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Aircraft model for the automatic taxi directional control design

机译:用于自动滑行方向控制设计的飞机模型

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Purpose - This paper aims to present a concept of an automatic directional control system of remotely piloted aerial system (RPAS) during the taxiing phase. In particular, it shows the initial stages of the control laws synthesis-mathematical model and simulation of taxiing aircraft. Several reasons have emerged in recent years that make the automation of taxiing an important design challenge including decreased safety, performance and pilot workload.Design/methodology/approach - The adapted methodology follows the model-based design approach in which the control system and the aircraft are mathematically modelled to allow control laws synthesis. The computer simulations are carried out to analyse the model behaviour.Findings - Chosen methodology and modelling technique, especially tire-ground contact model, resulted in a taxiing aircraft model that can be used for directional control law synthesis. Aerodynamic forces and moments were identified in the wind tunnel tests for the full range of the slip angle. Simulations allowed to compute the critical speeds for different taxiway conditions in a 90 degrees turn.Practical implications - The results can be used for the taxi directional control law synthesis and simulation of the control system. The computed critical speeds can be treated as a safety limits.Originality/value - The taxi directional control system has not been introduced to the RPAS yet. Therefore, the model of taxiing aircraft including aerodynamic characteristics for the full range of the slip angle has a big value in the process of design and implementation of the future auto taxi systems. Moreover, computed speed safety limits can be used by designers and standards creators.
机译:目的-本文旨在介绍滑行阶段的遥控飞机系统(RPAS)自动方向控制系统的概念。特别是,它显示了控制律综合数学模型的初始阶段和滑行飞机的仿真。近年来出现了许多原因,使滑行自动化成为重要的设计挑战,包括降低安全性,性能和飞行员工作量。设计/方法/方法-适应性方法遵循基于模型的设计方法,其中控制系统和飞机在数学上建模以允许控制律综合。进行计算机仿真以分析模型行为。发现-选择的方法和建模技术,特别是轮胎-地面接触模型,产生了可用于方向控制律合成的滑行飞机模型。在风洞试验中确定了整个滑移角的空气动力和力矩。通过仿真可以计算出90度转弯时不同滑行条件下的临界速度。实际意义-该结果可用于滑行方向控制律的综合和控制系统的仿真。可以将计算出的临界速度视为安全极限。原始数据/值-滑行车方向控制系统尚未引入RPAS。因此,在未来滑行滑行系统的设计和实施过程中,具有滑移角全范围空气动力学特性的滑行飞行器模型具有重要的价值。此外,设计者和标准创建者可以使用计算出的速度安全极限。

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