Submitted:
22 September 2025
Posted:
24 September 2025
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Abstract
Keywords:
1. Introduction
2. Massive Gravity and Gravitational Wave Modes
2.1. Theoretical Background
2.2. Seismic Waves as Gravitational Wave Modes
- P-waves (primary, longitudinal) as longitudinal helicity-0 gravitational wave modes.
- S-waves (secondary, transverse) as transverse helicity-2 gravitational modes.
3. Earth as a GW Cavity
4. Observational Clues
4.1. Prompt Gravity Signals
4.2. Free Oscillations of the Earth
5. Predictions and Experimental Probes
- Seismic dispersion relations should include graviton mass dependence.
- Gravitational observatories (e.g., LIGO) might detect correlated signatures during seismic events.
- Deep-earth anomalies and large-scale gravitational structures could interact to produce standing modes.
6. Background: Massive Gravity Theories
7. Earth as a Gravitational Wave Conductor
8. Observational Motivation
8.1. Prompt Gravity Signals
8.2. Free Earth Oscillations as Gravitational Eigenmodes
8.3. Gravitational Radiation from Seismic Sources
9. Prediction Power
9.1. Gravitational Polarization Signatures in Seismic Data
9.2. Modified Dispersion Relations at Depth or During Gravitational Lensing
9.3. Cross-Correlation Between LIGO/Virgo and Seismic Networks
9.4. Influence of Tidal Forces on Longitudinal Graviton Modes
10. Conclusions
11. Theoretical Anchors
11.1. Massive Gravity and the dRGT Model
11.2. Bimetric Gravity and Dynamical Reference Metrics
11.3. Seismology as Curved Spacetime Propagation
11.4. Effective Elastic Moduli from Gravitational Action
12. Experimental Challenges
12.1. Disentangling Elastic from Gravitational Components
12.2. Analyzing Deep-Earth Coupling to Gravitational Fields
12.3. Attenuation Models as a Function of Graviton Mass
12.4. Instrumental and Data Limitations
12.5. Conclusions
13. A Refined Hypothesis
14. Primordial Black Holes as Geophysical Agents
14.1. Theoretical Considerations
14.2. Seismic Signatures and Gravitational Perturbations
14.3. Volcanic and Thermal Phenomena
14.4. Constraints from Planetary Stability and Observations
14.5. Conclusions
15. Hypothesis: Mid-Ocean Ridges as Manifestations of Cosmic Strings and Internal Black Holes
15.1. Internal Black Holes and Geophysical Energy Sources
15.2. Cosmic Strings and Mid-Ocean Ridges
15.3. Gravitational Mode Conversion and Anomalous Seismicity
15.4. Constraints and Detection
16. Gravitational Anomalies as Indicators of Black Holes and Cosmic Strings within Earth
16.1. Quantifying Gravitational Anomalies
16.2. Point-Source Models: Black Holes
16.3. Line Source Models: Cosmic Strings
16.4. Geophysical Inversion and Localization
16.5. Multimodal Correlation
- Deep-focus earthquakes
- Free oscillation frequencies
- Heat flow maxima
- Magnetic anomalies
- Oceanic ridge spreading centers
16.6. Conclusions
17. Mid-Ocean Ridges as Manifestations of Cosmic Strings and Internal Black Holes
17.1. Cosmic String Spacetime Geometry and Tectonic Alignment
17.2. Energy Budget of Spreading Ridges and String Interaction
17.3. Internal Black Holes as Supplemental Energy Sources
17.4. Correlating Seismic and Gravitational Observables
17.5. Conclusions
18. Mechanisms of Spreading Initiated by Cosmic Strings and Observational Extensions
18.1. String Tension and Lithospheric Fracture Propagation
18.2. Thermal Coupling via Mantle Convection
18.3. Cusp Events and Episodic Seismicity
18.4. Electromagnetic and Neutrino Signatures
18.5. Conclusions
19. Gravitational Anomalies as Indicators of Black Holes and Cosmic Strings
19.1. Gravitational Anomalies and Mass Distribution
19.2. Cosmic String Line Sources and Metric Defects
19.3. Inverse Problem Formulation for Source Localization
19.4. Integration with Satellite Datasets
19.5. Conclusions
20. Deeper Analysis: Mapping and Interpreting Gravitational Anomalies
20.1. Case Studies: Anomalies in Bangui and the Indian Ocean
20.2. Modeling Noise and Confounders in Anomaly Interpretation
20.3. Modal Perturbations and Gravimetric Tides
20.4. Conclusions
21. Final Thoughts: Toward a Multi-Scale Theory Linking Cosmic and Geophysical Structures
21.1. A Multi-Scale Framework: From Planck to Planetary
21.2. Formalism and Observable Predictions
21.3. Interdisciplinary Integration and Challenges
21.4. A Vision for a Speculative Monograph
21.5. Conclusions
22. Conclusions
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