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095 [M+Q] Spectral Convergence
Quinta Essentia Part-5
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6/28/2024
References:
Episode-034, Episode-001, Episode-002
PlayLists
EGM, Quantum Vacuum (QV), Particle-Physics
Solution Algorithm
[M+Q] Spectral Convergence Derivations: pg. 93-94:
(*) https://www.researchgate.net/publication/370595808_QE5_YouTube_Derivations_httpswwwyoutubecomQE-5
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Learning
Transcript
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00:00
G'day viewers. It is important to appreciate that all matter has a relationship with the
00:04
quantum vacuum. Moreover, all physical characteristics of matter has a relationship with the quantum
00:10
vacuum. For example, spin-angular momentum has this relationship. So does mass, and so
00:15
does electric charge. In episode 93 and 94, we investigated this relationship in terms
00:21
of particulate spin radius, so please take the time to view these videos if you have
00:26
not already seen them. However, in this episode, we are going to investigate the combined spectral
00:32
characteristics of mass and electric charge. We shall determine the physical scale at which
00:36
the electrogravimagnetic construct predicts that the quantum vacuum associated with the
00:42
electrostatic force converges with the quantum vacuum associated with the gravitational force.
00:47
In fact, we show that the quantum vacuum, electrostatic and gravitational spectra converge
00:53
at the yoctometer scale for charged particles, and converge at less than the Planck scale
00:58
for neutral particles. Similarly, we show that the quantum vacuum harmonic cut-off frequency
01:03
converges at the yottahertz scale for charged particles, and converges above the Planck
01:08
frequency for neutral particles. Hence, the results from this episode, in
01:13
concert with the results from our previous episodes, seem to imply that the origin of
01:17
spin-angular momentum, mass and electric charge, may denote the physical scale which defines
01:22
material existence. This, in itself, is a very exciting possibility and worthy of deeper
01:27
reflection. Therefore, in the next episode, we shall investigate the physical scale at
01:32
which the quantum vacuum's relationship with spin-angular momentum, mass and electric
01:36
charge, are unified, if at all, within the electrogravimagnetic construct. It will be
01:41
an interesting investigation, so I encourage all viewers to keep following our channel.
01:46
Anyway, for now, let's get into the quantum vacuum spectral convergence derivation process
01:51
of mass and charge.
01:54
The spectral convergence derivation process commences with the selection of a physical
01:58
model to analyze. Herein, we shall utilize two similar fundamental charges, hence they
02:03
are repulsive. However, the results we will present on the next slide are unaffected by
02:09
the choice of similar or dissimilar fundamental charges. Thus, utilizing equally attractive
02:14
or repulsive fundamental charges does not alter the outcome.
02:18
OK, let's now walk through the spectral convergence derivation process, step by step.
02:24
Step 1 derives the electrostatic spectral energy density. In episode 34, we derived
02:30
a relationship between the electrostatic force and the quantum vacuum. We did this in order
02:35
to solve the long-standing and well-known many-orders-of-magnitude problem. We showed
02:40
that a 90-degree phase difference exists between the quantum vacuum electrostatic and gravitational
02:45
spectra. We recommend all viewers to review episode 34 before continuing.
02:51
Step 2 involves two parts. The first part derives the electrostatic force density. The
02:57
second part relates the electrostatic force to Newtonian acceleration via Buckingham Pi
03:02
theory. Please review episode 1 before continuing.
03:06
Step 3 converts the resultant quantum vacuum acceleration arising from electrostatic and
03:11
gravitational forces into a cubic frequency distribution utilizing Buckingham Pi theory.
03:17
Step 4 quantizes the output from step 3 into quantum vacuum spectral frequency form whilst
03:23
obeying Fourier harmonics. Step 5 defines the ratio of energy densities for utilization
03:29
in the harmonic cut-off function. Step 6 establishes the quantum vacuum upper
03:35
spectral frequency limit based upon the presence and influence of charge and mass.
03:41
Step 7 determines the physical scale at which the harmonic cut-off mode satisfies the condition
03:46
of spectral convergence. That is, the spectral convergence factor is incrementally increased
03:51
until the harmonic cut-off mode equals unity.
03:54
Step 8a. Once the condition of harmonic cut-off mode equaling unity has been achieved in step
04:00
7, then the electrostatic and gravitational spectra have been unified at the associated
04:06
spectral convergence radius. Please note that column 5 is arranged in decreasing order and
04:11
only contains charged particles. We will address neutrally charged particles on the next slide.
04:18
Step 8b, step 9a and step 9b are very straightforward and self-explanatory. Column 2 expresses the
04:25
spectral convergence radius in terms of the Planck length whilst column 6 expresses the
04:31
quantum vacuum harmonic cut-off frequency in terms of the Planck frequency.
04:36
Let's now summarize what we have learned. The spectral convergence derivation process
04:41
commenced with the selection of a physical model to analyze. Herein we utilized two similar
04:47
fundamental charges, hence they were repulsive. However, the results appearing on screen are
04:52
unaffected by the choice of similar or dissimilar fundamental charges. Thus, utilizing equally
04:58
attractive or repulsive fundamental charges in our formulation did not alter the outcome.
05:04
Please take a moment to pause the video and study the results appearing on screen.
05:09
The depiction of the proton you see provides a useful template to describe our results.
05:14
The spectral convergence radius denotes the physical dimension whereby the quantum vacuum
05:19
electrostatic and gravitational spectra converge and are unified by a single harmonic frequency
05:24
mode. At this physical dimension, the quantum vacuum harmonic cut-off frequency is defined
05:30
in column 6. Thus, in the case of the proton,
05:34
1. The spectral convergence radius equals 0.33 ytm.
05:40
2. The quantum vacuum harmonic cut-off frequency at the spectral convergence radius is 1011 ytm.
05:49
For interested viewers, you can find a list of useful references on the next slide.
Recommended
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