论文标题
控制Diamagnet上悬浮的石墨板的运动质量因子
Controlling the motional quality factor of a diamagnetically levitated graphite plate
论文作者
论文摘要
研究人员寻求用于为各种目的悬浮物的方法,从探索科学的基本问题到开发新的传感器和机械执行器。许多悬浮技术需要主动驾驶,大多数只能应用于小于几微米的物体。磁磁性悬浮具有强大的优势,即是被动的悬浮形式,不需要能量输入,同时也支持大规模的物体。已知的磁管材料是电绝缘体的,仅是弱磁性的,需要大的磁场梯度才能悬浮。强大的磁性材料是电导体,例如石墨,表现出涡流阻尼,限制了运动自由并降低了其传感应用的潜力。在这项工作中,我们描述了一种方法来设计涡流阻尼的方法,同时保留了磁磁物质提供的力特性。我们在实验和理论上研究了在高真空中磁悬浮的石墨板的运动阻尼,并证明人们可以通过用中断涡流的缝隙使板块对板块进行构图,从而控制涡流阻尼。我们发现,通过实验和数值模拟之间的出色一致性,我们可以在广泛的范围内控制运动质量因子。
Researchers seek methods to levitate matter for a wide variety of purposes, ranging from exploring fundamental problems in science, through to developing new sensors and mechanical actuators. Many levitation techniques require active driving and most can only be applied to objects smaller than a few micrometers. Diamagnetic levitation has the strong advantage of being the only form of levitation which is passive, requiring no energy input, while also supporting massive objects. Known diamagnetic materials which are electrical insulators are only weakly diamagnetic, and require large magnetic field gradients to levitate. Strong diamagnetic materials which are electrical conductors, such as graphite, exhibit eddy damping, restricting motional freedom and reducing their potential for sensing applications. In this work we describe a method to engineer the eddy damping while retaining the force characteristics provided by the diamagnetic material. We study, both experimentally and theoretically, the motional damping of a magnetically levitated graphite plate in high vacuum and demonstrate that one can control the eddy damping by patterning the plate with through-slots which interrupt the eddy currents. We find we can control the motional quality factor over a wide range with excellent agreement between the experiment and numerical simulations.