物含量和孔隙率降至最低。将表面重熔至大约30 pm的深度。较高的冷却速度会改变MCrAlY涂层的形貌和相组成。本文研究了EB重熔工艺对950℃空气中氧化过程中形成的热生长氧化物(TGO)氧化皮特性的影响。将讨论MCrAlY涂层中的C。 &复制; 2005 Elsevier SAS。版权所有。

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