There is a newer version of the record available.

Published June 3, 2026 | Version v1
Publication Open

World Bubble Nested Dimensional-Spatial Model

Authors/Creators

Description

This paper proposes a fundamental physical framework starting from a single postulate of primitive source energy, constructing nested world-bubble dimensional evolution rules from zero-dimensional elementary bubbles. The model naturally derives dark energy, dark matter, quantum fluctuation and cosmic expansion mechanism without extra free parameters or hypothetical fields like string/M-theory. Three falsifiable experimental predictions are put forward: submicron gravitational deviation from inverse-square law, quantum decoherence anomaly in single-mode optical fiber, and room-temperature atmospheric-pressure superconductivity with fractal dimension between 2.92~2.98. Attached files include 3D printing source code and  .stl  solid model for superconducting material, which can be directly printed and experimentally verified to falsify or validate the theoretical forecast. The model is consistent with Planck CMB and DESI cosmic observational data on dark energy equation of state parameter w.

Files

3D_d_f.zip

Files (17.8 MB)

Name Size Download all
md5:1508df32a4824838a81a5b3fda638e06
16.0 MB Preview Download
md5:91df5acd20484ba17cda4c5439972932
1.8 MB Preview Download

Additional details

Dates

Submitted
2026-06-03

References

  • [1] H. Everett, III, "Relative state" formulation of quantum mechanics, Rev. Mod. Phys. 29, 454–462 (1957) [2] P. A. M. Dirac, The cosmological constants, Nature 139, 323 (1937) [3] A. G. Riess, A. V. Filippenko, P. Challis, et al., Observational evidence from supernovae for an accelerating universe and a cosmological constant, Astron. J. 116, 1009–1038 (1998)[4] S. Perlmutter, G. Aldering, G. Goldhaber, et al., Measurements of Ω and Λ from 42 high-redshift supernovae, Astrophys. J. 517, 565–586 (1999) [5] S. Ryu, T. Takayanagi, Holographic derivation of entanglement entropy from AdS/CFT, Phys. Rev. Lett. 96, 181602 (2006) [6] J. Maldacena, The large N limit of superconformal field theories and supergravity, Adv. Theor. Math. Phys. 2, 231–252 (1998) [7] DESI Collaboration, DESI 2024: Constraints on dark energy from BAO with the first year of data, arXiv:2404.xxxxx (2024) [8] Planck Collaboration, N. Aghanim, Y. Akrami, M. Ashdown, et al., Planck 2018 results. VI. Cosmological parameters, Astron. Astrophys. 641, A6 (2020) [9] Planck Collaboration, P. A. R. Ade, N. Aghanim, et al., Planck 2013 results. XVI. Cosmological parameters, Astron. Astrophys. 571, A16 (2014) [10] R. B. Tully, J. R. Fisher, A new method of determining distances to galaxies, Astron. Astrophys. 54, 661–673 (1977) [11] S. Weinberg, The cosmological constant problem, Rev. Mod. Phys. 61, 1–23 (1989) [12] V. Sahni, A. A. Starobinsky, Dark energy: the puzzle of the millennium, Int. J. Mod. Phys. D 9, 373–444 (2000) [13] P. J. E. Peebles, B. Ratra, The cosmological constant and dark energy, Rev. Mod. Phys. 75, 559–606 (2003) [14] A. Einstein, Die Feldgleichungen der Gravitation, Sitzungsber. Preuss. Akad. Wiss. 1915, 844–847 (1915) [15] A. Friedmann, Über die Krümmung des Raumes, Z. Phys. 10, 377–386 (1922) [16] E. Hubble, A relation between distance and radial velocity among extra-galactic nebulae, Proc. Natl. Acad. Sci. USA 15, 168–173 (1929) [17] S. Dodelson, Modern Cosmology, Academic Press, San Diego (2003), ISBN 0-12-219141-6 [18] E. W. Kolb, M. S. Turner, The Early Universe, Addison-Wesley, Redwood City (1990), ISBN 0-201-16294-8 [19] LIGO Scientific Collaboration and Virgo Collaboration, B. P. Abbott, et al., Observation of gravitational waves from a binary black hole merger, Phys. Rev. Lett. 116, 061102 (2016) [20] LIGO Scientific Collaboration and Virgo Collaboration, B. P. Abbott, et al., GW170817: Observation of gravitational waves from a binary neutron star inspiral, Phys. Rev. Lett. 119, 161101 (2017)