| _version_ | 1866901775701770240 |
|---|---|
| author | Atmakuri, Yaswanth |
| author_facet | Atmakuri, Yaswanth |
| contents | <p>This work introduces the <strong>Quantum Gravitational Theory Through Compression (QGTC)</strong>, a new approach to understanding gravity at the quantum level. The theory proposes that gravity is not simply the curvature of spacetime as in Einstein’s relativity, but a quantum effect that emerges when mass and energy compress spacetime beyond a critical threshold. In this framework, the <strong>graviton</strong> is not produced through particle collisions but appears as a natural quantum byproduct of spacetime compression.</p> <p>The paper outlines the theoretical foundations of QGTC, its connection to the Higgs field and mass-energy interactions, and predictions such as quantum deviations in gravitational waves, high-frequency gravitational signals, and compression imprints in the early universe. Possible experimental approaches include gravitational wave observatories, astrophysical lensing measurements, and cosmic microwave background studies.</p> <p>This theory aims to bridge the gap between quantum field theory and general relativity, motivating further mathematical development and experimental exploration of quantum gravity</p> |
| format | Recurso digital |
| id | zenodo_https___doi_org_10_5281_zenodo_17232888 |
| institution | Zenodo |
| language | |
| publishDate | 2025 |
| publisher | Zenodo |
| record_format | zenodo |
| spellingShingle | Quantum Gravitational Theory Through Compression (QGTC) Atmakuri, Yaswanth Quantum Gravity, Graviton, Spacetime Compression, Higgs Field, Gravitational Waves, QGTC <p>This work introduces the <strong>Quantum Gravitational Theory Through Compression (QGTC)</strong>, a new approach to understanding gravity at the quantum level. The theory proposes that gravity is not simply the curvature of spacetime as in Einstein’s relativity, but a quantum effect that emerges when mass and energy compress spacetime beyond a critical threshold. In this framework, the <strong>graviton</strong> is not produced through particle collisions but appears as a natural quantum byproduct of spacetime compression.</p> <p>The paper outlines the theoretical foundations of QGTC, its connection to the Higgs field and mass-energy interactions, and predictions such as quantum deviations in gravitational waves, high-frequency gravitational signals, and compression imprints in the early universe. Possible experimental approaches include gravitational wave observatories, astrophysical lensing measurements, and cosmic microwave background studies.</p> <p>This theory aims to bridge the gap between quantum field theory and general relativity, motivating further mathematical development and experimental exploration of quantum gravity</p> |
| title | Quantum Gravitational Theory Through Compression (QGTC) |
| topic | Quantum Gravity, Graviton, Spacetime Compression, Higgs Field, Gravitational Waves, QGTC |
| url | https://doi.org/10.5281/zenodo.17232888 |