Моделювання процесу парашутування літака на злітно-посадкову смугу при його посадці

Liudmyla Kapitanova, Viktor Riabkov, Danylo Kirnoson
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Abstract

The landing of an aircraft is an unknown part of its flight, and at this stage, the highest number of accidents and even disasters are observed. It should be noted that the movement of the aircraft in its airspace, when it is under the influence of aerodynamic forces, gravity, and engine thrust, is quite accurately modeled by various authors and presented in printed sources. The peculiarities of the aircraft’s movement during air-to-ground landing, i.e., at the moment of parachuting directly onto the runway, are insufficiently studied. The influence of parachuting conditions on post-landing stability has barely been studied. The subject of study in this article is the modeling of the parachuting process under conditions of aircraft landing. The goal of this study is to develop and test mathematical and simulation models of the aircraft’s movement during its parachuting from the alignment zone to the runway and to ensure the stability of longitudinal movement at the moment of the first landing impact and subsequent movement. Tasks: analyze the characteristics of the landing distances of transport category aircraft; establish the features of the parasailing stage of the aircraft during landing; develop a parametric model of the aircraft in its parachute configuration; establish conditions for modeling shock-absorbing landing gear; and, based on general and simulation models, establish zones of longitudinal movement stability of the aircraft after the first landing. Based on the results of experimental studies, the proposed mathematical model of the aircraft in landing configuration and the simulation model of participation in the landing of shock-absorbing landing gear systems quite reliably (compared to experimental data) estimate the aircraft’s movement at the moment of its touchdown and subsequent roll. This means that mathematical modeling can avoid repeated bounces during landing, ensure stability of longitudinal aircraft movement, reduce the length of the unbraked roll, and decrease the required runway length during aircraft landing. Conclusions: By analyzing normalized landings, the six most characteristic stages in the landing distance of transport category aircraft have been identified. A method of mathematical modeling of aircraft movement during parachuting onto the runway, considering not only the glider’s characteristics but also the features of the landing gear shock-absorbing systems, allows evaluating the parameters of parachuting that ensure stability of longitudinal aircraft movement after the first impact on the landing gear. Using the example of the An-140 aircraft, it is demonstrated how the values of brake wheel stability parameters are ensured and how the parachuting speed affects the length of its landing distance.
模拟飞机着陆时在跑道上跳伞的过程
飞机着陆是飞行过程中不为人知的一部分,在这一阶段发生的事故甚至灾难也最多。应该指出的是,飞机在空气动力、重力和发动机推力的影响下,在其空域内的运动已被不同作者准确地模拟出来,并在印刷资料中进行了介绍。但对飞机在空对地着陆时,即直接跳伞降落到跑道上时的运动特性研究不足。跳伞条件对着陆后稳定性的影响也几乎没有研究。本文的研究主题是飞机着陆条件下的跳伞过程建模。本研究的目标是开发和测试飞机从对齐区跳伞到跑道过程中的运动数学模型和仿真模型,确保飞机在第一次着陆冲击瞬间的纵向运动和后续运动的稳定性。任务:分析运输类飞机着陆距离的特点;确定飞机着陆时伞降阶段的特征;开发飞机伞降构型的参数模型;确定减震起落架建模的条件;根据一般模型和仿真模型,确定飞机首次着陆后的纵向运动稳定区域。根据实验研究的结果,所提出的飞机着陆构型数学模型和减震起落架系统参与着陆的仿真模型(与实验数据相比)非常可靠地估计了飞机在着陆和随后翻滚瞬间的运动情况。这意味着数学建模可以避免着陆时的反复弹跳,确保飞机纵向运动的稳定性,减少非制动翻滚的长度,并减少飞机着陆时所需的跑道长度。结论:通过分析归一化着陆,确定了运输类飞机着陆距离中最具特征的六个阶段。通过对飞机降落到跑道上时的运动进行数学建模的方法,不仅考虑了滑翔机的特性,还考虑了起落架减震系统的特点,可以评估确保飞机在起落架受到第一次撞击后纵向运动稳定性的跳伞参数。以安-140 飞机为例,演示了如何确保制动轮稳定性参数值,以及跳伞速度如何影响着陆距离的长度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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