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April 3, 20260 citationsOpen Access

Simple Gravity II: Strong-Field Structure from a Nonlinear Scalar Field

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EREdnilson Rodrigues

Key Points

  • The aim is to develop a nonlinear scalar-field theory of gravity that captures strong-field dynamics.
  • Formulated gravity using a nonlinear scalar field without external assumptions.
  • Reduced nonlinear vacuum equations to Laplace's equation for analytical solutions.
  • Derived orbital dynamics of compact binary systems with explicit equations for inspiral phenomena.
  • Constructed a radiative sector to provide observable characteristics of gravitational waves.
  • Identified photon sphere and ISCO as intrinsic features from the field's self-interaction.
  • Predicted a higher inspiral cutoff frequency compared to standard relativistic models.
  • Yielded explicit expressions for waveform amplitude and phase evolution, essential for gravitational-wave detection.

Abstract

This work presents a nonlinear scalar-field formulation of gravity in which the strong-field regime is derived directly from the field equation without the use of external ansatz or phenomenological regularization. Through an exact field redefinition, the nonlinear vacuum equation reduces to Laplace's equation, allowing a closed-form spherical solution to be obtained analytically. This solution naturally generates key features of compact-object dynamics, including the existence of a photon sphere and an innermost stable circular orbit (ISCO), which emerge as intrinsic consequences of the field's self-interaction. Based on this framework, the orbital dynamics of compact binary systems are derived, including energy balance, frequency evolution, and a complete parametric description of the strong-field chirp. The radiative sector is constructed consistently, yielding explicit expressions for waveform amplitude, phase evolution, and inspiral termination. A concrete observational example is provided, showing that the theory predicts a higher inspiral cutoff frequency compared to the relativistic prediction. This deviation constitutes a clear and testable observational signature in gravitational-wave data. The formulation provides a non-geometric description of gravity while maintaining internal consistency between static, dynamical, and radiative regimes. The domain of validity and current observational status are discussed, positioning the theory as a testable alternative model for strong-field gravitational phenomena.

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Cite This Study

Ednilson Rodrigues (2026) studied this question.

synapsesocial.com/papers/69cf5e865a333a821460cf73https://doi.org/10.5281/zenodo.19345720
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Also Consider

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

  1. 1Simple Gravity II: Strong-Field Structure and Radiative Dynamics (Revised Version)2026
  2. 2Simple Gravity II: Dynamical Structure and Radiation2026
  3. 3Simple Gravity: A Nonlinear Scalar Field Theory of Gravitation2026
  4. 4Simple Gravity: A Nonlinear Scalar Field Approach to Gravitation2026
  5. 5Simple Gravity: A Scalar Field Formulation of Light Propagation in the Weak-Field Regime2026