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Lifing methods and safety criteria in aero gas turbines

机译:航空燃气轮机的起爆方法和安全标准

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摘要

Modern gas turbines engines concentrate high power into a relatively small machine, e.g. more than 50 MW in each engine suspended from the aircraft wing in a large civil transport application. The rotational speed of the shafts reaches as high as 13,000 rpm in large engines and even higher in smaller engines as used in helicopters. Hence there is both a concentration of thermal energy in the combustion process and kinetic energy in the rotating parts that presents issues for structural integrity. This paper describes the regulatory requirements that must be achieved to allow operation of engines in civil applications and at how these requirements are satisfied in practice. It concentrates on those parts whose failure can directly threaten the integrity of the airframe through the generation of hazardous effects. The main issues are associated with fatigue through cyclic operation of the engine and the ability of the engine to survive abnormal conditions in such a way that the aircraft can safely land and be brought to rest. Aero enginesCritical PartsSafe lifeNew lifing correlation
机译:现代燃气涡轮发动机将高功率集中到相对较小的机器中,例如在大型民用运输应用中,悬挂在飞机机翼上的每个发动机的功率均超过50兆瓦。在大型发动机中,轴的旋转速度高达13,000 rpm,而在直升机中使用的小型发动机则更高。因此,在燃烧过程中热能的集中和在旋转部件中的动能的集中都存在结构完整性的问题。本文介绍了民用发动机必须满足的法规要求,以及在实践中如何满足这些要求。它着重于那些可能通过产生危险影响而直接威胁机身完整性的零件。主要问题与发动机循环运行引起的疲劳以及发动机在异常条件下生存的能力有关,航空器可以安全着陆并使其静止。航空发动机关键零件安全寿命新生活相关

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