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Development of an Effective System Identification and Control Capability for Quad-copter UAVs.

机译:为四旋翼无人机开发有效的系统识别和控制能力。

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摘要

In recent years, with the promise of extensive commercial applications, the popularity of Unmanned Aerial Vehicles (UAVs) has dramatically increased as witnessed by publications and mushrooming research and educational programs. Over the years, multi-copter aircraft have been chosen as a viable configuration for small-scale VTOL UAVs in the form of quad-copters, hexa-copters and octo-copters. Compared to the single main rotor configuration such as the conventional helicopter, multi-copter airframes require a simpler feedback control system and fewer mechanical parts. These characteristics make these UAV platforms, such as quad-copter which is the main emphasis in this dissertation, a rugged and competitive candidate for many applications in both military and civil areas.;Because of its configuration and relative size, the small-scale quad-copter UAV system is inherently very unstable. In order to develop an effective control system through simulation techniques, obtaining an accurate dynamic model of a given quad-copter is imperative. Moreover, given the anticipated stringent safety requirements, fault tolerance will be a crucial component of UAV certification. Accurate dynamic modeling and control of this class of UAV is an enabling technology and is imperative for future commercial applications.;In this work, the dynamic model of a quad-copter system in hover flight was identified using frequency-domain system identification techniques. A new and unique experimental system, data acquisition and processing procedure was developed catering specifically to the class of electric powered multi-copter UAV systems. The Comprehensive Identification from FrEquency Responses (CIFER RTM) software package, developed by US Army Aviation Development Directorate -- AFDD, was utilized along with flight tests to develop dynamic models of the quad-copter system. A new set of flight tests were conducted and the predictive capability of the dynamic models were successfully validated. A PID controller and two fuzzy logic controllers were developed based on the validated dynamic models. The controller performances were evaluated and compared in both simulation environment and flight testing. Flight controllers were optimized to comply with US Aeronautical Design Standard Performance Specification Handling Quality Requirements for Military Rotorcraft (ADS-33E-PRF). Results showed a substantial improvement for developed controllers when compared to the nominal controllers based on hand tuning.;The scope of this research involves experimental system hardware and software development, flight instrumentation, flight testing, dynamics modeling, system identification, dynamic model validation, control system modeling using PID and fuzzy logic, analysis of handling qualities, flight control optimization and validation. Both closed-loop and open-loop dynamics of the quad-copter system were analyzed. A cost-effective and high quality system identification procedure was applied and results proved in simulations as well as in flight tests.
机译:近年来,在广泛的商业应用前景中,无人驾驶飞机(UAV)的普及已大大增加,出版物和如雨后春笋般的研究和教育计划见证了这一点。多年来,多直升机飞机已被选择为四轴飞行器,六轴飞行器和八轴飞行器形式的小型VTOL无人机的可行配置。与传统直升机等单一主旋翼配置相比,多直升机机身需要更简单的反馈控制系统和更少的机械零件。这些特性使这些无人机平台(例如四旋翼飞机)成为本论文的重点,成为了在军事和民用领域许多应用中坚固耐用且具有竞争力的候选人;由于其配置和相对尺寸,小型四驱直升机无人机系统本质上非常不稳定。为了通过仿真技术开发有效的控制系统,获得给定四轴飞行器的精确动力学模型势在必行。此外,考虑到预期的严格安全要求,容错能力将是无人机认证的关键组成部分。此类无人机的精确动态建模和控制是一项使能技术,对于将来的商业应用来说是必不可少的。在这项工作中,使用频域系统识别技术来识别四旋翼系统在悬停飞行中的动力学模型。开发了一种新颖独特的实验系统,数据采集和处理程序,专门针对电动多直升机无人机系统类别。由美国陆军航空发展局(AFDD)开发的频率响应综合识别(CIFER RTM)软件包与飞行测试一起用于开发四轴飞行器系统的动态模型。进行了一组新的飞行测试,并成功验证了动态模型的预测能力。基于验证的动态模型,开发了一个PID控制器和两个模糊逻辑控制器。在模拟环境和飞行测试中都评估并比较了控制器的性能。飞行控制器经过优化,符合美国航空设计标准性能规范对军用旋翼飞机的处理质量要求(ADS-33E-PRF)。结果表明,与基于手动调整的标称控制器相比,已开发的控制器有了实质性的改进。;研究范围包括实验系统的硬件和软件开发,飞行仪表,飞行测试,动力学建模,系统识别,动态模型验证,控制使用PID和模糊逻辑进行系统建模,处理质量分析,飞行控制优化和验证。分析了四轴系统的闭环和开环动力学。应用了具有成本效益的高质量系统识别程序,并在模拟和飞行测试中证明了结果。

著录项

  • 作者

    Wei, Wei.;

  • 作者单位

    University of Cincinnati.;

  • 授予单位 University of Cincinnati.;
  • 学科 Aerospace engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:27

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