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February 12, 20260 citationsOpen Access

Higher-Order Volumetric Expansion and a Geometric Contribution to the Hubble Tension

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HSHUGO CUSTÓDIO DA SILVA

Key Points

  • The aim is to explore how higher-order terms in volumetric expansion affect the measured Hubble constant.
  • Examined the effects of volumetric expansion as a three-dimensional process.
  • Retained second- and third-order terms in the expansion binomial for analysis.
  • Compared results with SH0ES and Planck measurements to assess discrepancies.
  • Identified a geometric correction factor (Δgeom) relevant to the expansion.
  • Showed that including higher-order terms reduces the Hubble tension by about 8.9%.
  • Concluded that a truncation effect contributes to the observed tension without adding new physical theories.

Abstract

The Hubble tension—the discrepancy between locally measured (H0 ≈ 73 km/s/Mpc) and globally inferred (H0 ≈ 67 km/s/Mpc) expansion rates—suggests potential limitations in the standard linear parametrization of cosmic expansion. This work investigates the geometric consequences of treating expansion as a three-dimensional volumetric process evaluated over finite observational intervals. By explicitly retaining second- and third-order terms in the volumetric expansion binomial, a natural geometric correction factor (Δgeom) emerges. We demonstrate that the omission of these higher-order terms in standard first-order linearizations introduces a systematic bias that numerically aligns with the ∼ 8.9% discrepancy observed between SH0ES and Planck results. This framework identifies a purely geometric truncation effect as a contributing factor to the tension without requiring new physical components or modifications to standard Friedmann dynamics.

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Cite This Study

HUGO CUSTÓDIO DA SILVA (2026) studied this question.

synapsesocial.com/papers/698d6e5a5be6419ac0d53fa8https://doi.org/10.5281/zenodo.18601982
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