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微流控技术在加速新太空任务中的作用。

Role of microfluidics in accelerating new space missions.

作者信息

Kuang Shuangyang, Singh Nishtha Manish, Wu Yichao, Shen Yan, Ren Weijia, Tu Liangcheng, Yong Ken-Tye, Song Peiyi

机构信息

Critical Analytics for Manufacturing Personalized-Medicine, Singapore-MIT Alliance for Research and Technology, CREATE, Singapore.

College of Resources & Environment of Huazhong Agricultural University, No.1, Shizishan Street, Wuhan, 430070, People's Republic of China.

出版信息

Biomicrofluidics. 2022 Apr 21;16(2):021503. doi: 10.1063/5.0079819. eCollection 2022 Mar.

Abstract

Numerous revolutionary space missions have been initiated and planned for the following decades, including plans for novel spacecraft, exploration of the deep universe, and long duration manned space trips. Compared with space missions conducted over the past 50 years, current missions have features of spacecraft miniaturization, a faster task cycle, farther destinations, braver goals, and higher levels of precision. Tasks are becoming technically more complex and challenging, but also more accessible via commercial space activities. Remarkably, microfluidics has proven impactful in newly conceived space missions. In this review, we focus on recent advances in space microfluidic technologies and their impact on the state-of-the-art space missions. We discuss how micro-sized fluid and microfluidic instruments behave in space conditions, based on hydrodynamic theories. We draw on analyses outlining the reasons why microfluidic components and operations have become crucial in recent missions by categorically investigating a series of successful space missions integrated with microfluidic technologies. We present a comprehensive technical analysis on the recently developed in-space microfluidic applications such as the lab-on-a-CubeSat, healthcare for manned space missions, evaluation and reconstruction of the environment on celestial bodies, in-space manufacturing of microfluidic devices, and development of fluid-based micro-thrusters. The discussions in this review provide insights on microfluidic technologies that hold considerable promise for the upcoming space missions, and also outline how in-space conditions present a new perspective to the microfluidics field.

摘要

在接下来的几十年里,已经启动并规划了许多具有革命性的太空任务,包括新型航天器的计划、对深层宇宙的探索以及长时间的载人太空旅行。与过去50年进行的太空任务相比,当前的任务具有航天器小型化、任务周期更快、目的地更远、目标更宏大以及精度更高的特点。任务在技术上变得更加复杂和具有挑战性,但通过商业太空活动也更容易实现。值得注意的是,微流体技术在新构想的太空任务中已被证明具有重要作用。在本综述中,我们重点关注太空微流体技术的最新进展及其对最先进太空任务的影响。我们基于流体动力学理论讨论微型流体和微流体仪器在太空条件下的行为。通过对一系列集成了微流体技术的成功太空任务进行分类研究,我们借鉴分析结果,概述了微流体组件和操作在近期任务中变得至关重要的原因。我们对最近开发的太空微流体应用进行了全面的技术分析,例如立方星上的实验室、载人太空任务的医疗保健、天体环境的评估与重建、微流体设备的太空制造以及基于流体的微型推进器的开发。本综述中的讨论为微流体技术提供了见解,这些技术对即将到来的太空任务具有巨大潜力,同时也概述了太空条件如何为微流体领域带来新的视角。

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本文引用的文献

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