论文标题

最大程度地减少光生悬浮磁盘的地面效应

Minimizing the Ground Effect for Photophoretically Levitating Disks

论文作者

Lu, Zhipeng, Stern, Miranda, Li, Jinqiao, Candia, David, Yao-Bate, Lorenzo, Celenza, Thomas J., Azadi, Mohsen, Campbell, Matthew F., Bargatin, Igor

论文摘要

光性悬浮是一种推进机制,可以通过其与光的相互作用来抬起轻巧的物体。由于通常在低压下最大化宏观物体上的摄影力,因此可以在与腔室的地板和墙壁附近的真空室中进行测试。我们在这里报告的实验证据表明,悬浮的微层散热器(包括腔室底层或从中升降器的发射板)下降的地形可以大大增加相对于其自由空间(空中)值的照射升力力。为了表征真空室测试中所谓的“地面效应”,我们引入了一个新的微型发射板,该发射板由三根J形(糖果式)电线组成,该电线将微置散热器与潜在表面的外部相互作用最小化。我们将新的Launchpads与以前使用的电线网状发射台进行了比较,以简单地将基于聚酯薄膜的磁盘直径为2、4和8厘米。重要的是,电线网状发射台将光生升力力提高了多达六倍。与真空室的底部的底部也有显着的地面效应,尤其是当底部表面的距离小于悬浮盘的直径时。我们提供了指南,以最大程度地减少真空室实验中的地面效应,这对于测试旨在用于地球或火星上高空探索和监视的光体散热器所必需的。

Photophoretic levitation is a propulsion mechanism in which lightweight objects can be lifted and controlled through their interactions with light. Since photophoretic forces on macroscopic objects are usually maximized at low pressures, they may be tested in vacuum chambers in close proximity to the chamber floor and walls. We report here experimental evidence that the terrain under levitating microflyers, including the chamber floor or the launchpad from which microflyers lift off, can greatly increase the photophoretic lift forces relative to their free-space (mid-air) values. To characterize this so-called "ground effect" during vacuum chamber tests, we introduced a new miniature launchpad composed of three J-shaped (candy-cane-like) wires that minimized a microflyer's extraneous interactions with underlying surfaces. We compared our new launchpads to previously used wire-mesh launchpads for simple levitating mylar-based disks with diameters of 2, 4, and 8 cm. Importantly, wire-mesh launchpads increased the photophoretic lift force by up to sixfold. A significant ground effect was also associated with the bottom of the vacuum chamber, particularly when the distance to the bottom surface was less than the diameter of the levitating disk. We provide guidelines to minimize the ground effect in vacuum chamber experiments, which are necessary to test photophoretic microflyers intended for high-altitude exploration and surveillance on Earth or on Mars.

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