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Cu Addition To The NiAl Intermetallic For Evaluation As A Protective Coating Simulating Dew Point Environment Conditions

机译:Ni金属间化合物中的Cu附加物,可作为模拟露点环境条件的保护涂层进行评估

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The NiAl intermetallic was a promising engineering material since 20 years up to present days. Their principal overcoming for real applications is their inherent brittleness at room temperature despite their outstanding properties at high or elevated temperatures. Several attempts and investigations including alloying with third element, and processing (thermomechanical treatment, rapid solidification etc) has been done over the last 10 years for achieve ductility at room temperature. However this is not accomplished yet, even having promising results as Colin et al (1) reported macro-alloying the NiAl with Cu and Fe. Due to its poor ductility as a bulk material, some other applications have been realized such as protective coatings at high and room temperature owing to their exceptional corrosion properties. Nevertheless, the solely NiAl system has been proved as protective coating with no success due to rapid Al depletion in magnetron sputtering coatings in Nickel-alloys and Ni_3AI substrates. The objective of the present work is to evaluate the NiAI-Cu intermetallic system employing a thermal spray coating technique, to evaluate the addition of Cu to the NiAl intermetallic as a barrier of Al depletion during the partial meting and re-solidification processes intrinsic to the coating technique. Thus, verifying their effectiveness as a room temperature coating application in H_2SO_4 solution by means of electrochemical techniques, simulating "dew point" conditions that exist in fossil power plants during maintaining schedules. The substrate utilized was nickel alloy 600 that is commonly used in such applications.
机译:自20年来至今,NiAl金属间化合物一直是有前途的工程材料。尽管在高温或高温下仍具有出色的性能,但它们在实际应用中的主要克服是它们在室温下固有的脆性。在过去的十年中,已经进行了一些尝试和研究,包括与第三元素的合金化以及加工(热机械处理,快速凝固等),以实现室温下的延展性。但是,这还没有实现,甚至没有令人满意的结果,因为Colin等人(1)报道了将NiAl与Cu和Fe进行宏观合金化。由于其作为散装材料的延展性差,由于其优异的腐蚀性能,还实现了其他一些应用,例如高温和室温下的保护涂层。然而,由于镍合金和Ni_3AI基体中的磁控溅射涂层中的Al迅速耗尽,仅NiAl体系已被证明是保护性涂层,但没有成功。本工作的目的是评估采用热喷涂技术的NiAl-Cu金属间化合物体系,以评估在NiAl金属间化合物固有的部分熔合和再凝固过程中向AlAl金属间添加Cu作为Al耗竭的障碍。涂层技术。因此,通过电化学技术验证了其在H_2SO_4溶液中作为室温涂料在H_2SO_4溶液中的有效性,模拟了维护计划期间化石电厂中存在的“露点”条件。所使用的基底是通常用于此类应用中的镍合金600。

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