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Magnetic confinement of diamagnetic objects for space utilization

机译:抗磁性物体的磁约束,用于空间利用

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摘要

Utilization of the space environment provides invaluable opportunities for researchers to fulfill challenging tasks that are impossible on Earth. Longtime sustainable containerless and simultaneously weightless condition is a desirable physical environment that can be easily obtained in outer space. However, in a space station, due to unpredictable disturbances, i.e., g-jitter, objects that are floating in containerless and weightless conditions may not be able to stay motionless at a specific location, making it difficult to conduct any investigation of the objects. In this study, we propose a method to confine objects without energy consumption using permanent magnets. Two types of confinement apparatuses made of permanent magnets were designed and manufactured. The apparatuses were used to demonstrate the capability of the magnetic field to confine diamagnetic objects without mechanical contact. We took confinement of a water droplet as an example and calculated the confinement performance of the two apparatuses. The results showed that the idea of using permanent magnets to confine diamagnetic objects without energy consumption in the space environment is feasible. Compared with other confinement methods, such as ultrasound and electrostatic confinement methods, the method proposed in this study is simple, efficient and inexpensive. Most importantly, the confined objects are restricted in a region with a low magnetic field. These advantages enable the method a potentially useful alternative for studying objects under containerless and weightless condition in space.
机译:太空环境的利用为研究人员完成地球上不可能完成的具有挑战性的任务提供了宝贵的机会。长期可持续的无容器状态和同时失重状态是一种理想的物理环境,可以在外层空间轻松获得。但是,在空间站中,由于不可预测的干扰(即g抖动),漂浮在无容器和失重状态下的物体可能无法在特定位置静止不动,从而难以对物体进行任何检查。在这项研究中,我们提出了一种使用永磁体在不消耗能量的情况下限制物体的方法。设计并制造了两种由永磁体制成的限制装置。这些设备用于证明磁场在没有机械接触的情况下限制反磁性物体的能力。我们以水滴的约束为例,并计算了两种设备的约束性能。结果表明,在空间环境中使用永磁体限制反磁性物体而不消耗能量的想法是可行的。与其他限制方法(如超声和静电限制方法)相比,本研究提出的方法简单,高效且便宜。最重要的是,被限制的物体被限制在低磁场的区域中。这些优点使该方法成为研究空间无容器和失重条件下物体的潜在有用替代方法。

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