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Part 0704 - Electron Mechanics | ARGUMENT 0704-05PRECEDENTS
- CURRENT PARADIGM: In particle physics, the word annihilation is used to denote the process that occurs when a subatomic particle collides with its respective antiparticle to produce other particles, such as an electron colliding with a positron to produce two photons. The total energy and momentum
of the initial pair are conserved in the process, and, more generally
are distributed among a set of other particles in the final state.
Antiparticles have exactly opposite additive quantum numbers
from particles, so the sums of all quantum numbers of such an original
pair are zero. Hence, any set of particles may be produced whose total
quantum numbers are also zero as long as conservation of energy and conservation of momentum are obeyed. During a low-energy annihilation, photon production is favored, since these particles have no mass. However, high-energy particle colliders produce annihilations where a wide variety of exotic heavy particles are created. (Wikipedia - 17 Dec 2016)
- 0704-03: That an electron is axially structured and is thus a charged particle with a northpole and a southpole.
- 0704-04:
That
an electron aligns itself with the flow direction of the
surrounding gravitonstream so that the northpole faces the
oncoming stream.
- 0704-05: That
an antielectron is an electron which has yet to align its northpole
to face the oncoming gravitonstream.
PARAMETERS
- Consider an electron.
- Consider
that the electron is a charged particle.
- Consider that the electron is in a gravitonstream which has a flow direction.
- Consider
that the default orientation of an electron is to be aligned to the
flow direction of the surrounding gravitonstream with its northpole
facing the oncoming stream.
- Consider that an electron which has yet to assume the default orientation is an antielectron.
- Consider that an electron is a negatively charged particle.
- Consider that an antielectron is a positively charged particle.
REASONING
- Because
an electron is aligned to its surrounding gravitonstream, its
electrosphere matches the direction of the gravitonstream.
- Because
the electrosphere matches the direction of the gravitonstream, most graviton
absorption across the gravitysheath interface is at the northpole.
- Thus for an electron:
- The electrosphere is at its most harmonious.
- The ejection of most excess gravitons is at the southpole.
- The ejection of excess gravitons is as efficient as it can be.
- The electrospheres of adjacent electrons are attuned and not in conflict.
- The consequence of the collision of an electron pair is moderated by their attuned electrospheres.
- The attuned electrosphere of a colliding electron results in them bouncing away from each other.
- Because
an antielectron is not aligned to its surrounding gravitonstream, its
electrosphere does not match the direction of the gravitonstream.
- Because the electrosphere of an antielectron does not
match the direction of the gravitonstream, most graviton absorption from across
the gravitysheath interface is other than at the northpole.
- Thus for an antielectron:
- The electrosphere is less harmonious than it could be.
- The ejection of excess gravitons is less likely to be at the southpole.
- The ejection of excess gravitons is less efficient than it could be.
- The electrospheres of adjacent electrons and antielectrons are less attuned, perhaps even 100% unattuned.
- The consequence of the collision of an electron and an antielectron is less moderated by their electrospheres.
- Because
the electrospheres of adjacent electrons and antielectrons are
less attuned, and perhaps not attuned at all, an
electron/antielectron collision has
these consequences:
- The ejection of gravitons from the one directly into the equatorial electrosphere of the
second, disrupting the gravitonflow of the second and possibly
understabilising it because its ejection mechanism loses
efficiency.
- The
two electrospheres are unattuned and thus less rejective so a
very violent collision might even result in quark to quark
contact.
- The
two electrospheres are less rejective so an extremely violent
collision, resulting in quark to quark contact, can break the electron
and/or the antielectron apart.
- The two
electrospheres are unattuned and their gravitonflows conflicted so a
collision can cause the electron and antielectron, either one of them
or both of them, to tumble.
- The tumbling,
if violent enough, breaks the axial/centrifugal quark lock and
sets the quarks to orbiting each other.
- The
orbiting of the quarks, especially if accompanied by a transmutation
of electron/antielectron speed to spin, increases their vergence
velocity relative to the escape velocity of their
electron/antielectron.
- If the vergence
velocity of the quarks exceeds the escape velocity of their
electron/antielectron, the quarks become blackholes as they cross
the electron/antielectron gravitysheath interface.
- Both blackholes are understable so they immediately eject gravitons as they attempt to stabilise.
- The
axial blackhole's ejection mechanism is very efficient
but unsustainable so it either dissipates itself or reverts to
being a centrifugal blackhole with a mass and speed that are less
appropriate for decay into a photon.
- Thus collision
between an electron and an antielectron may, or may not, result in the
annihilation of one, or both, of them.
CONCLUSION
- That
colliding electrons and antielectrons can annihilate, dissipating
their quarks or stabilising them as other objects.
| COMMENTARY 1
Defining an
electron is straightforward. It is a composite particle, consisting of
one axial quark and one centrifugal quark, aligned to the
direction of the gravitonflow within which it moves so that its northpole
faces the oncoming gravitonstream. Within that definition there are no
variables.
The simple definition of an antielectron is that it
is an electron which is not aligned to the gravitonflow within which it
moves. There is, however, a variable to that definition which can have
a major effect on the result of a electron/antielectron collisions. The
variable is the degree of its unalignment. The unalignment can be
anywhere between one degree and one hundred and eighty.
In
an electron/antielectron collision, the degree of the antielectron's
unalignment will affect the outcome - And so will the orientation
of the antielectron. If it first strikes the electron with
its northpole or its southpole or its equator, the effect on the
electrospheres and the quarks will be different. It may be that the end
result is still the annihilation of both particles but the way it comes
about will be different.
COMMENTARY 2
This
argument only mentions one decay product resulting from annihilation -
photons. In practice, a number of different products can occur
depending upon the speed and the orientation of the collision - and
also upon the dynamic mass of the gravitonstream within which the collision
takes place. As a general rule, lower speed collisions result
in annihilations whereby the quarks are accelerated
by absorbing gravitons and thus mass and energy. Such annihilations
tend to produce photons. On the other hand, high speed collisions
result in annihilation due to direct contact between quarks
with the electrons/antielectrons breaking apart according to the rules
of collision mechanics. Such collisions are known to produce a
variety of decay products.
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