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蛇形机器人跟踪误差预测的自适应轨迹跟踪控制器 被引量:14
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作者 李东方 杨弘晟 +1 位作者 邓宏彬 黄捷 《仪器仪表学报》 EI CAS CSCD 北大核心 2021年第11期267-278,共12页
为了满足蛇形机器人轨迹跟踪运动的精度需要,消除外界干扰对机器人跟踪误差的影响,提出了一种蛇形机器人跟踪误差预测的自适应轨迹跟踪控制器。所提出的控制器实现了机器人干扰变量、摩擦系数和控制参数的预测,并用预测值和虚拟控制函... 为了满足蛇形机器人轨迹跟踪运动的精度需要,消除外界干扰对机器人跟踪误差的影响,提出了一种蛇形机器人跟踪误差预测的自适应轨迹跟踪控制器。所提出的控制器实现了机器人干扰变量、摩擦系数和控制参数的预测,并用预测值和虚拟控制函数来补偿系统的控制输入,抵消了蛇形机器人在轨迹跟踪过程中的侧滑角,避免了干扰变量对机器人带来的负面影响,提高了轨迹跟踪的误差稳定性与控制精度。在建立蛇形机器人模型后,利用积分形式的侧滑角补偿项改进了视线法,并设计了蛇形机器人的自适应轨迹跟踪控制器。使机器人的位置误差在10 s内实现收敛,角度误差小于0.03 rad,预测值误差在5 s内收敛。通过仿真实验,验证了所提出的控制器的有效性和优越性。 展开更多
关键词 蛇形机器人 轨迹跟踪控制器 误差预测 一致最终有界性 稳定性
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基于模型预测控制的双向移动平台轨迹跟踪控制方法
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作者 赛开阳 王明武 +2 位作者 梁应选 陈伟恒 李奥 《机电工程》 北大核心 2025年第4期746-753,共8页
针对高精度数控加工中多轴并联驱动系统的轨迹跟踪精度问题,提出了一种基于模型预测控制(MPC)的双向移动平台轨迹跟踪方法。首先,基于运动学分析研究的结果,建立了包含位置、速度和角速度等参数的状态空间方程;然后,综合考虑跟踪精度和... 针对高精度数控加工中多轴并联驱动系统的轨迹跟踪精度问题,提出了一种基于模型预测控制(MPC)的双向移动平台轨迹跟踪方法。首先,基于运动学分析研究的结果,建立了包含位置、速度和角速度等参数的状态空间方程;然后,综合考虑跟踪精度和控制增量,建立了速度与角速度的极限值和变化率约束条件,将目标函数转化为带约束的二次规划问题,并对其进行了求解;采用SolidWorks软件设计出了双向移动平台的模型,并将该模型导入到MATLAB/Simulink环境中,进行了仿真实验验证,分别比较了速度20 mm/s、30 mm/s工况下线性二次型调节器(LQR)和MPC算法的跟踪轨迹,以及数据误差;最后,给出了实验台硬件组成和原理框图,进一步地使用LabVIEW软件开发出了运动控制程序的人机界面,并在实验台上对两种算法进行了实际对比。研究结果表明:采用MPC控制器的轨迹跟踪精度明显优于LQR控制算法,最大跟踪误差不超过0.05 mm,能够满足双向移动平台的高精度控制要求。该方法有效提升了运动控制系统的跟踪精度,可为高性能数控加工中的复杂轨迹跟踪控制提供技术支持。 展开更多
关键词 高精度数控加工 并联驱动双向移动平台 模型预测控制 轨迹跟踪精度 轨迹跟踪控制器 MATLAB/SIMULINK 线性二次型调节器 LabVIEW
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四足机器人特定复杂运动技能控制 被引量:2
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作者 许鹏 赵建新 +4 位作者 范文慧 邱天奇 江磊 梁振杰 刘宇飞 《兵工学报》 EI CAS CSCD 北大核心 2023年第S02期135-145,共11页
为了提高四足机器人的运动多样性和地形适应性,提出一种复杂运动行为控制方法,通过构建四足机器人动力学模型,在此基础上进行离线滚动优化预测,生成四足机器人复杂行为的期望轨迹。在运动学、关节扭矩、接触力、运动状态和地形高度等非... 为了提高四足机器人的运动多样性和地形适应性,提出一种复杂运动行为控制方法,通过构建四足机器人动力学模型,在此基础上进行离线滚动优化预测,生成四足机器人复杂行为的期望轨迹。在运动学、关节扭矩、接触力、运动状态和地形高度等非线性约束下更全面地优化了轨迹,设计在线轨迹跟踪控制器与落足控制器,实现四足机器人复杂行为的在线控制。在多复杂运动的动态仿真环境下评估了所提方法,机器人可以实现前跳、后空翻、前空翻和旋转跳跃,并可以在给定地形信息下跳跃障碍物。将在线轨迹跟踪控制器迁移到四足机器人物理样机中,完成了四足机器人向前跳跃的实验。实验结果表明,所提出的方法能够使四足机器人有效地完成多种特定复杂运动技能的稳定控制。 展开更多
关键词 四足机器人 复杂行为 离线滚动优化预测 在线轨迹跟踪控制器
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减速板故障下的RLV末端区域能量管理算法设计 被引量:3
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作者 权申明 王松艳 +1 位作者 晁涛 杨明 《宇航学报》 EI CAS CSCD 北大核心 2020年第6期820-828,共9页
针对可重复使用运载器(RLV)在末端区域能量管理阶段可能存在减速板故障而无法精确控制速度大小,导致无法稳定到达着陆窗口的问题,提出一种考虑减速板故障下的在线RLV末端区域能量管理算法。首先给出减速板卡死故障下的飞行器运动模型,... 针对可重复使用运载器(RLV)在末端区域能量管理阶段可能存在减速板故障而无法精确控制速度大小,导致无法稳定到达着陆窗口的问题,提出一种考虑减速板故障下的在线RLV末端区域能量管理算法。首先给出减速板卡死故障下的飞行器运动模型,并分析其对飞行器运动产生的影响。然后,在能量走廊内设计纵向标称轨迹,结合飞行能力,设计有限时间轨迹跟踪控制器跟踪地面侧向几何轨迹。最后,分析动压剖面与飞行距离之间的关系,提出减速板卡死故障下的在线修正动压剖面算法,将传统的动压剖面四参数求解简化为单参数更新问题,避免动压剖面的迭代,简化计算流程。仿真结果表明,所设计的算法在减速板故障且存在气动不确定性时,能够顺利到达自主着陆窗口,具有鲁棒性。 展开更多
关键词 减速板故障 能量走廊 轨迹跟踪控制器 在线修正动压剖面
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Adaptive robust motion trajectory tracking control of pneumatic cylinders 被引量:4
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作者 孟德远 陶国良 朱笑丛 《Journal of Central South University》 SCIE EI CAS 2013年第12期3445-3460,共16页
High-accuracy motion trajectory tracking control of a pneumatic cylinder driven by a proportional directional control valve was considered. A mathematical model of the system was developed firstly. Due to the time-var... High-accuracy motion trajectory tracking control of a pneumatic cylinder driven by a proportional directional control valve was considered. A mathematical model of the system was developed firstly. Due to the time-varying friction force in the cylinder, unmodeled dynamics, and unknown disturbances, there exist large extent of parametric uncertainties and rather severe uncertain nonlinearities in the pneumatic system. To deal with these uncertainties effectively, an adaptive robust controller was constructed in this work. The proposed controller employs on-line recursive least squares estimation(RLSE) to reduce the extent of parametric uncertainties, and utilizes the sliding mode control method to attenuate the effects of parameter estimation errors, unmodeled dynamics and disturbances. Therefore, a prescribed motion tracking transient performance and final tracking accuracy can be guaranteed. Since the system model uncertainties are unmatched, the recursive backstepping design technology was applied. In order to solve the conflicts between the sliding mode control design and the adaptive control design, the projection mapping was used to condition the RLSE algorithm so that the parameter estimates are kept within a known bounded convex set. Extensive experimental results were presented to illustrate the excellent achievable performance of the proposed controller and performance robustness to the load variation and sudden disturbance. 展开更多
关键词 servo-pneumatic system tracking control sliding mode control adaptive control parameter estimation
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Dynamic modelling and PFL-based trajectory tracking control for underactuated cable-driven truss-like manipulator 被引量:3
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作者 DING Shu-chen PENG Li +2 位作者 QIAO Shang-ling LIU Rong-qiang JOSEPHAT Bundi 《Journal of Central South University》 SCIE EI CAS CSCD 2021年第10期3127-3146,共20页
In recent years,an innovative underactuated robot was developed,named as underactuated cable-driven trusslike manipulator(UCTM),to be suitable in aerospace applications.However,there has been strong consensus that the... In recent years,an innovative underactuated robot was developed,named as underactuated cable-driven trusslike manipulator(UCTM),to be suitable in aerospace applications.However,there has been strong consensus that the stabilization of planar underactuated manipulators without gravity is a great challenge since the system includes a second order nonholonomic constraint and most classical control methods are not suitable for this kind of system.Furthermore,the complexity of the truss-like structure results in tremendous difficulty of computational complicacy and high nonlinearity during dynamic modelling in addition to controller design.It is paramount to solve these difficulties for UCTM's future applications.To solve the above difficulties,this paper presents a dynamic modelling method for UCTM and a trajectory tracking control method based on partial feedback linearization(PFL)that fulfills the control goal of moving UCTM from its original position to a desired position by tracking a given trajectory of the joint angles.To achieve this,a model equivalent method is proposed to make UCTM equivalent with a three-link manipulator in the sense of dynamic behavior.Then the Lagrangian equation combined with complex vector method is proposed in the dynamic modelling process of UCTM,which simplifies the derivation procedure.Based on the established dynamic model,a coordinate transformation method is proposed to transform the control force matrix into the conventional form of an underactuated system,so that the control force can be separated from the unactuated term.The PFL method in combination with the LQR control method is then proposed to realize the targets that the joint angles can track given desired trajectory.Simulation experiments are conducted to verify the correctness and effectiveness of the proposed methods. 展开更多
关键词 underactuated robot trajectory tracking control partial feedback linearization non-linear control
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Model-based trajectory tracking control for an electrohydraulic lifting system with valve compensation strategy 被引量:3
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作者 周华 侯交义 +1 位作者 赵勇刚 陈英龙 《Journal of Central South University》 SCIE EI CAS 2012年第11期3110-3117,共8页
The natural frequency of the electrohydraulic system in mobile machinery is always very low,which brings difficulties to the controller design.To improve the tracking performance of the hydraulic system,mathematical m... The natural frequency of the electrohydraulic system in mobile machinery is always very low,which brings difficulties to the controller design.To improve the tracking performance of the hydraulic system,mathematical modeling of the electrohydraulic lifting system and the rubber hose was accomplished according to an electrohydraulic lifting test rig built in the laboratory.Then,valve compensation strategy,including spool opening compensation (SOC) and dead zone compensation (DZC),was designed based on the flow-pressure characteristic of a closed-centered proportional valve.Comparative experiments on point-to-point trajectory tracking between a proportional controller with the proposed compensations and a traditional PI controller were conducted.Experiment results show that the maximal absolute values of the tracking error are reduced from 0.039 m to 0.019 m for the slow point-to-point motion trajectory and from 0.085 m to 0.054 m for the fast point-to-point motion trajectory with the proposed compensations.Moreover,tracking error of the proposed controller was analyzed and corresponding suggestions to reduce the tracking error were put forward. 展开更多
关键词 electrohydraulic system trajectory tracking control valve compensation dead zone compensation mobile machinery
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Nonlinear trajectory tracking control of a new autonomous underwater vehicle in complex sea conditions 被引量:9
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作者 高富东 潘存云 +1 位作者 韩艳艳 张湘 《Journal of Central South University》 SCIE EI CAS 2012年第7期1859-1868,共10页
Autonomous underwater vehicles (AUVs) navigating in complex sea conditions usually require a strong control system to keep the fastness and stability. The nonlinear trajectory tracking control system of a new AUV in c... Autonomous underwater vehicles (AUVs) navigating in complex sea conditions usually require a strong control system to keep the fastness and stability. The nonlinear trajectory tracking control system of a new AUV in complex sea conditions was presented. According to the theory of submarines,the six-DOF kinematic and dynamic models were decomposed into two mutually non-coupled vertical and horizontal plane subsystems. Then,different sliding mode control algorithms were used to study the trajectory tracking control. Because the yaw angle and yaw angle rate rather than the displacement of the new AUV can be measured directly on the horizontal plane,the sliding mode control algorithm combining cross track error method and line of sight method was used to fulfill its high-precision trajectory tracking control in the complex sea conditions. As the vertical displacement of the new AUV can be measured,in order to achieve the tracking of time-varying depth signal,a stable sliding mode controller was designed based on the single-input multi-state system,which took into account the characteristic of the hydroplane and the amplitude and rate constraints of the hydroplane angle. Moreover,the application of dynamic boundary layer can improve the robustness and control accuracy of the system. The computational results show that the designed sliding mode control systems of the horizontal and vertical planes can ensure the trajectory tracking performance and accuracy of the new AUV in complex sea conditions. The impacts of currents and waves on the sliding mode controller of the new AUV were analyzed qualitatively and quantitatively by comparing the trajectory tracking performance of the new AUV in different sea conditions,which provides an effective theoretical guidance and technical support for the control system design of the new AUV in real complex environment. 展开更多
关键词 complex sea condition autonomous underwater vehicle (AUV) trajectory tracking sliding mode control
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