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Monitoring the Damaging Effects of Aircraft Rare Events

机译:监测飞机稀有事件的破坏性影响

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There is a growing interest in developing affordable structural prognostic management systems that can track how each individual aircraft is used and at the same time quantify the damaging effects of usage events. Whilst recorded aircraft flight parameters can indicate the stresses induced by complex manoeuvres, they cannot monitor damaging effects of rare events such as buffeting, hard landing and severe turbulence. Buffeting is an aeroelastic phenomenon, which occurs, in some circumstances, under manoeuvring conditions that involve high angle of attack and can often consume the fatigue life of military fins. Flight parameters such as angle of attack, velocities and accelerations can only determine the likely situations during which buffeting may occur. Other external factors such as air turbulence, wind speed, wind direction and gusts can have an influence on the phenomenon and, hence, for the same set of measured flight parameters, buffeting may or may not take place depending on these external factors. Hard landings can also consume the fatigue life of undercarriage attachments. Smiths Aerospace has developed mathematical networks that combine mathematical models, artificial intelligence and engineering knowledge to synthesise stresses from flight parameters. Working with BAE SYSTEMS, a mathematical network was configured to monitor the damaging effects of rare events. The configuration of the mathematical network involved modal analysis and a simplified Eurofighter finite element model. The paper describes the artificial intelligence, model-based approach to rare event monitoring and reports its preliminary results.
机译:在开发实惠的结构预后管理系统中,可以追踪可以跟踪每个飞机的使用以及同时量化使用事件的破坏性影响。虽然录制的飞机飞行参数可以表明复杂的机动诱导的应力,但它们无法监测稀有事件(如罕见事件)等稀有事件,如缓冲,硬着陆和严重湍流。在某些情况下,施加易于发生涉及高攻角的机动条件,并且通常会消耗军事鳍的疲劳寿命,这是一种空气弹性现象。飞行参数如攻击角,速度和加速度,只能确定可能发生抖动的可能情况。其他外部因素,如空气湍流,风速,风向和阵风可以对该现象产生影响,因此对于相同的测量飞行参数,可以根据这些外部因素进行缓冲或可能无法进行。坚硬的着陆也可以消耗底盘附件的疲劳寿命。史密斯航空航天已经开发了数学网络,将数学模型,人工智能和工程知识与飞行参数合成综合应力。与BAE系统一起使用数学网络,被配置为监测罕见事件的破坏性效果。数学网络的配置涉及模态分析和简化的Eurofighter有限元模型。本文描述了人工智能,基于模型的罕见事件监测和报告其初步结果。

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