| _version_ | 1866902329575342080 |
|---|---|
| author | Partin, Greg |
| author_facet | Partin, Greg |
| contents | <p>We present a cosmological framework in which late-time cosmic acceleration emerges dynamically from the time evolution of the χ-field in a deterministic lattice wave equation. Without introducing a cosmological constant, vacuum energy, or modifications to the governing Klein-Gordon equation, we show that slow χ-relaxation produces de Sitter-like expansion with an effective equation of state consistent with w ≈ −1.</p> <p>The emergent scale factor is defined operationally through wavelength stretching and propagation delay within the lattice, yielding an expansion history that is observationally indistinguishable from ΛCDM at the background level. We validate the mechanism through eight independent tests: four theoretical (acceleration confirmation, equation-of-state extraction, energy conservation, null control) and four observational, including 1,048 Pantheon Type Ia supernovae, BAO H(z) measurements, cosmic chronometers, and the present-day deceleration parameter.</p> <p>All tests pass without additional free parameters beyond the χ-relaxation timescale. The results demonstrate that dark-energy-like behavior can arise from the same wave equation responsible for emergent gravity, reframing cosmic acceleration as a kinematic consequence of field relaxation rather than a separate physical energy component.</p> <p>Code, data, and analysis scripts are provided to enable full reproduction of the results.</p> |
| format | Recurso digital |
| id | zenodo_https___doi_org_10_5281_zenodo_18227533 |
| institution | Zenodo |
| language | |
| publishDate | 2026 |
| publisher | Zenodo |
| record_format | zenodo |
| spellingShingle | Emergent Cosmic Acceleration from χ-Field Relaxation in a Deterministic Lattice Universe Partin, Greg cosmic acceleration dark energy cosmology Klein-Gordon equation emergent gravity de Sitter expansion equation of state ΛCDM degeneracy deterministic physics wave-based cosmology <p>We present a cosmological framework in which late-time cosmic acceleration emerges dynamically from the time evolution of the χ-field in a deterministic lattice wave equation. Without introducing a cosmological constant, vacuum energy, or modifications to the governing Klein-Gordon equation, we show that slow χ-relaxation produces de Sitter-like expansion with an effective equation of state consistent with w ≈ −1.</p> <p>The emergent scale factor is defined operationally through wavelength stretching and propagation delay within the lattice, yielding an expansion history that is observationally indistinguishable from ΛCDM at the background level. We validate the mechanism through eight independent tests: four theoretical (acceleration confirmation, equation-of-state extraction, energy conservation, null control) and four observational, including 1,048 Pantheon Type Ia supernovae, BAO H(z) measurements, cosmic chronometers, and the present-day deceleration parameter.</p> <p>All tests pass without additional free parameters beyond the χ-relaxation timescale. The results demonstrate that dark-energy-like behavior can arise from the same wave equation responsible for emergent gravity, reframing cosmic acceleration as a kinematic consequence of field relaxation rather than a separate physical energy component.</p> <p>Code, data, and analysis scripts are provided to enable full reproduction of the results.</p> |
| title | Emergent Cosmic Acceleration from χ-Field Relaxation in a Deterministic Lattice Universe |
| topic | cosmic acceleration dark energy cosmology Klein-Gordon equation emergent gravity de Sitter expansion equation of state ΛCDM degeneracy deterministic physics wave-based cosmology |
| url | https://doi.org/10.5281/zenodo.18227533 |