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May 19, 20260 citationsOpen Access

The Observable Universe as a Non-Equilibrium Dissipative Structure: Dark Energy, the Cosmological Constant, and the De Sitter Attractor From a Thermodynamic Identity

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AMAlbert Magro

Key Points

  • This research aims to understand the universe as a dissipative system governed by thermodynamic principles, focusing on dark energy and the cosmological constant.
  • Explores the thermodynamic identity governing the universe's behavior under non-equilibrium conditions.
  • Derives dark energy density and examines thermodynamic properties at specific cosmic epochs.
  • Resolves Hubble tension using epoch-dependent calculations derived from a thermodynamic trajectory.
  • Calculated dark energy density as ρ_dark = 5.99 × 10⁻²⁷ kg m⁻³, coinciding with Planck Collaboration's measurement within 0.5%.
  • Resolved the Hubble tension with effective Hubble constant H₀_eff(z) of 66.94 km s⁻¹ Mpc⁻¹ at z = 0, aligning with CMB results within 0.7%.
  • Demonstrated that H₀ is not constant but a variable dependent on the thermodynamic state of the universe at different epochs.

Abstract

The framework takes the thermodynamic identity C (t) /P (t) = F (t) → 1 as a foundational postulate governing any persistent self-organizing dissipative system maintained far from equilibrium by continuous energy throughput and explores its cosmological consequences. The observable universe is treated as precisely such a system — a causally closed volume bounded by the cosmological event horizon — whose thermodynamic trajectory from the matter-dark energy transition toward the terminal de Sitter state is governed by this identity throughout. The persistence capacity comprises two terms: a time-varying expansion term P (t) ₑxpansion and a geometrically fixed horizon entropy term Pₕorizon = c⁵/2G, derived from Bekenstein-Hawking entropy and Gibbons-Hawking temperature. The RH terms cancel identically, yielding a result independent of epoch and horizon radius. At the unique cosmological equipartition epoch — identified with the onset of accelerated expansion at z ≈ 0. 6 — the dark energy density is derived as ρdark = c³/8πGR²HṘH, yielding 5. 99 × 10⁻²⁷ kg m⁻³, within 0. 5% of the Planck Collaboration measured value, with no free parameters. The cosmological constant problem is identified as the compounded consequence of two errors: thermodynamic misclassification of the vacuum, and application of Planck-scale quantum field theory to a phenomenon governed at horizon scale by c⁵/2G. The Hubble tension is quantitatively resolved: from Planck 2018 parameters alone, the epoch-dependent H₀ₑff (z) derived from the tanh² thermodynamic trajectory recovers 66. 94 km s⁻¹ Mpc⁻¹ at z = 0, agreeing with the CMB to within 0. 7%, and a weighted mean of 73. 0–73. 5 km s⁻¹ Mpc⁻¹ across the distance-ladder window, agreeing with H0DN's 73. 50 ± 0. 81 km s⁻¹ Mpc⁻¹ to within 0. 7%. Both values emerge from the same equation at thermodynamically distinct epochs. H₀ is not a constant — it is an epoch-dependent thermodynamic state variable

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Cite This Study

Albert Magro (2026) studied this question.

synapsesocial.com/papers/6a0bfe2d166b51b53d3796bahttps://doi.org/10.5281/zenodo.20255678
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1THE GEOMETRIC ORIGIN OF THE COSMIC COINCIDENCE: HORIZON-BOUNDARY POWER EQUIVALENCE AND THE DE SITTER ATTRACTOR2026
  2. 2Horizon Thermodynamics and the Cosmological Constant: A Holographic Dark Energy Note on Why Now?2026
  3. 3Thermodynamic Limits of the Universe: Derivation of the Volumetric Tension Constant from Bekenstein-Hawking Entropy2026
  4. 4Entropic Cosmology: Accelerated Expansion of the Universe as Relaxation to the Holographic Attractor ln 22026
  5. 5The R-Universe: A Renormalization-Group Origin of Dark Energy2026