使用参数力抑制超环车辆的参数共振
Jithu Paul1, Karel N van Dalen1, Andrei B Fărăgău1
1TU Delft, Department of Engineering Structures, Faculty of CEG, The Netherlands.
Physical review. E
|April 18, 2025
概括
这项研究分析了超环车辆的稳定性,揭示了通过调节空气弹性力可以抑制来自电磁力的参数共振. 这种控制取决于调制幅度和相位,为hyperloop动态提供了洞察力.
科学领域:
- 机械工程 机械工程
- 航空航天工程 航空航天工程
- 控制系统 控制系统
背景情况:
- 超环车辆面临着稳定性挑战,原因是电磁和空气弹性力量的结合.
- 了解参数共振对于安全高效的超环运行至关重要.
研究的目的:
- 在恒定和时间变化的电磁和气弹性力下分析超环模型的稳定性.
- 研究参数共振现象及其抑制方法.
主要方法:
- 对常数系数进行线性稳定性分析.
- 对于极限周期振动的和平衡方法.
- 对于周期变化的系数,Floquet分析和Hill的决定性方法.
主要成果:
- 确定了三个恒定系数的稳定区域,其中一个是极限周期振动.
- 极限周期振荡的确定的属性 (频率和振幅).
- 表明参数共振可以被调制的气弹性力抑制,这取决于相位和振幅.
结论:
- 超环系统中的参数共振可以被主动控制.
- 调节气弹性力提供了一种抑制电磁诱导参数共振的方法.
- 这些发现对设计易受参数激发的稳定系统有影响.
相关概念视频
Sound Waves: Resonance
2.5K
Resonance is produced depending on the boundary conditions imposed on a wave. Resonance can be produced in a string under tension with symmetrical boundary conditions (i.e., has a node at each end). A node is defined as a fixed point where the string does not move. The symmetrical boundary conditions result in some frequencies resonating and producing standing waves, while other frequencies interfere destructively. Sound waves can resonate in a hollow tube, and the frequencies of the sound...
2.5K
Concept of Resonance and its Characteristics
5.0K
If a driven oscillator needs to resonate at a specific frequency, then very light damping is required. An example of light damping includes playing piano strings and many other musical instruments. Conversely, to achieve small-amplitude oscillations as in a car's suspension system, heavy damping is required. Heavy damping reduces the amplitude, but the tradeoff is that the system responds at more frequencies. Speed bumps and gravel roads prove that even a car's suspension system is not...
5.0K
Forced Oscillations
6.4K
When an oscillator is forced with a periodic driving force, the motion may seem chaotic. The motions of such oscillators are known as transients. After the transients die out, the oscillator reaches a steady state, where the motion is periodic, and the displacement is determined.
6.4K
Magnetic Damping
392
Eddy currents can produce significant drag on motion, called magnetic damping. For instance, when a metallic pendulum bob swings between the poles of a strong magnet, significant drag acts on the bob as it enters and leaves the field, quickly damping the motion.
If, however, the bob is a slotted metal plate, the magnet produces a much smaller effect. When a slotted metal plate enters the field, an emf is induced by the change in flux; however, it is less effective because the slots limit the...
If, however, the bob is a slotted metal plate, the magnet produces a much smaller effect. When a slotted metal plate enters the field, an emf is induced by the change in flux; however, it is less effective because the slots limit the...
392
Damped Oscillations
5.6K
In the real world, oscillations seldom follow true simple harmonic motion. A system that continues its motion indefinitely without losing its amplitude is termed undamped. However, friction of some sort usually dampens the motion, so it fades away or needs more force to continue. For example, a guitar string stops oscillating a few seconds after being plucked. Similarly, one must continually push a swing to keep a child swinging on a playground.
Although friction and other non-conservative...
Although friction and other non-conservative...
5.6K
Types of Damping
6.3K
If the amount of damping in a system is gradually increased, the period and frequency start to become affected because damping opposes, and hence slows, the back and forth motion (the net force is smaller in both directions). If there is a very large amount of damping, the system does not even oscillate; instead, it slowly moves toward equilibrium. In brief, an overdamped system moves slowly towards equilibrium, whereas an underdamped system moves quickly to equilibrium but will oscillate about...
6.3K


