Wang Anqi, Liu Zhicheng, Cui Ruoyao, Wu Yangyang, Zhang Di, Wang Xiaogang
Key Laboratory of Advanced Design and Simulation Techniques for Special Equipment, Ministry of Education, College of Mechanical and Vehicle Engineering, Hunan University, Changsha 410082, China.
Hunan Aviation Powerplant Research Institute, Aero Engine Corporation of China, Zhuzhou 412002, China.
Materials (Basel). 2024 May 15;17(10):2351. doi: 10.3390/ma17102351.
Aero-engines can be exposed to One Engine Inoperative (OEI) conditions during service, and the resulting overheating effect may significantly impact their structural integrity and flight safety. This paper focuses on the influence of overheating on the microstructural evolution and tensile properties of the GH4720Li alloy, a nickel-based polycrystalline superalloy commonly used in turbine disks. Based on the typical OEI operating conditions of a real aero-engine, a series of non-isothermal high-temperature tensile tests involving an OEI stage of 800 °C were conducted. The effects of OEI-induced overheating on the microstructure and tensile properties of the GH4720Li alloy were investigated. The results showed that, after OEI treatment, the primary γ' phase in this alloy was partially dissolved. The GH4720Li superalloy also exhibited numerous microcracks at the grain boundaries, resulting in complex effects on its tensile properties. The alloy's yield strength and ultimate tensile strength were slightly decreased, whereas its ductility decreased considerably. The OEI-induced embrittlement phenomenon was mainly caused by the non-uniform distribution of the tertiary γ' phase within grains. The formation of microcracks nucleated at the interfaces between the primary γ' precipitates and γ matrix phase was another key factor.
航空发动机在服役期间可能会遇到单台发动机不工作(OEI)的情况,由此产生的过热效应可能会对其结构完整性和飞行安全产生重大影响。本文重点研究过热对GH4720Li合金微观结构演变和拉伸性能的影响,该合金是一种常用于涡轮盘的镍基多晶高温合金。基于实际航空发动机典型的OEI运行条件,进行了一系列非等温高温拉伸试验,其中包括一个800℃的OEI阶段。研究了OEI引起的过热对GH4720Li合金微观结构和拉伸性能的影响。结果表明,经过OEI处理后,该合金中的初生γ'相部分溶解。GH4720Li高温合金在晶界处还出现了大量微裂纹,对其拉伸性能产生了复杂影响。该合金的屈服强度和抗拉强度略有下降,而其延展性则大幅下降。OEI引起的脆化现象主要是由晶粒内第三相γ'的不均匀分布造成的。在初生γ'析出相和γ基体相之间的界面处形核的微裂纹的形成是另一个关键因素。