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March 19, 20260 citationsOpen Access

Primary Falsifiable Prediction of the CCEGA Framework: Corrected Radion Excitation Analysis, Detection Window, and Physical Interpretation

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MSMarc López Sánchez

Key Points

  • The research aims to predict radion excitation amplitude and its effects within the CCEGA framework.
  • Derivation of excitation amplitude using driven harmonic oscillator model
  • Identification of three dynamical regimes based on the dimensionless ratio μ
  • Analysis of detectable sideband window for gravitational waves
  • Identified unique excitation regime for CCEGA with clear discriminant power
  • Defined specific frequency range for detectable sidebands and echo delays
  • Conjectured potential links between echo delay, frequency sidebands, and extra-dimensional geometry

Abstract

The Curvature-Controlled Extra-Dimensional Gravity and Emergent Unification (CCEGA) framework produces a two-dimensional gravitational-wave discriminant consisting of post-merger echo delays and radion-induced frequency sidebands. A previous analysis assumed a uniform radion excitation amplitude δρc/ρc ~ 10⁻³ across the full mass window m_φ ∈ 10⁻¹³, 10⁻¹¹ eV. Here we derive the excitation amplitude from first principles using a driven harmonic oscillator model with bulk overlap suppression. The analysis identifies three dynamical regimes governed by the dimensionless ratio μ ≡ m_φ Rₛ/ (ℏc): quasi-static (μ ≪ 1), resonant (μ ~ 1), and oscillatory (μ ≫ 1). The detectable sideband window is restricted to m_φ ∈ 10⁻¹², 10⁻¹¹ eV, corresponding to Δfᵣad ∈ 240, 2400 Hz. The corrected prediction remains unique to CCEGA and retains full discriminant power through the functional correlation between τₑcho and Δfᵣad. We further discuss the physical interpretation of a potential validation: the simultaneous confirmation of echo delay, frequency sidebands, and their geometric correlation would constitute evidence that spacetime singularities are regulated by extra-dimensional geometry, that the hierarchy problem has a classical geometric solution, and that dark energy arises from the modulus stabilisation potential without fine-tuning. This would represent the unification of four open problems in fundamental physics under a single geometric mechanism.

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Cite This Study

Marc López Sánchez (2026) studied this question.

synapsesocial.com/papers/69bb9336496e729e62981252https://doi.org/10.5281/zenodo.19071707
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