QUANTUM GRAVITY BRIDGING THE GAP BETWEEN NEWTONIAN GRAVITY EINSTEIN FIELD EQUATIONS AND QUANTUM MECHANICS_GOING FOR A DEEPER UNDERSTANDING
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| Natura: | Recurso digital |
| Lingua: | inglese |
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Zenodo
2025
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| _version_ | 1866902150120996864 |
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| author | KINET, Guido |
| author_facet | KINET, Guido |
| contents | <p><span lang="EN-US">This expanded edition as the previous paper “ QUANTUM GRAVITY BRIDGING THE GAP BETWEEN NEWTONIAN GRAVITY EINSTEIN FIELD EQUATIONS AND QUANTUM MECHANICS” (<a href="https://doi.org/10.5281/zenodo.13926234">https://doi.org/10.5281/zenodo.13926234</a>) did presents a novel framework that redefines gravity not as a fundamental force or simple curvature of spacetime, but as an emergent energy phenomenon arising from a discretized, dynamic vacuum structure. By introducing the concept of gravity as an energy trap, this reinterpretation bridges classical and quantum domains, offering a unified perspective that integrates Newtonian mechanics, Einstein’s field equations, and quantum field theory.</span></p> <p><span lang="EN-US">This expanded edition includes three annexes:</span></p> <ul> <li><strong><span lang="EN-US">Annex A</span></strong><span lang="EN-US"> redefines the stress-energy tensor to include vibrational and interaction energies, creating a feedback loop between energy and spacetime geometry. This challenges the need for a cosmological constant and opens new avenues for explaining cosmic acceleration and gravitational wave behavior.</span></li> <li><strong><span lang="EN-US">Annex B</span></strong><span lang="EN-US"> introduces the Planck Hexagon Conjecture, modeling spacetime as a layered matrix of hexagonal Planck-scale units. Gravity emerges from energy deficits and tension gradients within this matrix, reframing Newton’s law as a field-theoretic interaction.</span></li> <li><strong><span lang="EN-US">Annex C</span></strong><span lang="EN-US"> explores the behavior of the Ricci and Einstein tensors in nearly flat spacetime, revealing that even in a vacuum-like state, quantum fluctuations persist. These tensors serve as benchmarks and bridges between classical geometry and quantum structure, ensuring continuity with general relativity while encoding subtle quantum effects.</span></li> </ul> <p><span lang="EN-US">Together, these insights offer a unified theory of quantum gravity with profound implications for black hole physics, cosmology, and the nature of spacetime itself. This work invites a reexamination of gravitational phenomena through the lens of energy dynamics, geometric quantization, and quantum fluctuations paving the way toward a deeper understanding of the universe.</span></p> |
| format | Recurso digital |
| id | zenodo_https___doi_org_10_5281_zenodo_17296652 |
| institution | Zenodo |
| language | eng |
| publishDate | 2025 |
| publisher | Zenodo |
| record_format | zenodo |
| spellingShingle | QUANTUM GRAVITY BRIDGING THE GAP BETWEEN NEWTONIAN GRAVITY EINSTEIN FIELD EQUATIONS AND QUANTUM MECHANICS_GOING FOR A DEEPER UNDERSTANDING KINET, Guido Planck conjecture matrix Hannes Olof Gosta Alfvén quantifiable space elementary particles coherence decoherence gravity waves Newton Einstein's field equations space curvature action function Lagrangian density Ricci tensor Ricci scalar quantum gravity <p><span lang="EN-US">This expanded edition as the previous paper “ QUANTUM GRAVITY BRIDGING THE GAP BETWEEN NEWTONIAN GRAVITY EINSTEIN FIELD EQUATIONS AND QUANTUM MECHANICS” (<a href="https://doi.org/10.5281/zenodo.13926234">https://doi.org/10.5281/zenodo.13926234</a>) did presents a novel framework that redefines gravity not as a fundamental force or simple curvature of spacetime, but as an emergent energy phenomenon arising from a discretized, dynamic vacuum structure. By introducing the concept of gravity as an energy trap, this reinterpretation bridges classical and quantum domains, offering a unified perspective that integrates Newtonian mechanics, Einstein’s field equations, and quantum field theory.</span></p> <p><span lang="EN-US">This expanded edition includes three annexes:</span></p> <ul> <li><strong><span lang="EN-US">Annex A</span></strong><span lang="EN-US"> redefines the stress-energy tensor to include vibrational and interaction energies, creating a feedback loop between energy and spacetime geometry. This challenges the need for a cosmological constant and opens new avenues for explaining cosmic acceleration and gravitational wave behavior.</span></li> <li><strong><span lang="EN-US">Annex B</span></strong><span lang="EN-US"> introduces the Planck Hexagon Conjecture, modeling spacetime as a layered matrix of hexagonal Planck-scale units. Gravity emerges from energy deficits and tension gradients within this matrix, reframing Newton’s law as a field-theoretic interaction.</span></li> <li><strong><span lang="EN-US">Annex C</span></strong><span lang="EN-US"> explores the behavior of the Ricci and Einstein tensors in nearly flat spacetime, revealing that even in a vacuum-like state, quantum fluctuations persist. These tensors serve as benchmarks and bridges between classical geometry and quantum structure, ensuring continuity with general relativity while encoding subtle quantum effects.</span></li> </ul> <p><span lang="EN-US">Together, these insights offer a unified theory of quantum gravity with profound implications for black hole physics, cosmology, and the nature of spacetime itself. This work invites a reexamination of gravitational phenomena through the lens of energy dynamics, geometric quantization, and quantum fluctuations paving the way toward a deeper understanding of the universe.</span></p> |
| title | QUANTUM GRAVITY BRIDGING THE GAP BETWEEN NEWTONIAN GRAVITY EINSTEIN FIELD EQUATIONS AND QUANTUM MECHANICS_GOING FOR A DEEPER UNDERSTANDING |
| topic | Planck conjecture matrix Hannes Olof Gosta Alfvén quantifiable space elementary particles coherence decoherence gravity waves Newton Einstein's field equations space curvature action function Lagrangian density Ricci tensor Ricci scalar quantum gravity |
| url | https://doi.org/10.5281/zenodo.17296652 |