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On the first probe to transit between two interstellar civilizations

Published online by Cambridge University Press:  06 December 2022

Graeme H. Smith*
Affiliation:
Department of Astronomy and Astrophysics, University of California, Santa Cruz, CA 95064 USA
*
Author for correspondence: Graeme H. Smith, E-mail: graeme@ucolick.org

Abstract

If a space-faring civilization embarks on a program to send probes to interstellar destinations, the first probe to arrive at such a destination is not likely to be one of the earliest probes, but one of much more advanced capability. This conclusion is based on a scenario in which an extraterrestrial civilization (ETC) embarks upon an interstellar program during which it launches increasingly sophisticated probes whose departure speed increases as a function of time throughout the program. Two back-of-the-envelope models are considered: one in which the launch velocity of an outgoing vehicle increases linearly with the time of launch, and a second in which the increase is exponential with launch date. In this paper consideration is directed to an hypothesized probe arriving within the Solar System from a non-terrestrial civilization. Within the above scenarios, a first-encounter probe will be one that was launched well after the initiation of an interstellar program by an ETC. Consequently, such a probe would be the product of a relatively advanced phase of that ETC's technology. The more distant the site from which an ETC is launching probes, the greater will be the technology gap between a first-encounter probe and terrestrial technology. One possible ramification may pertain to interpreting the nature of Unidentified Aerial Phenomena (UAP). Are flight characteristics of any UAP singular enough as to be consistent with an origin from a distant ETC?

Type
Research Article
Copyright
Copyright © The Author(s), 2022. Published by Cambridge University Press

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References

Bailor-Jones, CAL and Farnocchia, D (2019) Future stellar flybys of the Voyager and Pioneer spacecraft. Research Notes of the American Astronomical Society 3, 59.Google Scholar
Barlow, MT (2013) Galactic exploration by directed self-replicating probes, and its implications for the Fermi paradox. International Journal of Astrobiology 12, 6368.CrossRefGoogle Scholar
Benford, J (2021) A Drake Equation for alien artifacts. Astrobiology 21, 757763.CrossRefGoogle ScholarPubMed
Børk, R (2007) Exploring the Galaxy using space probes. International Journal of Astrobiology 6, 8993.CrossRefGoogle Scholar
Carroll-Nellenback, J, Frank, A, Wright, J and Scharf, C (2019) The Fermi Paradox and the Aurora Effect: Exo-civilization settlement, expansion, and steady states. The Astronomical Journal 158, 117.CrossRefGoogle Scholar
Cartin, D (2013) Exploration of the local solar neighbourhood I: Fixed number of probes. International Journal of Astrobiology 12, 271281.CrossRefGoogle Scholar
Clarke, AC (1973) Rendezvous with Rama. Gollancz: London.Google Scholar
Cotta, C and Morales, Á (2009) A computational analysis of Galactic exploration with space probes: Implications for the Fermi Paradox. Journal of the British Interplanetary Society 62, 8288.Google Scholar
Forgan, DH, Papadogiannakis, S and Kitching, T (2013) The effect of probe dynamics on Galactic exploration timescales. Journal of the British Interplanetary Society 66, 171178.Google Scholar
Hair, TW and Hedman, AD (2013) Spatial dispersion of interstellar civilizations: a probabilistic site percolation model in three dimensions. International Journal of Astrobiology 12, 4552.CrossRefGoogle Scholar
Haqq-Misraab, J and Kopparapuc, RK (2012) On the likelihood of non-terrestrial artifacts in the Solar System. Acta Astronautica 72, 1520.CrossRefGoogle Scholar
Hawking, S (2010) Into the Universe with Stephen Hawking, E1. Aliens. Discovery Channel: Darlow Smithson Productions.Google Scholar
Heller, R (2017) Relativistic generalization of the incentive trap of interstellar travel with application to Breakthrough Starshot. Monthly Notices of the Royal Astronomical Society 470, 36643671.CrossRefGoogle Scholar
Jones, EM (1976) Colonization of the Galaxy. Icarus 28, 421422.CrossRefGoogle Scholar
Jones, EM (1981) Discrete calculations of interstellar migration and settlement. Icarus 46, 328336.CrossRefGoogle Scholar
Kennedy, A (2006) Interstellar Travel - The Wait Calculation and the Incentive Trap of Progress. Journal of the British Interplanetary Society 59, 239246.Google Scholar
Kipping, D, Frank, A and Scharf, C (2020) Contact inequality: first contact will likely be with an older civilization. International Journal of Astrobiology 19, 430437.CrossRefGoogle Scholar
Knuth, KH, Powell, RM and Reali, PA (2019) Estimating flight characteristics of anomalous Unidentified Aerial Vehicles. Entropy 21, 939.CrossRefGoogle Scholar
Lacki, BC (2019) A shiny new method for SETI: Specular reflections from interplanetary artifacts. Publications of the Astronomical Society of the Pacific 131, 084401.CrossRefGoogle Scholar
Newman, WI and Sagan, C (1981) Galactic civilizations: Population dynamics and interstellar diffusion. Icarus 46, 293327.CrossRefGoogle Scholar
Office of the Director of National Intelligence (ODNI) (2021) Preliminary Assessment: Unidentified Aerial Phenomena https://www.dni.gov/files/ODNI/documents/assessments/Prelimary-Assessment-UAP-20210625.pdf.Google Scholar
Sagan, C, Drake, FD, Druyan, A, Ferris, T, Lomberg, J and Sagan, LS (1979) Murmurs of Earth - The Voyager Interstellar Record. New York: Ballantine Books.Google Scholar
Shostak, S (2020) SETI: the argument for artefact searches. International Journal of Astrobiology 19, 456461.CrossRefGoogle Scholar
Tipler, FJ (1980) Extraterrestrial intelligent beings do not exist. Quarterly Journal of the Royal Astronomical Society 21, 267281.Google Scholar
Wright, JT (2018) Prior indigenous technological species. International Journal of Astrobiology 17, 96100.CrossRefGoogle Scholar
Wright, JT, Carroll-Nellenback, J, Frank, A and Scharf, C (2021) The dynamics of the transition from Kardashev Type II to Type III galaxies favor technosignature searches in the central regions of galaxies. Research Notes of the American Astronomical Society 5, 141.Google Scholar