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The Space-Faring Africa: Commercial Space Industry and its Readiness for Innovation-Driven Investment 航天非洲:商业航天工业及其对创新驱动投资的准备
Pub Date : 2023-03-01 DOI: 10.1089/space.2021.0026
José P. Ferreira, Imane El Khantouti, Ananyo Bhattacharya, Maxim Mommerency, Federico Rondoni
The African continent presents undeniable differentiating factors to play a key role in the space economy of this century. Over the past decades, its economic pulse has sustainably raised, fomenting research efforts and investment in the development of space technology. Evaluating these factors is a recurrent task for decision makers and investors, and it consists of a thorough and difficult process of gathering non-standardized data and economic indicators from different sources. This becomes significant when aiming at comparing distinct countries concerning their potential to succeed in the space sector. As such, we propose a novel approach to increase the understanding on the multitude of factors that make a country attractive from the investment perspective in the space sector. To do so, we gathered opinion-based data from young nationals by leveraging the Space Generation Advisory Council network in Africa. We reached for distinctive representatives of the network and showcased a methodology to formulate a qualitative classification according to the country's conditions to promote fruitful investments in the space sector. In this way, we introduce the Space Business Readiness Level — which showed that most of the interviewed countries currently present either favorable or increasing conditions for investment.
非洲大陆具有不可否认的独特因素,将在本世纪的空间经济中发挥关键作用。在过去的几十年里,它的经济脉搏持续上升,促进了对空间技术发展的研究努力和投资。对决策者和投资者来说,评价这些因素是一项经常性的任务,它包括从不同来源收集非标准化数据和经济指标的彻底和困难的过程。在比较不同国家在空间部门取得成功的潜力时,这一点具有重要意义。因此,我们提出了一种新的方法,以增加对从空间部门投资角度看使一个国家具有吸引力的众多因素的理解。为此,我们利用非洲空间一代咨询委员会网络,从年轻国民那里收集了基于意见的数据。我们找到了网络中各具特色的代表,并展示了一种根据国家条件制定定性分类的方法,以促进对空间部门的富有成效的投资。通过这种方式,我们引入了空间商业准备水平-这表明大多数受访国家目前都具有有利或不断增加的投资条件。
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引用次数: 0
Mission Architecture Using the SpaceX Starship Vehicle to Enable a Sustained Human Presence on Mars. 使用SpaceX星际飞船实现人类在火星上持续存在的任务架构。
Pub Date : 2022-09-01 Epub Date: 2022-09-13 DOI: 10.1089/space.2020.0058
Jennifer L Heldmann, Margarita M Marinova, Darlene S S Lim, David Wilson, Peter Carrato, Keith Kennedy, Ann Esbeck, Tony Anthony Colaprete, Richard C Elphic, Janine Captain, Kris Zacny, Leo Stolov, Boleslaw Mellerowicz, Joseph Palmowski, Ali M Bramson, Nathaniel Putzig, Gareth Morgan, Hanna Sizemore, Josh Coyan

A main goal of human space exploration is to develop humanity into a multi-planet species where civilization extends beyond planet Earth. Establishing a self-sustaining human presence on Mars is key to achieving this goal. In situ resource utilization (ISRU) on Mars is a critical component to enabling humans on Mars to both establish long-term outposts and become self-reliant. This article focuses on a mission architecture using the SpaceX Starship as cargo and crew vehicles for the journey to Mars. The first Starships flown to Mars will be uncrewed and will provide unprecedented opportunities to deliver ∼100 metric tons of cargo to the martian surface per mission and conduct robotic precursor work to enable a sustained and self-reliant human presence on Mars. We propose that the highest priority activities for early uncrewed Starships include pre-placement of supplies, developing infrastructure, testing of key technologies, and conducting resource prospecting to map and characterize water ice for future ISRU purposes.

人类太空探索的一个主要目标是将人类发展成一个多行星物种,使文明超越地球。在火星上建立自给自足的人类存在是实现这一目标的关键。火星就地资源利用(ISRU)是使火星上的人类既能建立长期前哨站又能自力更生的关键组成部分。本文关注的是使用SpaceX星际飞船作为火星之旅的货物和船员运载工具的任务架构。第一批飞往火星的星际飞船将是无人驾驶的,并将提供前所未有的机会,每次任务将向火星表面运送约100公吨的货物,并进行机器人前驱工作,以实现人类在火星上持续和自力更生的存在。我们建议早期无人星际飞船最优先的活动包括预先放置补给,开发基础设施,测试关键技术,以及为未来的ISRU目的进行资源勘探以绘制和表征水冰。
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引用次数: 15
Earth-Based Research Analogs to Investigate Space-Based Health Risks. 基于地球的研究类似物来调查基于空间的健康风险。
Pub Date : 2021-12-01 Epub Date: 2021-12-20 DOI: 10.1089/space.2020.0048
Ronita L Cromwell, Janice L Huff, Lisa C Simonsen, Zarana S Patel

During spaceflight, astronauts are exposed to a variety of unique hazards, including altered gravity fields, long periods of isolation and confinement, living in a closed environment at increasing distances from Earth, and exposure to higher levels of hazardous ionizing radiation. Preserving human health and performance in the face of these relentless hazards becomes progressively more difficult as missions increase in length and extend beyond low Earth orbit. Finding solutions is a significant challenge that is further complicated by logistical issues associated with studying these unique hazards. Although research studies using space-based platforms are the gold standard, these are not without limitations. Factors such as the small sample size of the available astronaut crew, high expense, and time constraints all add to the logistical challenge. To overcome these limitations, a wide variety of Earth-based analogs, from polar research outposts to an undersea laboratory, are available to augment space-based studies. Each analog simulates unique physiological and behavioral effects associated with spaceflight and, therefore, for any given study, the choice of an appropriate platform is closely linked to the phenomena under investigation as well as the characteristics of the analog. There are pros and cons to each type of analog and each actual facility, but overall they provide a reasonable means to overcome the barriers associated with conducting experimental research in space. Analogs, by definition, will never be perfect, but they are a useful component of an integrated effort to understand the human risks of living and working in space. They are a necessary resource for pushing the frontier of human spaceflight, both for astronauts and for commercial space activities. In this review, we describe the use of analogs here on Earth to replicate specific aspects of the spaceflight environment and highlight how analog studies support future human endeavors in space.

在太空飞行过程中,宇航员暴露在各种独特的危险中,包括改变重力场、长时间的隔离和禁闭、生活在离地球越来越远的封闭环境中,以及暴露在更高水平的危险电离辐射中。随着任务长度的增加和延伸到近地轨道之外,在这些无情的危险面前保护人类健康和表现变得越来越困难。寻找解决方案是一项重大挑战,与研究这些独特危险相关的后勤问题使这项挑战更加复杂。尽管使用天基平台的研究是黄金标准,但这些研究并非没有局限性。现有宇航员样本量小、费用高和时间限制等因素都增加了后勤挑战。为了克服这些限制,从极地研究前哨站到海底实验室,各种各样的基于地球的类似物都可用于加强天基研究。每种模拟物都模拟与太空飞行相关的独特生理和行为效应,因此,对于任何给定的研究,适当平台的选择都与所研究的现象以及模拟物的特性密切相关。每种类型的模拟和每种实际设施都有利弊,但总的来说,它们提供了一种合理的手段来克服在太空进行实验研究的障碍。根据定义,类比永远不会是完美的,但它们是理解人类在太空生活和工作风险的综合努力的有用组成部分。无论是对宇航员还是商业太空活动来说,它们都是推动载人航天前沿的必要资源。在这篇综述中,我们描述了在地球上使用类似物来复制太空环境的特定方面,并强调了模拟研究如何支持未来人类在太空中的努力。
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引用次数: 12
Exotic Optical Fibers and Glasses: Innovative Material Processing Opportunities in Earth's Orbit. 外来光纤和玻璃:地球轨道上的创新材料加工机会。
Pub Date : 2017-09-01 DOI: 10.1089/space.2017.0016
Ioana Cozmuta, Daniel J Rasky

Exotic optical fibers and glasses are the platform material for photonics applications, primarily due to their superior signal transmission (speed, low attenuation), with extending bandwidth deep into the infrared, exceeding that of silica fibers. Gravitational effects (convection sedimentation) have a direct impact on the phase diagram of these materials and influence melting properties, crystallization temperatures, and viscosity of the elemental mix during the manufacturing process. Such factors constitute limits to the yield, transmission quality, and strength and value of these fibers; they also constrain the range of applications. Manufacturing in a gravity-free environment such as the Earth's Orbit also helps with other aspects of the fabrication process (i.e., improved form factor of the manufacturing unit, sustainability). In this article, revolutionary developments in the field of photonics over the past decade merge with the paradigm shift in the privatization of government-owned capabilities supporting a more diverse infrastructure (parabolic, suborbital, orbital), reduced price, and increased frequency to access space and the microgravity environment. With the increased dependence on data (demand, bandwidth, efficiency), space and the microgravity environment provide opportunities for optimized performance of these exotic optical fibers and glasses underlying the development of enabling technologies to meet future data demand. Existing terrestrial markets (Internet, telecommunications, market transactions) and emerging space markets (on-orbit satellite servicing, space manufacturing, space resources, space communications, etc.) seem to converge, and this innovative material processing opportunity of exotic optical fibers and glasses might just be that "killer app": technologically competitive, economically viable, and with the ability to close the business case.

外来光纤和玻璃是光子学应用的平台材料,主要是因为它们具有优越的信号传输(速度快,衰减低),其带宽延伸到红外深处,超过了二氧化硅光纤。重力效应(对流沉降)对这些材料的相图有直接影响,并在制造过程中影响熔融性能、结晶温度和元素混合物的粘度。这些因素限制了这些纤维的产量、传输质量、强度和价值;它们还限制了应用的范围。在地球轨道等无重力环境下进行制造也有助于制造过程的其他方面(即,改进制造单元的形状因素,可持续性)。在本文中,过去十年光子学领域的革命性发展与政府拥有的能力私有化的范式转变相结合,这些能力支持更多样化的基础设施(抛物线,亚轨道,轨道),降低价格,增加进入太空和微重力环境的频率。随着对数据(需求、带宽、效率)依赖的增加,空间和微重力环境为优化这些奇异光纤和玻璃的性能提供了机会,从而使技术的发展能够满足未来的数据需求。现有的地面市场(互联网、电信、市场交易)和新兴的空间市场(在轨卫星服务、空间制造、空间资源、空间通信等)似乎正在融合,而这种新奇的光纤和玻璃的创新材料加工机会可能正是“杀手级应用”:技术上具有竞争力,经济上可行,并有能力完成商业案例。
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引用次数: 11
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New space
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