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Landing Gear Free-Fall Simulation and Kinetic Energy Optimization

机译:着陆齿轮自由落体仿真和动能优化

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The free-fall operation comprises a redundant, dissimilar and independent mechanically operated method of extending airplane landing gear due to a main hydraulic system failure or an electrical system malfunction. However, the emergency extension operation system design is not unique and spring-assisted, auxiliary hydraulics-assisted or even pneumatics-assisted landing gear free-fall design can be found in different airplanes. This paper aims at describing the model simulation and the optimization of certain parameters related to the associated hydraulic system, for emergency operation condition, in a non-assisted system configuration comprising simple extension by gravity. Since the free-fall modeling involves different subjects like landing gear extension dynamics, hydraulic actuator kinematics, fluid mechanics and even aerodynamic drag, which illustrates the complexity behind its simulation and optimization, a deep literature review was accomplished in order to support all the formulation necessary to make the modeling feasible. For this purpose, a parametric model was created in MATLAB Simulink, which, by means of an iterative process, allowed the determination of specific parameters values that optimized the damping for that operation. Parameters like restrictor orifices and hydraulic actuator piston areas were evaluated for a chosen landing gear configuration and system performance optimized through the assistance of MATLAB optimization tools. Finally, the purpose of the optimum damping comprised the attenuation of the impact effects suffered by aircraft structure when landing gear falls by gravity in an emergency operation, as well as the assurance of sufficient energy for landing gear locking at the end of its downward movement.
机译:自由落体操作包括由于主液压系统故障或电气系统故障而延伸飞机着陆齿轮的冗余,不相似和独立的机械操作方法。然而,紧急延长操作系统设计不是独特的,弹簧辅助,辅助液压辅助甚至气动辅助着陆齿轮自由落体设计可以在不同的飞机中找到。本文旨在描述模型仿真和与相关液压系统相关的某些参数的优化,用于紧急操作条件,包括通过重力的简单延伸。由于自由坠落模型涉及着陆齿轮延伸动力学,液压执行器运动学,流体力学甚至空气动力学阻力等不同的受试者,这阐述了其模拟和优化背后的复杂性,实现了深入的文献回顾,以支持所需的所有配方使建模可行。为此目的,在Matlab Simulink中创建参数模型,借助于迭代过程,允许确定优化该操作的阻尼的特定参数值。通过MATLAB优化工具的帮助,评估了限流器孔和液压执行器活塞区域的参数,用于选择的起落架配置和系统性能。最后,最佳阻尼的目的包括当着陆齿轮在紧急操作中的重力下降时由飞机结构遭受的抗冲击效应的衰减,以及在其向下运动结束时为着陆齿轮锁定的充分能量保证。

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