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1.
内装式空射运载火箭重力出舱机箭耦合动力学分析 总被引:1,自引:1,他引:0
研究了以运输机为平台的内装式运载火箭空射过程载机和火箭的耦合动力学建模。建模针对两个阶段:第一阶段,火箭固定于载机机舱内,两者构成一个整体,按照普通刚体的力学方法处理;第二阶段,火箭解锁后,沿着舱内的发射筒向外滑行,载机和火箭形成两刚体相互作用的耦合系统,基于牛顿-欧拉法建立系统动力学模型。载机在空射火箭过程中,油门和升降舵满偏,在加速前飞的同时拉大姿态俯仰角,火箭在自身重力分量和惯性力的作用下,沿着机舱内的发射筒加速向外滑行,直至与载机分离。数值仿真分析了空射过程载机的重要力学参数的变化过程,验证了载机操控策略的可行性和安全性,可为未来中国空射运载火箭技术设计提供数据参考。 相似文献
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多电机协调控制达到转速一致是电机控制中的一个关键难题,外加负载变动和电机参数变化时会引起电机性能的下降,达不到良好的控制效果。为使电机间保持转速同步,建立了永磁同步电机d-q坐标系下的矢量控制数学模型,基于转速跟随控制,提出一种基于单神经元PID的变增益速度补偿器进行偏差耦合控制。在MATLAB/Simulink建立了3台永磁同步电机的仿真模型。仿真结果表明,与传统PID固定增益速度补偿器算法相比,单神经元PID的变增益速度补偿器具有更强的鲁棒性以及更快的收敛性。 相似文献
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本文针对电动式磁悬浮动量球(Electrodynamic suspension reaction sphere, EDSRS)的电磁场耦合进行分析,采用定子绕组的感应电动势评判耦合强度,提出了耦合强度评判指标,作为EDSRS的结构设计约束,以降低电磁场耦合的影响。首先,结合EDSRS的具体结构特点,对多定子之间的电磁场耦合问题进行分析,采用定子电磁场在另一个定子绕组中产生的感应电动势评判耦合强度。然后,对感应电动势产生规律进行分析,提出了耦合强度评判指标,并基于所提评判指标,建立了耦合约束验证流程,作为EDSRS的结构设计约束,最后,通过有限元仿真和实验验证了上述电磁场耦合分析。 相似文献
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用于叶片减振的压电材料分布拓扑优化 总被引:3,自引:2,他引:1
提出一种可用于实际叶盘结构的压电分支阻尼器拓扑优化方法,可以给出总质量受约束的压电材料在叶片上的最佳分布,达到尽可能大的模态阻尼比。通过理论推导说明:压电阻尼器所产生的模态阻尼比仅取决于模态机电耦合系数,且该系数只与压电材料的几何形状以及模态应力场有关。进一步结合压电本构关系,基于应力分量的线性加权给出了有限的压电材料在叶片上铺设位置“优先级”的判断指标。给出了基于叶盘结构有限元模型的压电材料拓扑优化方法,通过替换单元类型和材料参数的方式对压电材料进行布置,并给出了多模态族优化、极化方向设置、电极铺设等问题的解决方案。在一个接近真实的叶盘模型上应用了此优化方法。结果表明,仅使用质量占叶片质量10%的压电材料,就可以为多个模态提供约12%的阻尼比。 相似文献
6.
《中国航空学报》2019,32(12):2577-2591
A CFD-based Numerical Virtual Flight (NVF) simulator is presented, which integrates an unsteady flow solver on moving hybrid grids, a Rigid-Body Dynamics (RBD) solver and a module of the Flight Control System (FCS). A technique of dynamic hybrid grids is developed to control the active control surfaces with body morphing, with a technique of parallel unstructured dynamic overlapping grids generating proper moving grids over the deflecting control surfaces (e.g. the afterbody rudders of a missile). For the flow/kinematic coupled problems, the 6 Degree-Of-Freedom (DOF) equations are solved by an explicit or implicit method coupled with the URANS CFD solver. The module of the control law is explicitly coupled into the NVF simulator and then improved by the simulation of the pitching maneuver process of a maneuverable missile model. A nonlinear dynamic inversion method is then implemented to design the control law for the pitching process of the maneuverable missile model. Simulations and analysis of the pitching maneuver process are carried out by the NVF simulator to improve the flight control law. Higher control response performance is obtained by adjusting the gain factors and adding an integrator into the control loop. 相似文献
7.
针对航空发动机中叶盘结构的共振分析问题,通过研究气体激励力和叶盘节径型振动在转子坐标系下的数学表达形式,利用叶盘结构共振时,气体激励力需要对叶盘系统做正功的条件,推导了叶盘发生共振时,节径数与转/静子叶片数应满足的关系式dm=kNv-nNb。通过3个数值算例对上述关系式进行了阐述:从气动功和谐响应分析的角度验证了当上述关系存在时,且激励频率等于结构固有频率时,叶盘系统会发生危害共振;同时指出,当上述变量不满足上述关系时,若激励频率等于叶盘结构的固有频率,也会引起部分叶片发生较大振动的可能。 相似文献
8.
Experimental investigation of large amplitude yaw-roll coupled oscillations was conducted in a low-speed wind tunnel using an aircraft configuration model. A special test rig was designed and constructed to provide different coupled motions from low to high angles of attack.A parameter ‘‘coupling ratio" was introduced to indicate the extent of yaw-roll coupling. At each pitch angle, seven coupling ratios were designed to study the yaw-roll coupling effects on the lateraldirectional aerodynamic characteristics systematically. At high angles of attack, the damping characteristics of yawing and rolling moments drastically varied with coupling ratios. In the coupled motions with the rotation taking place about the wind axis, the lateral-directional aerodynamic moments exhibited unsteady characteristics and were different from the ‘‘quasi-steady" results of the rotary balance tests. The calculated results of the traditional aerodynamic derivative method were also compared with the experimental data. At low and very high angles of attack, the aerodynamic derivative method was applicative. However, within a wide range of angles of attack, the calculated results of aerodynamic derivative method were inconsistent with the experimental data, due to the drastic changes of damping characteristics of lateral-directional aerodynamic moments with yaw-roll coupling ratios. 相似文献
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Yue Wang Shijie Xu Mengping Zhu 《Advances in Space Research (includes Cospar's Information Bulletin, Space Research Today)》2014
The full dynamics of spacecraft around an asteroid, in which the spacecraft is considered as a rigid body and the gravitational orbit–attitude coupling is taken into account, is of great value and interest in the precise theories of the motion. The spectral stability of the classical relative equilibria of the full spacecraft dynamics around an asteroid is studied with the method of geometric mechanics. The stability conditions are given explicitly based on the characteristic equation of the linear system matrix. It is found that the linearized system decouples into two entirely independent subsystems, which correspond to the motions within and outside the equatorial plane of the asteroid respectively. The system parameters are divided into three groups that describe the traditional stationary orbit stability, the significance of the orbit–attitude coupling and the mass distribution of the spacecraft respectively. The spectral stability of the relative equilibria is investigated numerically with respect to the three groups of system parameters. The relations between the full spacecraft dynamics and the traditional spacecraft dynamics, as well as the effect of the orbit–attitude coupling, are assessed. We find that when the orbit–attitude coupling is strong, the mass distribution of the spacecraft dominates the stability of the relative equilibria; whereas when the orbit–attitude coupling is weak, both the mass distribution and the traditional stationary orbit stability have significant effects on the stability. We also give a criterion to determine whether the orbit–attitude coupling needs to be considered. 相似文献