The Schwarzschild Proton: Difference between revisions
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{{Infobox paper | {{Infobox paper | ||
| title = The Schwarzschild Proton | | title = The Schwarzschild Proton | ||
| url = [https://web.archive.org/web/20090824031449/http://theresonanceproject.org/pdf/schwarzschild_proton_a4.pdf Link to paper (Internet Archive)] | |||
| author = [[Nassim Haramein]] | | author = [[Nassim Haramein]] | ||
| keywords = [[black holes]], [[Schwarzschild radius]], [[proton]], [[strong force]], [[anomalous magnetic moment]] | | keywords = [[black holes]], [[Schwarzschild radius]], [[proton]], [[strong force]], [[anomalous magnetic moment]] | ||
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| num_pages = 8 | | num_pages = 8 | ||
}} | }} | ||
'''Read the full paper''' [https://web.archive.org/web/20090824031449/http://theresonanceproject.org/pdf/schwarzschild_proton_a4.pdf here] ''(archived copy — the original link is no longer available)'' | |||
==Abstract== | ==Abstract== | ||
Latest revision as of 08:28, 20 July 2026
| Scientific Paper | |
|---|---|
| Title | The Schwarzschild Proton |
| Read in full | Link to paper (Internet Archive) |
| Author(s) | Nassim Haramein |
| Keywords | black holes, Schwarzschild radius, proton, strong force, anomalous magnetic moment |
| Published | 2009 |
| No. of pages | 8 |
Read the full paper here (archived copy — the original link is no longer available)
Abstract
We review our model of a proton that obeys the Schwarzschild condition. We find that only a very small percentage (~10-39%) of the vacuum fluctuations available within a proton volume need be cohered and converted to mass-energy in order for the proton to meet the Schwarzschild condition. This proportion is similar to that between gravitation and the strong force where gravitation is thought to be ~10-40 weaker than the strong force. Gravitational attraction between two contiguous Schwarzschild protons can easily accommodate both nucleon and quark confinement. In this picture, we can treat ?strong? gravity as the strong force. We calculate that two contiguous Schwarzschild protons would rotate at c and have a period of 10-23s and a frequency of 1022 Hz which is characteristic of the strong force interaction time and a close approximation of the gamma emission typically associated with nuclear decay. We include a scaling law and find that the Schwarzschild proton falls near the least squares trend line for organized matter. Using a semi-classical model, we find that a proton charge orbiting at a proton radius at c generates a good approximation to the measured anomalous magnetic moment.