地球技术圈的预测:亮度和质量作为增长的限制

IF 3.4 2区 物理与天体物理 Q1 ENGINEERING, AEROSPACE Acta Astronautica Pub Date : 2025-04-01 Epub Date: 2025-01-31 DOI:10.1016/j.actaastro.2025.01.048
Jacob Haqq-Misra , Clément Vidal , George Profitiliotis
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引用次数: 0

摘要

地球仍然是已知的唯一拥有科技的行星,对地球轨道的未来预测为探索外星科技圈提供了基础和动力。预测地球技术圈的传统方法包括卡尔达肖夫尺度的应用,这表明能源密集型文明可能会扩展到利用他们的行星、宿主恒星甚至整个星系的全部能量输出。在这项研究中,我们认为卡尔达肖夫尺度最好被理解为“光度极限”,它描述了一个文明在给定空间域中获取发光恒星能量的最大能力,我们注意到热力学效率将始终使光度有限的技术圈实际上达到这个理论极限。我们提出了一种可能性,即一个先进的技术圈可能会进化到超过这个光度限制,直接从收集恒星质量中获取能量,我们还讨论了今天的地球和这些假想的“恒星捕食者”之间可能存在的轨迹。我们开发了一个框架来描述长期存在的技术圈的轨迹,优化其在勘探和开发之间的增长战略,不像今天的地球。我们注意到,对紧凑型吸积恒星的分析可以提供检验恒星假说的方法,我们更广泛地建议扩展技术特征搜索策略,而不仅仅局限于亮度极限。
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Projections of Earth’s technosphere: Luminosity and mass as limits to growth
Earth remains the only known example of a planet with technology, and future projections of Earth’s trajectory provide a basis and motivation for approaching the search for extraterrestrial technospheres. Conventional approaches toward projecting Earth’s technosphere include applications of the Kardashev scale, which suggest the possibility that energy-intensive civilizations may expand to harness the entire energy output available to their planet, host star, or even the entire galaxy. In this study, we argue that the Kardashev scale is better understood as a “luminosity limit” that describes the maximum capacity for a civilization to harvest luminous stellar energy across a given spatial domain, and we note that thermodynamic efficiency will always keep a luminosity-limited technosphere from actually reaching this theoretical limit. We suggest the possibility that an advanced technosphere might evolve beyond this luminosity limit to draw its energy directly from harvesting stellar mass, and we also discuss possible trajectories that could exist between Earth today and such hypothetical “stellivores.” We develop a framework to describe trajectories for long-lived technospheres that optimize their growth strategies between exploration and exploitation, unlike Earth today. We note that analyses of compact accreting stars could provide ways to test the stellivore hypothesis, and we more broadly suggest an expansion of technosignature search strategies beyond those that reside exactly at the luminosity limit.
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来源期刊
Acta Astronautica
Acta Astronautica 工程技术-工程:宇航
CiteScore
7.20
自引率
22.90%
发文量
599
审稿时长
53 days
期刊介绍: Acta Astronautica is sponsored by the International Academy of Astronautics. Content is based on original contributions in all fields of basic, engineering, life and social space sciences and of space technology related to: The peaceful scientific exploration of space, Its exploitation for human welfare and progress, Conception, design, development and operation of space-borne and Earth-based systems, In addition to regular issues, the journal publishes selected proceedings of the annual International Astronautical Congress (IAC), transactions of the IAA and special issues on topics of current interest, such as microgravity, space station technology, geostationary orbits, and space economics. Other subject areas include satellite technology, space transportation and communications, space energy, power and propulsion, astrodynamics, extraterrestrial intelligence and Earth observations.
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