期刊文献+

旋翼飞行机器人的动力学建模与容错自适应控制

Dynamics Modeling and Fault-tolerant Adaptive Control of a Rotor Aerial Robot
在线阅读 下载PDF
导出
摘要 针对目前无人飞行器在受限环境执行作业时操控性和安全性不足的问题,设计了一种基于旋翼动力的碟式自主旋翼飞行机器人(rotor aerial robot,RAR),采用内置桨叶和冗余执行机构以增强飞行器的安全性和容错能力,采用内、外双旋翼系统和碟式机体构架以提高空气动力特性和操控性能.运用牛顿-欧拉方法建立了系统的6自由度(six-degrees-of-freedom,6-DOF)动力学模型,根据模型执行环节易受气动干扰或故障等因素影响而出现参数不稳定的问题,设计了容错自适应控制方法,在Matlab/SIMULINK环境下以飞行器的侧向通道控制为例进行了仿真实验,验证了旋翼飞行机器人具有良好的操控性和鲁棒性. The present unmanned aerial vehicle (UAV) is always lack of maneuverability and security when operated in the restricted environment. To solve such a problem, a rotor powered disk-type autonomous aircraft--rotor aerial robot (RAR) was designed, which adopts built-in blades and redundant actuators structure to enhance vehicle's safety and robustness, and adopts the inner and outer two rotor systems and disk-type airframe structure to improve the aerodynamic characteristics and maneuverability of the RAR. The six-degrees-of-freedom (6-DOF) dynamic model was built using the Newton-Euler method, and according to the problem that the actuators' parameters are unstable when affected by the aerodynamic disturbance or faults, a fault-tolerant adaptive control method was designed. Simulation of the RAR's lateral channel control was carried out in the Matlab/SIMULINK environment, which verifies that the RAR had good maneuverability and robustness.
出处 《北京工业大学学报》 CAS CSCD 北大核心 2013年第6期856-863,共8页 Journal of Beijing University of Technology
基金 国家自然科学基金资助项目(61075110) 北京市教委重点项目(KZ200810005002)
关键词 旋翼飞行机器人 受限环境 运动协调机制 6-DOF模型 容错自适应控制 rotor aerial robot (RAR) restricted environment movement coordination mechanism six-degrees-of-freedom (6-DOF) dynamic model fault-tolerant adaptive control
  • 相关文献

参考文献15

  • 1METTLER B, TISCHLER M B, KANADE T. System identification modeling of a small-scale unmanned rotorcrafl for flight control design [ J ]. Journal of the American Helicopter Society, 2002, 47 ( 1 ) : 50-63.
  • 2GAVRILETS V, METTLER B, FERON E. Human- inspired control logic for automated maneuvering of miniature helicopter[ J~. Journal of Guidance Control and Dynamics, 2004, 27 (5) : 752-759.
  • 3BERMES C, BOUABDALLAH S, SCHAFROTH D, et al. Design of the autonomous micro helicopter nluFly [ J 1. Mechatronics, 2011-, 21(5): 765-775.
  • 4BOHORQUEZ F, SAMUEL P, SIROHI J, et al. Design, analysis and hover performance of a rotary wing micro air vehicle[ J ]. Journal of the American Helicopter Society, 2003, 48 (2) : 80-90.
  • 5BASDEN A, BROWN A J. ISTAR-A tool for creative design of knowledge bases[J]. Expert Systems, 1996, 13 (4) : 259-276.
  • 6PFLIMLIN J M, SOUERES P, HAMEL T, et al. Positioncontrol of a ducted fan VTOL UAV in crosswind [ J ]. International Journal of Control, 2007, 80 (5) : 666-683.
  • 7PFLIMLIN J M, BINETTI P, SOUERES P, et al. Modeling and attitude control analysis of a ducted-fan micro aerial vehicle[ J]. Control Engineering Practice, 2010, 18 (3) : 209-218.
  • 8JOHNSON E N, TURBE M A. Modeling, control, and flight testing of a small ducted-fan aircraft [ J ]. Journal of Guidance Control and Dynamics, 2006, 29 (4) : 769-779.
  • 9王适存.直升机空气动力学[M].南京:航空专业教材编审组,1985.
  • 10LEISHMAN J G. Pricipals of helicopter aerodynamics [ M ]. Cambridge : Cambridge University Presss, 2000.

共引文献5

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部