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1.
针对可能呈现混沌性态的连续动力学,提出了一种参数开闭环控制方案。以控制Lorenz混沌为例说明该方案的应用。讨论了参数开闭环控制与输送控制、参数输送控制及开闭环控制之间的关系。  相似文献   

2.
庞兆君  金栋平 《力学学报》2015,47(3):503-512
利用地面物理仿真平台研究了绳系航天器的混沌动力学行为. 首先, 根据天地动力学相似原理, 通过对卫星仿真器施加喷气力和动量轮力矩来模拟空间动力学环境, 提出了两种等效方案, 给出了它们各自适用的实验工况. 数值结果表明, 在轨绳系航天器在一定的参数条件下系绳摆动为周期或概周期运动、航天器姿态发生混沌运动. 物理仿真验证了等效方案的有效性, 揭示了绳系航天器的混沌运动特征, 表明在阻尼力矩的作用下可以避免绳系航天器混沌运动的发生.   相似文献   

3.
陈立群  刘延柱 《力学季刊》2001,22(3):295-299
本文研究一类磁性航天器的混沌姿态运动及其控制,建立了在近地球赤道面圆轨道上运动受万有引力矩、磁力矩作用磁性刚体航天器姿态运动的动力学方程。采用时间历程、Poincare截面、Lyapunov指数和功率谱对系统的动力学行为进行数值识别,结果表明随着磁场参数的增大系统动力学行为由准周期环面破裂而出现混沌。利用输入-输出反馈精确线性化的方法将航天器的混沌姿态控制运动控制为姿态静止和按给定的周期规律运动,数值结果表明该控制方法的有效性。  相似文献   

4.
航天器姿态动力学中的稳定性、分岔和混沌   总被引:9,自引:1,他引:8  
刘延柱  陈立群 《力学进展》2000,30(3):351-357
讨论航天器姿态动力学中的若干非线性问题.总结了多刚体、柔性体和充液体航天器姿态 稳定性的研究成果.综述了航天器姿态运动的分岔和混沌的研究进展.展望了该领域的发展趋势.  相似文献   

5.
基于Rodrigues参数的陀螺体受控运动   总被引:1,自引:0,他引:1  
经典刚体动力学中表示刚体姿态的参数中,Euler角、Cardan角和Euler参数在工程技术中使用最为普遍.近期在航天器姿态控制问题中使用Rodrigues参数的报道也引起注意,Rodrigues参数以其表达形式简明和代数运算特点而具有独特优点.航天器姿态控制系统必须具有自适应性以适应参数的变化,建立用Rodrigues参数表达的无力矩陀螺体受控运动方程,提出基于Rodrigues参数的自适应姿态控制方案,并应用Lyapunov定理证明受控运动的渐近稳定性。  相似文献   

6.
混沌映射的开闭环控制   总被引:1,自引:0,他引:1  
对于混沌映射提出了开闭环控制律,分别分析了logistic映射和Henon映射的输送特性。给出数值算例说明该方法的用。  相似文献   

7.
有界噪声激励下单摆-谐振子系统的混沌运动   总被引:1,自引:0,他引:1  
研究了具有同宿轨道和周期轨道的可积单摆-谐振子系统在弱Hamilton摄动(即弱耦合摄动)和弱非Hamilton摄动(即阻尼和有界噪声微扰)下的混沌运动.用Melnikov方程预测Hamilton系统中可能存在混沌运动的参数域,并用Poincare截面验证解析结果.用数值方法计算了有阻尼与有界噪声激励下系统的最大Lyapun0V指数和Poincare截面,结果表明有界噪声在频率上的扩散减小了引发系统产生混沌运动的效应。  相似文献   

8.
控制混沌振动的逆系统方法   总被引:2,自引:1,他引:1  
本文研究了控制混沌振动的逆系统控制。建立了单自由度混沌振动的逆系统控制。以一个呈现混沌姿态运动的航天器动力学模型为例说明了该控制律的应用。最后将该控制律多自由度非线性动系统。  相似文献   

9.
谐激励作用下输流曲管的混沌振动研究   总被引:4,自引:0,他引:4  
研究了谐激励作用下输流曲管在系统参数区域内的混沌振动.基于牛顿法导出了输流曲管模型的非线性控制方程,并利用微分求积法对此方程在空间域进行离散,导出了输流曲管的非线性动力学方程组.在此基础上,对输流管道的动力响应进行了数值模拟.采用分岔、相平面、时间历程和庞加莱映射图等手段分析发现,在流速和激励频率的参数区域内,系统将可能发生包括混沌振动在内的多种运动形式.系统可经由倍周期分岔或概周期运动通向混沌.分析结果为工程输流管道模型的合理设计提供了参考.  相似文献   

10.
柔性全充液航天器大角度姿态机动混沌动力学   总被引:2,自引:1,他引:1  
岳宝增 《力学学报》2008,40(3):388-393
研究了受液体燃料黏性阻尼及柔性附件扭振影响的全充液航天器由最小惯量轴向最大惯量作大角度姿态机动过程中的混沌姿态动力学, 尤其是液体燃料和柔性附件振动的耦合效应对航天器姿态动力学的影响. 推导了耦合系统的动力学方程并利用尺度化方法将其转化为扰动系统的标准形式以便应用Melnikov方法对系统进行混沌姿态预测.推导了以系统参数形式表达的混沌姿态预测的解析准则. 将利用数值方法所得到的对系统的数值仿真结果与Melnikov解析准则进行了比较和评述. 研究了诸如航天器构型、液体燃料惯量及阻尼、柔性附件固有频率等系统特征量对混沌姿态的影响.   相似文献   

11.
We study the pitch motion dynamics of an asymmetric spacecraft in circular orbit under the influence of a gravity gradient torque. The spacecraft is perturbed by a small aerodynamic drag torque proportional to the angular velocity of the body about its mass center. We also suppose that one of the moments of inertia of the spacecraft is a periodic function of time. Under both perturbations, we show that the system exhibits a transient chaotic behavior by means of the Melnikov method. This method gives us an analytical criterion for heteroclinic chaos in terms of the system parameters which is numerically contrasted. We also show that some periodic orbits survive for perturbation small enough.  相似文献   

12.
This paper deals with chaotic attitude motion of a magnetic rigid spacecraft with internal damping in a circular orbit near the equatorial plane of the earth. The dynamical model of the problem is established. The Melnikov analysis is carried out to prove the existence of a complicated non-wandering Cantor set. The dynamical behaviors are numerically investigated by means of time history. Poincare map, power spectrum and Lyapunov exponents. Numerical simulations indicate that the onset of chaos is characterized by the intermittency as the increase of the torque of the magnetic forces and decrease of the damping. The input-output feedback linearization method is applied to control chaotic attitude motions to the given fixed point and periodic motion.  相似文献   

13.
The dynamics of a simplified model of a spinning spacecraft with a circumferential nutational damper is investigated using numerical simulations for nonlinear phenomena. A realistic spacecraft parameter configuration is investigated and is found to exhibit chaotic motion when a sinusoidally varying torque is applied to the spacecraft for a range of forcing amplitude and frequency. Such a torque, in practice, may arise in the platform of a dual-spin spacecraft under malfunction of the control system or from an unbalanced rotor or from vibrations in appendages. The equations of motion of the model are derived with Lagrange's equations using a generalisation of the kinetic energy equation and a linear stability analysis is given. Numerical simulations for satellite parameters are performed and the system is found to exhibit chaotic motion when a sinusoidally varying torque is applied to the spacecraft for a range of forcing amplitude and frequency. The motion is studied by means of time history, phase space, frequency spectrum, Poincaré map, Lyapunov characteristic exponents and Correlation Dimension. For sufficiently large values of torque amplitude, the behaviour of the system was found to have much in common with a two well potential problem such as a Duffing oscillator. Evidence is also presented, indicating that the onset of chaotic motion was characterised by period doubling as well as intermittency.  相似文献   

14.
The present paper investigates the chaotic attitude dynamics and reorientation maneuver for completely viscous liquid-filled spacecraft with flexible appendage. All of the equations of motion are derived by using Lagrangian mechanics and then transformed into a form consisting of an unperturbed part plus perturbed terms so that the system's nonlinear characteristics can be exploited in phase space. Emphases are laid on the chaotic attitude dynamics produced from certain sets of physical parameter values of the spacecraft when energy dissipation acts to derive the body from minor to major axis spin. Numerical solutions of these equations show that the attitude dynamics of liquid-filled flexible spacecraft possesses characteristics common to random, non- periodic solutions and chaos, and it is demonstrated that the desired reorientation maneuver is guaranteed by using a pair of thruster impulses. The control strategy for reorientation maneuver is designed and the numerical simulation results are presented for both the uncontrolled and controlled spins transition.  相似文献   

15.
万有引力场中陀螺体的混沌运动   总被引:1,自引:0,他引:1  
成功  刘延柱  彭建华 《力学学报》2000,32(3):379-384
研究万有引力场中沿圆轨道运行的非对称陀螺体的姿态运动,引入Deprit正则变量建立系统的Hamilton结构,利用Melnikov方法证明在万有引力短作用的昆体产生混沌运动的可能性。对Poincare截面的数值计算表明提高陀螺体的转子转速可对混沌起抑制作用。  相似文献   

16.
Controllingchaoshasdrawnincreasingattentionbecauseofitstheoreticalimportanceandpossibleapplications,andmuchprogresshasbeenachieved[1~4].Theexactlinearizationisanimportantapproachtoanalyzeanddesignnonlinearcontrolsystems,andhasbeenemployedtocontrolcha…  相似文献   

17.
This paper deals with the chaotic attitude motion of a magnetic rigid spacecraft with internal damping in an elliptic orbit. The dynamical model of the spacecraft is established. The Melnikov analysis is carried out to prove the existence of a complicated nonwandering Cantor set. The dynamical behaviors are numerically investigated by means of time history, Poincaré map, Lyapunov exponents and power spectrum. Numerical simulations demonstrate the chaotic motion of the system. The input-output feedback linearization method and its modified version are applied, respectively, to control the chaotic attitude motions to the given fixed point or periodic motion. The project supported by the National Natural Science Foundation of Chine (10082003)  相似文献   

18.
Control of chaotic vibrations in a simplified model of a spinning spacecraft with a circumferential nutational damper is achieved using two techniques. The control methods are implemented on a realistic spacecraft parameter configuration which has been found to exhibit chaotic instability when a sinusoidally varying torque is applied to the spacecraft for a range of forcing amplitude and frequency. Such a torque, in practice, may arise in the platform of a dual-spin spacecraft under malfunction of the control system or from an unbalanced rotor or from vibrations in appendages. Chaotic instabilities arising from these torques could introduce uncertainties and irregularities into a spacecraft's attitude and consequently could have disastrous affects on its operation. The two control methods, recursive proportional feedback (RPF) and continuous delayed feedback, are recently developed techniques for control of chaotic motion in dynamical systems. Each technique is outlined and the effectiveness of the two strategies in controlling chaotic motion exhibited by the present system is compared and contrasted. Numerical simulations are performed and the results are studied by means of time history, phase space, Poincaré map, Lyapunov characteristic exponents and bifurcation diagrams.  相似文献   

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