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Optical Kapitza Pendulum

机译:光学Kapitza摆锤

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摘要

The Kapitza pendulum is the paradigm for the phenomenon of dynamical stabilization, whereby an otherwise unstable system achieves a stability that is induced by fast modulation of a control parameter. In the classic, macroscopic Kapitza pendulum, a rigid pendulum is stabilized in the upright, inverted position by high frequency driving of the point of suspension. In our experiments we realize a microscopic 'optical' pendulum using a particle confined in a ring-shaped optical trap, subject to a drag force via fluid flow and driven via oscillating the potential in a direction parallel to the fluid flow. In the regime of vanishing Reynold's number with high-frequency driving the inverted pendulum is no longer stable, but new equilibrium positions appear that depend on the amplitude of driving. As the driving frequency is decreased a yet different behavior emerges where stability of the pendulum depends also on the details of the pendulum hydrodynamics. We present a theory for the observed induced stability of the overdamped pendulum based on the separation of timescales in the pendulum motion as formulated by Kapitza, but with the addition of a viscous drag. Excellent agreement is found between the predicted behavior from the analytical theory and the experimental results across the range of pendulum driving frequencies. We complement these results with Brownian motion simulations, and we characterize the stabilized pendulum by both time- and frequency-domain analyses of the pendulum Brownian motion.
机译:Kapitza摆是动态稳定现象的范例,在这种情况下,否则不稳定的系统将获得由控制参数的快速调制引起的稳定性。在经典的宏观Kapitza摆中,通过悬挂点的高频驱动将刚性摆稳定在直立的倒立位置。在我们的实验中,我们使用限制在环形光阱中的粒子实现了微观的“光学”摆,该粒子通过流体流动受到拖曳力,并通过在平行于流体流动方向上振荡电势来驱动。在高频驱动下使雷诺数消失的情况下,倒立摆不再稳定,而是出现了取决于驱动幅度的新平衡位置。随着驱动频率的降低,摆锤的稳定性也取决于摆锤流体动力学的细节,从而出现了另一种不同的行为。我们提出了一种理论,用于观察由Kapitza制定的摆运动中的时标的分离,但加上了粘性阻力,从而观察到过阻尼摆的诱导稳定性。在摆频驱动频率范围内,从分析理论预测的行为与实验结果之间找到了极好的一致性。我们用布朗运动模拟对这些结果进行补充,并通过摆布朗运动的时域和频域分析来表征稳定的摆。

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