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April 16, 2026Universe0 citationsOpen Access

Dyson Spheres on H–R Diagram

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AAAmirnezam Amiri

Key Points

  • This research aims to explore the characteristics of Dyson spheres around various host stars and their observational signatures.
  • Analyzed equilibrium temperatures and radiative outputs of Dyson spheres around white dwarfs and red M-dwarfs.
  • Utilized radiative balance arguments to derive temperature–radius relationships.
  • Placed hypothetical Dyson sphere structures on the H–R diagram to evaluate their detection potential.
  • Dyson spheres around white dwarfs emit cooler, fainter blackbody radiation in the near- to mid-infrared range.
  • Dyson spheres around M-dwarfs radiate more strongly at longer wavelengths.
  • Equilibrium temperatures decrease as the radius inversely relates to the square root of distance.
  • Total luminosity and bolometric flux remain constant, dictated by the stellar outputs.

Abstract

The construction of Dyson spheres, megastructures designed to capture the total radiative output of stars, can be one of the most compelling techno-signature scenarios for advanced extraterrestrial civilizations. By considering equilibrium temperatures, we investigate the luminosities and fluxes of Dyson spheres built around two promising classes of host stars: white dwarfs and red M-dwarfs. Using radiative balance arguments and representative stellar parameters, we compute the temperature–radius relationship for full energy interception and place these hypothetical structures on the Hertzsprung–Russell (H–R) diagram to assess their observational signatures. Our results show that Dyson spheres around white dwarfs produce cooler and fainter blackbody emissions, peaking in the near- to mid-infrared, while those around M-dwarfs radiate more strongly but at longer wavelengths. In both cases, the equilibrium temperature decreases as RD−1/2, while the total luminosity and observed bolometric flux remain fixed by the stellar output. These findings highlight the astrophysical suitability of low-luminosity stars as Dyson sphere hosts and provide practical constraints for future techno-signature searches using infrared surveys.

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Cite This Study

Amirnezam Amiri (2026) studied this question.

synapsesocial.com/papers/69e07dad2f7e8953b7cbe9cahttps://doi.org/10.3390/universe12040113
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