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1.
拦截高超声速飞行器的三维有限时间制导律设计   总被引:1,自引:0,他引:1  
由于高超声速飞行器具有飞行速度快、机动能力强等特点,因此,传统的制导方式难以保证拦截弹拦截高超声速飞行器时的制导精度。为了减小弹目相对速度,降低对拦截弹的过载能力要求,按照前向制导方式,设计了有限时间收敛的三维前向滑模制导律。该制导律采用了连续的快速双幂次趋近律,不仅保证收敛速度快,同时削弱了传统制导律中存在的抖振现象。在此基础上为了处理系统扰动的上界未知的问题,又设计了自适应滑模制导律,该制导律既可以处理未知上界的外部扰动又可以保证第一种制导律所具有的良好特性。运用李雅普诺夫稳定性理论对所设计的滑模制导律进行了理论证明,最后,通过数值仿真验证了所设计制导律的有效性及优越性。  相似文献   

2.
针对挠性航天器姿态机动控制问题,设计了一种模糊滑模控制律。在原有的滑模控制基础上,用连续光滑的双曲正切函数代替了符号函数,并采用模糊控制对切换增益进行了改进,以抑制系统的抖振。考虑到挠性航天器初始阶段控制力矩过大的情况,引入了滞后因子,减小了控制力矩输出,避免了由此引起的挠性附件的振动问题。数值仿真结果表明:所设计的模糊滑模控制律不仅能够实现挠性航天器的姿态机动,而且有效抑制了挠性附件的抖振,具有更好的控制性能。  相似文献   

3.
为实现多枚导弹协同攻击机动目标,基于具有推力可控能力的导弹,提出了一种带落角约束的多导弹分布式协同制导律。将制导律的设计分离为视线方向和视线法向上两个部分:视线方向上基于多智能体协同控制理论和超螺旋控制算法,设计制导律控制导弹剩余时间在有限时间内趋于一致;视线法向上运用零化视线角速率思想和有限时间滑模控制理论,设计制导律控制导弹击中目标的同时满足落角约束。并针对两部分制导律中存在的目标机动信息,分别设计非齐次干扰观测器进行估计。仿真结果表明,提出的制导律能够有效完成协同攻击任务,脱靶量和落角误差分别控制在0.13 m和0.02°以内,并且有效抑制了抖振现象,有利于提高导弹自动驾驶仪的跟踪精度。  相似文献   

4.
本文讨论了载体姿态受控、位置不受控制的双臂空间机器人系统的控制问题.利用拉格朗日方法并结合系统动量守恒关系,建立了双臂空间机器人系统的非线性系统动力学模型.以此为基础,考虑到空间机器人系统结构的复杂性及其某些参数的变动性,根据具有较强鲁棒性的变结构控制理论,设计了双臂空间机器人载体姿态与两机械臂末端抓手惯性空间轨迹协调运动的滑模变结构控制方案.为了克服滑模变结构控制器抖振的缺点,附加设计了一个模糊控制器,以便根据系统的输出来动态调节滑模变结构控制器等速趋近率的系数,从而既确保了系统的快速响应而又消除了原有的抖振.系统数值仿真,证明了上述控制方案良好的控制效果.  相似文献   

5.
针对重复使用运载器(RLV)等类飞行器存在外界干扰和执行机构故障等情况,提出一种基于姿态跟踪容错控制方法。在正常的运行模式下,姿态跟踪控制采用连续四元数反馈控制器。当系统中出现故障时,飞行器姿态将偏离参考轨迹,此时触发控制系统中滑动模态反应,使系统具有鲁棒性。通过选取适当李雅普诺夫函数,证明了所提出的控制律在存在故障的情况下是渐近稳定的。针对由于传感器干扰滑模面非零而导致的增益渐增,以及控制器性能下降问题,设计了一种具有自适应参数的自适应滑模控制律,使增益能够收敛到合理上界。最后,选取重复使用运载器再入段为对象进行仿真验证。仿真结果表明,采用有自适应滑模参数的控制系统,四元数跟踪误差能够达到10~(-4)量级。  相似文献   

6.
为提高攻击导弹同时面对目标飞机及其防御导弹情况下的命中概率,基于微分对策理论,对攻击导弹的制导律进行了设计。应对独立控制的多对象博弈问题,微分对策理论具有天然的优势,且相比于最优制导律,微分对策制导律对于目标机动估计误差和机动策略具有更强的鲁棒性。所推导的微分对策制导律进一步考虑了攻击导弹的控制有界性,且适用于攻击导弹、目标飞机和防御导弹具有高阶线性控制系统动态的情形。为验证制导律性能,进行了非线性系统仿真,结果表明该制导律在成功归避防御导弹的同时可实现趋于零脱靶量的目标拦截。攻击导弹为实现规避和攻击的双重任务,仅需要保持相比于防御导弹两倍左右的机动优势。  相似文献   

7.
王玉玲  高超  王娜 《实验力学》2016,31(3):386-392
飞行器抖振是一种非线性气动弹性问题,当飞行器进入抖振阶段时,将会对飞行器的性能产生严重影响。而在跨声速条件下,激波附面层相互作用会诱导机翼抖振。本文开展了跨声速条件下翼型抖振特性雷诺数效应的实验研究,揭示了翼型跨声速抖振起始迎角、激波运动前缘边界、频谱特性、抖振频率与雷诺数变化的基本规律。结论如下:雷诺数变化会导致抖振起始边界的改变,对抖振起始迎角下的功率谱密度峰值有明显影响;随着雷诺数的增大,激波运动的前缘后移。雷诺数变化对抖振频率有明显影响,随着马赫数增大,雷诺数效应增强。  相似文献   

8.
董钢  王建国 《计算力学学报》2014,31(4):480-485,494
基于大系统分散控制思想,将大尺度高阶建筑结构系统分解为多个子结构系统;子结构之间的相互耦合作用视为有界广义力,得到以状态方程形式的子结构模型。利用滑模理论的抗摄动条件,设计具有全局稳定的子结构滑动模态轨迹,利用子结构系统局部状态实现全局稳定的控制力条件,并以参数ρi实现各子结构间的调节,建立稳定的分散控制格式。在控制算法中采用了准滑模控制方法,克服变结构滑动模态中的抖振影响。利用本文方法,对20层钢结构基准模型在地震激励下的控制进行设计并数值仿真,验证了该方法的有效性。  相似文献   

9.
具有攻击角约束的非奇异终端滑模导引律设计   总被引:2,自引:0,他引:2  
为了满足导弹拦截高速大机动目标时高精度制导的需求,首先对二维平面内的弹目相对运动方程进行状态扩张,对于影响制导性能的目标总扰动采用了扩张状态观测器的方法进行动态补偿。然后在非奇异终端滑模面的基础上选取了两种滑模趋近律,设计了两种具有攻击角约束的非奇异终端滑模导引律。最后数值仿真结果表明,在观测器对扩张系统状态进行实时有效估计的前提下,针对不同的期望视线角和目标机动方式,所设计的两种导引律在满足期望的性能要求的同时,可实现导弹对目标的高精度快速打击。  相似文献   

10.
针对传统滑模趋近律中的抖振现象、收敛速度慢等不足,提出一种新型变指数幂次趋近律。该趋近律通过使用变指数幂次项,实现了在系统趋近过程中根据不同阶段进行自适应调节的功能,大幅提高了系统的收敛速度,并具有全局有限时间收敛特性。当系统存在模型不确定型和外部有界扰动时,滑模变量可在有限时间内收敛到边界层宽度为1左右的稳态误差界内,且该稳态误差小于现有的双幂次趋近律、快速幂次趋近律和多幂次趋近律等方法的结果。仿真算例验证了所提出趋近律的有效性和优越性。  相似文献   

11.
This paper introduces a finite-time control technique for control of a class of non-autonomous fractional-order nonlinear systems in the presence of system uncertainties and external noises. It is known that finite-time control methods demonstrate better robustness and disturbance rejection properties. Moreover, finite time control methods have optimal settling time. In order to design a robust finite-time controller, a new nonsingular terminal sliding manifold is proposed. The proposed sliding mode dynamics has the property of fast convergence to zero. Afterwards, a novel fractional sliding mode control law is introduced to guarantee the occurrence of the sliding motion in finite time. The convergence times of both reaching and sliding phases are estimated. The main characteristics of the proposed fractional sliding mode technique are (1) finite-time convergence to the origin; (2) the use of only one control input; (3) robustness against system uncertainties and external noises; and (4) the ability of control of non-autonomous fractional-order systems. At the end of this paper, some computer simulations are included to highlight the applicability and efficacy of the proposed fractional control method.  相似文献   

12.
Kuz’menko  A. A. 《Nonlinear dynamics》2022,109(3):1763-1775

Synchronization of chaotic systems is considered to be a common engineering problem. However, the proposed laws of synchronization control do not always provide robustness toward the parametric perturbations. The purpose of this article is to show the use of synergy-cybernetic approach for the construction of robust law for Arneodo chaotic systems synchronization. As the main method of design of robust control, the method of design of control with forced sliding mode of the synergetic control theory is considered. To illustrate the effectiveness of the proposed law, in this article it is compared with the classical sliding mode control and adaptive backstepping. The distinctive features of suggested robust control law are the more good compensation of parametric perturbations (better performance indexes—the root-mean-square error (RMSE), average absolute value (AVG) of error) without designing perturbation observers, the ability to exclude the chattering effect, less energy consuming and a simpler analysis of the stability of a closed-loop system. The study of the proposed control law and the change of its parameters and the place of parametric perturbation’s application is carried out. It is possible to significantly reduce the synchronization error and RMSE, as well as AVG of error by reducing some parameters, but that leads to an increase in control signal amplitude. The place of application of parametric disturbances (slave or master system) has no effect on the RMSE and AVG of error. Offered approach will allow a new consideration for the design of robust control laws for chaotic systems, taking into account the ideas of directed self-organization and robust control. It can be used for synchronization other chaotic systems.

  相似文献   

13.
针对空间连续型机器人系统三臂节执行器并发故障的问题,提出一种自适应鲁棒容错控制算法.采用非奇异快速终端滑模控制器,并通过自适应RBF(Radial Basis Function)神经网络在线调整控制器的切换项增益,使控制器在模型参数摄动和外部干扰下依旧具有较高的跟踪精度和较强的鲁棒性.基于Lyapunov稳定性理论,证明了该控制器可以保证整个系统的渐进稳定性.仿真结果验证了本文算法的有效性.  相似文献   

14.
The control problem of coordinated motion of a free-floating space rigid manipulator with external disturbance is discussed. By combining linear momentum conversion and the Lagrangian approach, the full-control dynamic equation and the Jacobian relation of a free-floating space rigid manipulator are established and then inverted to the state equation for control design. Based on the terminal sliding mode control (SMC) technique, a mathematical expression of the terminal sliding surface is proposed. The terminal SMC scheme is then developed for coordinated motion between the base's attitude and the end-effector of the free-floating space manipulator with external disturbance. This proposed control scheme not only guarantees the existence of the sliding phase of the closed-loop system, but also ensures that the output tracking error converges to zero in finite time. In addition, because the initial system state is always at the terminal sliding surface, the control scheme can eliminate reaching phase of the SMC and guarantee global robustness and stability of the closed-loop system. A planar free-floating space rigid manipulator is simulated to verify the feasibility of the proposed control scheme.  相似文献   

15.
针对再入机动飞行器模型的参数不确定性以及外界干扰对飞行器控制性能的影响,基于反演控制和滑模控制理论,结合飞行器的动态特性要求,设计了一种基于标称模型的再入机动飞行器横向回路姿态控制方案,并基于Lyapunov方法,给出了整个系统的稳定性证明。控制系统阶跃响应仿真结果表明:系统响应无超调,调节时间为0.6 s,稳态误差为1%,优于指标要求的超调量15%,调节时间1 s,稳态误差5%,证明所提方法对模型参数大范围摄动具有强鲁棒性,且在较大程度上提高了系统的动态性能,最终达到姿态指令的快速高精度跟踪效果。  相似文献   

16.
This paper presents a novel implementation of an adaptive robust second-order sliding mode control (ARSSMC) on a mobile robot with four Mecanum wheels. Each wheel of the mobile robot is actuated by separate motors. It is the first time that higher-order sliding mode control method is implemented for the trajectory tracking control of Mecanum-wheeled mobile robot. Kinematic and dynamic modeling of the robot is done to derive an equation of motion in the presence of friction, external force disturbance, and uncertainties. In order to make the system robust, second-order sliding mode control law is derived. Further, adaptive laws are defined for adaptive estimation of switching gains. To check the tracking performance of the proposed controller, simulations are performed and comparisons of the obtained results are made with adaptive robust sliding mode control (ARSMC) and PID controller. In addition, a new and low-cost experimental approach is proposed to implement the proposed control law on a real robot. Experimental results prove that without compromising on the dynamics of the robot real-time implementation is possible in less computational time. The simulation and experimental results obtained confirms the superiority of ARSSMC over ARSMC and PID controller in terms of integral square error (ISE), integral absolute error (IAE), and integral time-weighted absolute error (ITAE), control energy and total variance (TV).  相似文献   

17.
针对较大幅度外部不确定扰动下的四旋翼姿态稳定问题,设计了一种基于浸入与不变原理(ⅠⅠ)的自适应反步滑模控制器(ABSMC)。首先建立了未知大扰动下四旋翼姿态系统动力学模型,然后以横滚角子系统搭建为例,设计并应用了反步法和基于趋进率的滑模控制策略。在扰动估计误差流型设计中,融合了ⅠⅠ原理,即自适应率的选取实现了误差流型的不变和吸引,确保估计误差收敛到0。最后,对系统进行了稳定性分析和数字仿真。结果表明,在较大未知扰动情况下,融合ⅠⅠ原理方法后,经10 s所测跟踪误差平方的累加和仅为传统ABSMC方法的11.2%,控制精度大幅提高。  相似文献   

18.
针对带不匹配不确定非线性干扰的惯性平台稳定回路跟踪控制问题,提出了基于backstepping的动态滑模控制方法。首先,建立了惯性平台稳定回路的等价模型,该模型由一个线性模型加上一个不确定的非线性函数组成。然后,基于backstepping方法设计了带渐近稳定滑模面的动态滑模控制器,解决了模型不匹配的问题,并提高了系统的鲁棒性。进而应用Lyapunov稳定性理论证明了所设计的控制器不仅能保证闭环系统的稳定性,而且可以通过选择适当的控制器参数来调整跟踪误差的收敛率。最后,仿真结果表明,基于backstepping的动态滑模控制方法与PID控制方法相比,提高了系统的跟踪精度,增强了鲁棒性。  相似文献   

19.
In this paper, a fractional calculus-based terminal sliding mode controller is introduced for finite-time control of non-autonomous non-linear dynamical systems in the canonical form. A fractional terminal switching manifold which is appropriate for canonical integer-order systems is firstly designed. Then some conditions are provided to avoid the inherent singularities of the conventional terminal sliding manifolds. A non-smooth Lyapunov function is adopted to prove the finite time stability and convergence of the sliding mode dynamics. Afterward, based on the sliding mode control theory, an equivalent control and a discontinuous control law are designed to guarantee the occurrence of the sliding motion in finite time. The proposed control scheme uses only one control input to stabilize the system. The proposed controller is also robust against system uncertainties and external disturbances. Two illustrative examples show the effectiveness and applicability of the proposed fractional finite-time control strategy. It is worth noting that the proposed sliding mode controller can be applied for control and stabilization of a large class of non-autonomous non-linear uncertain canonical systems.  相似文献   

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