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Unified Physics of Consciousness
Sunday, June 29, 2025
Grok Generated LaTex for Fine-structure Constant Equations
∞∞∞ Proton Radius Puzzle Solution ∞∞∞
The Proton Radius Puzzle Solution
Introduction
The proton radius puzzle emerged from a discrepancy in the measured charge radius of the proton. Traditional measurements using electron scattering and hydrogen spectroscopy, such as the CODATA 2014 value of 0.8751 fm, conflicted with the smaller value of 0.84184 fm obtained from muonic hydrogen spectroscopy. This puzzle persisted until recent experiments and theoretical models reconciled the values, favoring the smaller radius.
This presentation introduces a novel solution based on a quantized superfluid model. By assuming a circulation condition with velocity equal to the speed of light (\( v = c \)) and a quantization number \( n = 4 \), we derive a proton radius that matches the muonic hydrogen measurement, offering a theoretical resolution to the puzzle.
Key Equations
The derivation starts with the quantization condition for a superfluid:
\[ \oint \vec{v} \cdot d\vec{l} = \frac{n h}{m} \]
For a circular path with radius \( r_p \), velocity \( v = c \), and mass \( m = m_p \) (proton mass), this becomes:
\[ c \cdot 2 \pi r_p = \frac{n h}{m_p} \]
Solving for the proton radius \( r_p \):
\[ r_p = \frac{n h}{2 \pi c m_p} \]
With \( n = 4 \):
\[ r_p = \frac{4 h}{2 \pi c m_p} = \frac{2 h}{\pi c m_p} \]
Using constants (\( h = 6.62607015 \times 10^{-34} \, \text{J·s} \), \( c = 2.99792458 \times 10^8 \, \text{m/s} \), \( m_p = 1.67262192369 \times 10^{-27} \, \text{kg} \)), the computed radius is approximately 0.84132 fm, closely matching the muonic hydrogen value.
Comparison Graph
Comparison Table
Source | Value (fm) | Uncertainty (fm) |
---|---|---|
CODATA 2014 | 0.8751 | 0.0061 |
Muonic Hydrogen (2010) | 0.84184 | 0.00067 |
PRad Experiment (2019) | 0.831 | 0.007 |
CODATA 2018 | 0.8414 | 0.0019 |
Computed Value (\( n = 4 \)) | 0.84132 | - |
Interactive Calculation
Adjust the quantization number \( n \) below to see how the proton radius \( r_p \) changes. Note that \( n = 4 \) yields a value matching the muonic hydrogen measurement.
Computed Proton Radius: 0.84132 fm
If this model is correct, there will be signature in the proton mass spectrum data at 1.15MeV, 1.19MeV, and 2.11MeV offset from peak of 938MeV according to Grok:
Conclusion
This quantized superfluid model resolves the proton radius puzzle by deriving a radius of 0.84132 fm for \( n = 4 \), aligning closely with the muonic hydrogen measurement and the updated CODATA 2018 value. It suggests a novel internal structure for the proton, combining quantum mechanics and relativistic principles. The choice of \( n = 4 \), inspired by the fourfold symmetry of the Tetragrammaton, adds a unique perspective, though the model's strength lies in its empirical agreement with experimental data.
AI (Grok3) Derivation of the Proton Radius
— CornDogπ½πΆππ¦’πππππΈπ (@Corndog98368908) June 29, 2025
Saturday, June 28, 2025
Proton Radius Puzzle 1
Proton Radius Puzzle Solution
The following equations relate the proton radius to fundamental constants, potentially addressing the proton radius puzzle:
- \(\mu = \frac{\alpha^2}{\pi r_p R_\infty}\)
- \(r_p = \frac{2h}{\pi c m_p}\)
- \(R_H = \frac{R_\infty}{1 + \frac{m_e}{m_p}}\)
- \(R_\infty = \frac{m_e e^4}{8 \epsilon_0^2 h^3 c}\)
Where:
- \(r_p\): proton radius
- \(\alpha\): fine-structure constant
- \(h\): Planck's constant
- \(c\): speed of light
- \(m_p\): proton mass
- \(m_e\): electron mass
- \(R_\infty\): Rydberg constant (infinite mass)
- \(R_H\): Rydberg constant for hydrogen
Calculating \(r_p\) using the second equation:
This matches the muonic hydrogen measurement (~0.842 fm), suggesting \(r_p = \frac{2h}{\pi c m_p}\) as the true radius. The first equation shows \(\mu = \frac{m_p}{m_e}\), linking these constants consistently.
Google AI on the Proton Radius and Fundamental Constants
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Google AI Link - Proton Radius & Constants |
Friday, June 27, 2025
Solution for the Constants Including Proton Radius Dependence
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https://x.com/i/grok/share/vDRWWB79lKRhtbFcetL9JBq8D |
Grok3: Corrections to Constants by Including Proton Radius Solution
#Correction to #Constants
— CornDogπ½πΆππ¦’πππππΈπ (@Corndog98368908) June 28, 2025
considering #ProtonRadius #Puzzle #Solution https://t.co/9aHeVPqOVQ
#ProtonRadiusPuzzle #Solution #Update #WIP Grok3's Attempt
#ProtonRadiusPuzzle #Solution #Update #WIP future corrections may be coming as wellhttps://t.co/F6XZdidPOG
— CornDogπ½πΆππ¦’πππππΈπ (@Corndog98368908) June 27, 2025
Correction: n=1 (DRAFT#2): A Physics Letter A (Mathematical Physics): Proton Radius, the Rydberg Equation, and Fundamental Physics Constants
Correction Coming! Found a mistake where R_H was used instead of R_∞
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https://phxmarker.blogspot.com/2023/06/draft-physics-letter-mathematical.html?sc=1751058483083#c8638999812085907832 |
Latest Summary: Proton to Electron Mass Ratio and Proton Radius Related Equations
$R_\infty= | Rydberg constant | |
$m_e= | rest mass of the electron$ | |
$e== | elementary charge$ | |
$\epsilon_0= | permittivity of free space$ | |
$h= | Planck constant$ | |
$c= | speed of light in vacuum$ |
Monday, June 23, 2025
Sunday, June 22, 2025
Saturday, June 21, 2025
Master Dashboard for Constants of Physics - Proton Radius Related
Master Dashboard for Constants of Physics
Equations
Calculated Values
Calculated ΞΌ:
Measured ΞΌ:
Error δμ:
Defined r_p:
Proton to Electron Mass Ratio Dashboard - WIP
Proton Radius and ΞΌ Calculation Dashboard
Equation: ΞΌ = (Ξ±)² / (Ο * r_p * R_∞), where r_p is in meters (r_p (m) = r_p (fm) * 10⁻¹⁵)
Current Values
Proton radius r_p (fm):
Fine-structure constant Ξ±:
Rydberg constant R_∞ (m⁻¹):
Calculated ΞΌ:
Accepted ΞΌ: 1836.15267343
Error (|ΞΌ_calculated - ΞΌ_accepted|):
Set Values
Controls
Sensitivity Analysis
Friday, June 20, 2025
Draft: Non-functional Radar Chart Star Glyph for $\mu$
Proton-to-Electron Mass Ratio Sensitivity Analysis
Equation: ΞΌ = Ξ±² / (Ο r_p R_∞)
Adjust Constants
Sensitivity Analysis
Sunday, June 15, 2025
3D Visualization of Proton Radius, Mass Ratio, and Rydberg Constant
Sunday, June 8, 2025
Saturday, May 31, 2025
Proton Decay Solved - Lifetime ∞Infinite∞ Due To Topological Protection
ConclusionIf the proton is considered a vortex in a superfluid, its stability arises from the topological protection inherent to vortices, making it highly resistant to decay. This provides an alternative explanation for the proton’s extraordinary lifetime, potentially resolving the proton decay problem by suggesting that protons don’t decay spontaneously due to their vortex nature, rather than a conservation law. While this idea is speculative and requires much more development to become a viable theory, it highlights an intriguing connection between superfluid dynamics and particle physics, offering a novel lens through which to view the proton’s enduring stability.
The Surfer, OM-IV
Friday, May 30, 2025
Grok Assisted Theory of The Fundamental Physics Constants
#Fundamental #Physics #Constants #Theory https://t.co/840JQCqt47
— CornDogπ½πΆππ¦’πππππΈπ (@Corndog98368908) May 30, 2025