Showing posts with label gluons. Show all posts
Showing posts with label gluons. Show all posts

Sunday, August 30, 2026

Gluons and the strong nuclear interaction.

When we think about energy flow from the strongest to the weakest. Free energy. That causes an atom’s decay. It is formed. Or. Released in the atom’s core. The strong interaction releases the first energy impulse that can rip the atom into pieces. 

When gluon send their radiation impulse into the shell of protons or neutrons. 

That shell oscillates, sending the W boson. Then that boson causes the oscillation in the atom’s core. That is called the weak interaction. The electroweak interaction is the energy wave between electrons and the atom’s core. The energy flow between electrons and the atom’s core is much more complicated. Than. The energy flow. Between the atom’s core and the electron shell. 

All structures in an atom send wave movement. Those structures include quarks and bosons. Along with bond strings between quarks. And bonds between protons and neutrons. They send. Wave movement at their own frequency. That frequency. It is the same. 

As the size of those structures. If. We think that the particle, like a gluon. It is like a plate. This means that. The particle sends wave movements with two wavelengths. 

The larger structure. Sends waves with a wavelength. That is the same as the particle’s cross section. Same way on the thinner side. It sends waves.  That wavelength is the same. 

As the thinner side cross-section. 

This means. That. Dark energy may come from structures. That nobody has seen. Or that is the logical explanation for that energy flow. At this point, we must realize. 

That any structure creates energy from nothing. 

Material is denser energy. And all nuclear and electromagnetic reactions release energy that is stored in matter. The opposite version is that the structure binds energy into itself. This is wave-particle duality. Energy can turn into matter, and matter can turn into energy. Only in annihilation does matter turn completely into energy. 

Gluons are bosons that mediate the strong nuclear interaction. This means that gluons are the glue that binds quarks into hadrons. Quarks form protons and neutrons. But those hadrons (or baryons) cannot exist without gluons. Gluons are lower-energy particles that carry energy between quarks. 

Because. Gluons' energy level is lower than quarks'. That makes energy flow to gluons. That keeps quarks in protons and neutrons. When quarks spin, they form a quantum tornado around their axle. When those tornadoes from the higher-energy down quark and lower-energy up quark impact. Those impacting quantum tornadoes form the structure. That looks like a quantum-size Tesla coil. This model means that the gluon is like a photon.

 The plate between quarks. That plate conducts energy.

Out from the quantum tornado that connects those quarks. Because of asymmetry. In energy between up and down quarks. The energy that comes from down quarks. Pushes that energy plate to the up quark. So. That particle that we call a gluon transports energy directly out of the structure that keeps quarks together. 

This means. That the gluon itself sends wave motion. This wave motion will turn into the weak nuclear interaction. The W/Z boson interaction sends wave motion into the electron shell. The energy level outside the atom determines how fast energy travels out from atoms. If. The atom’s core takes too high an energy dose. 

If. That energy dose is high enough. Strong energy flows out of atoms. It rips the atom in pieces. The reason why helium atoms are very hard to decay is simple. A high-energy photon hits one of the neutrons. The small atom can deliver that energy past the electron shell. 

In large atoms. Like uranium, the atom’s core is very big. This means that the atom can store more energy than small atoms. 

The interaction in the atom’s core. It sends energy impulses through the middle of the core. That can cause a situation. The distances between protons and neutrons increase. Energy flowing away from neutrons can rip a neutron into pieces. That releases free energy into the atom’s core. And that starts the fission. In fission, the energy is released from bonds between protons and neutrons. The number of bonds being cut between protons and neutrons. That determines the energy level that fission releases. 

The requirement for fission is this. The atom. It cannot release free energy fast enough. Another thing that can cause atomic decay is the extremely low-energy area around the atom. That cosmic microvacuum pulls energy out of the atom so fast.

That. It rips the outermost layer of the protons and neutrons out. That cuts the bonds. That keeps protons and neutrons as the atom’s core. That releases energy that pushes energy to those electrons. Electrons emit photons that we see as a flash. 

https://en.wikipedia.org/wiki/Elementary_particle

https://en.wikipedia.org/wiki/Fundamental_interaction

https://en.wikipedia.org/wiki/Gluon


Saturday, August 15, 2026

Fifth force and gravitational recoil.


There are suggestions that the Standard Model is wrong. That doesn’t mean that we must rewrite the entire model. We should search for the missing part of that model. Because. Something is missing in the model that we know. We cannot make all parts of it work as they should. There is a possibility. That some interaction, like a direct, wave-based interaction between a gluon and an electron, is just missing. Maybe that interaction really exists. 

And maybe those things can explain the hypothetical fifth force. Anyway, that fifth force is an extremely weak interaction. There are many other explanations for that still-hypothetical effect. That effect can be a recoil effect between electrons. Or a recoil effect between quarks and bosons. These are things that can explain the fifth force.  Or non-calculated anomalies. In particle accelerators.  Something is missing. Because the function doesn’t match the calculations

“In physics, a fifth force is a hypothetical fundamental interaction (also known as a fundamental force) beyond the four known interactions in nature: gravitational, electromagnetic, strong nuclear, and weak nuclear forces “. (Wikipedia, Fifth force) 

“Some speculative theories have proposed a fifth force to explain various anomalous observations that do not fit existing theories. The specific characteristics of a putative fifth force depend on which hypothesis is being advanced. No evidence to support these models has been found.” (Wikipedia, Fifth force) 

Maybe the fifth force is the recoil effect of bosons. The boson. It is the transporter particle of the interaction. When. Bosons travel in atoms. Those particles form a recoil effect. That means that. Maybe the fifth force is the missing part of interactions that we already know. Could that fifth force be a thing? Like gluon and electron interaction. When gluons send wave movement. That wave movement could travel through an atom’s nucleus. And maybe that wave movement.  That forms when a gluon evaporates. Could also impact electrons. 

Could the missing fifth force be the wave movement that travels between quarks? And if that thing is real, could we call that effect a fifth force? Is it an independent force? Or. Is it? Some? Kind of shadow? Of other forces? This means that before we yell that we found the fifth force. We should understand. Those forces. That we know might have sides. That. We didn’t know. The fact is that. If that missing part of the four known interactions is the fifth force. Maybe those four known interactions: strong interaction. Weak interaction. Electromagnetism, and gravity. Cover a hypothetical fifth interaction below them.

This means that the hypothetical fifth force could be a non-bosonic interaction between elementary particles. We know bosonic interactions. These bosons transmit fundamental interactions. But all wave movement is what the elementary particle sends. It doesn’t touch a boson. Part of the wave movement that the elementary particle transmits travels past the boson. This means the fifth force. It could be a wave interaction between elementary particles. 



The model for that is taken from the electroweak interaction. When. An atom’s core sends a wave motion. 

That wave movement impacts electrons. And transmits energy to them. This means that, in the same way, elementary particles like quarks can send wave motion. That impacts. And affect another quark without a boson transmitter. This straight wave interaction explains it. Why. There are no direct observations of the fifth force. The reason for that is simple. That direct wave movement is so weak. Other interactions cover it below them. 

Bosons are condensed energy, like fermions. They transport fundamental interactions. Fermions are bricks of matter. Fermions form protons and neutrons. Both. Of those particle types. They can be transformed into energy. That means all particles. They are actually condensed energy. 

Four known fundamental interactions are: 

1)Strong interaction


2)Weak interaction


3)Electromagnetism 


4)Gravity


The bosonic interactions cover the non-bosonic interactions below them. The situation is similar to what we try to see. A burning match and halogen light at the same time. The halogen light. It covers that match below its brightness. 

In the same way. The bosonic interaction. covers the pure wave interaction below it. This means that the pure wave interaction could be the fifth force. The fifth force is a myth. But the wave-based interaction explains why we cannot see that force. And the next question. It is: Does that mean a new natural law? 

In this model, gravitation forms two-part radiation. First, an energy wall travels through the universe. Then the gravitational center. Or. Spinning particles bind energy into them. That energy wall doesn’t let energy travel behind it. That forms a so-called gravitational pool. 

And then those spinning particles bind the energy into them. That makes the gravitational pool deeper. This makes objects like particles fill that pool. But if a graviton exists. That thing can be the whirl in the gravitational pool. Maybe those whirls that turn into gravitons can form outside the gravitational pool. When. the energy wall travels ahead. It sends recoil waves to the gravitational pool. Those waves could form energy ditches that travel to the gravitational center. 

If. That whirl turns smaller and denser. That whirl starts to condense that field. This makes a phenomenon that can act as a gravitational wave. This means those whirls in the field bind energy into them. The question is. Could a graviton be a quasiparticle or a particle? 

The thing that we see as (an example) the strong interaction. We can describe that interaction as an interaction between gluons and quarks. This interaction has a pushing side. And the pulling side. The last one pushes quarks away. When a boson, in this case a gluon, evaporates, that effect acts like ice. That evaporation pulls quarks together. When. The boson receives energy. The wave movement between quarks pushes those quarks away. So, the fundamental interaction is the wave movement. That. Bosons. The interaction transporter particles send. 

We know four interactions. Three of them have a boson transporter. But then we see that gravity has no known bosonic transporter. There is suspicion that a mythical graviton exists. But the fact is that. Gravitation doesn’t necessarily need a graviton. Spinning particles. That bind quantum fields into their structures. That can cause a situation. Their energy travels into that particle. And carries other particles with it. 

In this model. The gravitational wave has two parts. The energy wave that travels away from the gravitational center. Then the gravitational center. The structure of spinning particles that bind energy into itself. That pulls more energy into the gravitational center. Than. It travels out from it. The thing that creates the gravitational wave. And gravitation’s unique behavior. It’s the energy wall. Behind that energy wall. The gravitational center. It creates the energy ditch that travels across the universe. 

Same way the fifth force doesn’t need any boson as its transporter. Wave movement itself can act as a natural interaction. And that is one of the things that we must realize. 


https://en.wikipedia.org/wiki/Boson


https://en.wikipedia.org/wiki/Electromagnetism


https://en.wikipedia.org/wiki/Electroweak_interaction


https://en.wikipedia.org/wiki/Fermion


https://en.wikipedia.org/wiki/Fifth_force


https://en.wikipedia.org/wiki/Fundamental_interaction


https://en.wikipedia.org/wiki/Graviton


https://en.wikipedia.org/wiki/Gravity


https://en.wikipedia.org/wiki/Weak_interaction


https://en.wikipedia.org/wiki/Strong_interaction

Wednesday, September 14, 2022

Maybe the c or charm quark plays a bigger role in the protons and neutrons than we expected.



C, or charm quark's energy level is extremely high. That means it acts like all other higher energy particles. So when the particle's energy level changes, its shape changes. And that means the energy flow out of the particle turns its shape into another particle. 

The forces that are forming protons and neutrons are repelling and pulling those particles at the same time. The cosmic inflation or expansion of the universe causes the pressure of quantum fields is turning weaker. And that causes the distance of quarks is increasing. 

When we are talking about the size of the particle, we mean the area where the particle affects. And that means the energy level or the "shine" determines the pool where the certain particle dominates. 

So when we are looking at high-energy particles like c quarks we must understand that this particle vaporizes or send wave motion to other quarks and gluons. When the particle turns to wave motion or vaporizes it forms an electromagnetic vacuum around it. 

Particles are not sending wave motion all the time. The wave motion comes out from a particle only when its energy level rises higher than its environment. When that energy level rises higher than the environment the particle sends the energy quantum that makes the electromagnetic vacuum around it. 

Also, other quarks are sending wave motion. If c quark will go to close enough to other quarks those electromagnetic vacuums are closing. And the quantum fields of those particles are melting together. 

In that case, the gluon will come from somewhere in that channel. The thing is that the force of the electromagnetic vacuum must be higher than the repelling effect. And that causes the quarks and gluons are making entirety called protons or neutrons.  

When the universe expands the quantum field that is pulling material to the form turns weaker. And that means the distance of the quarks increases. So the quarks are shining or vaporizing faster and faster. That means the repelling force of energy impulses coming from the turns is stronger. That increases the speed of cosmic inflation. And finally, all material turns to wave motion. 


https://artificialintelligenceandindividuals.blogspot.com/

Friday, July 22, 2022

The graviton could be between and outside quarks and gluons.



The idea is that the graviton is like a small black hole where the energy pikes are leaving from its poles. When those energy pikes impact quarks and gluons they surrender those particles like plasma fields surrounding planets. 

And that means the graviton would be like a tensor between quarks and gluons. The energy pikes from quarks and gluons are taking energy outside that quantum field that surrounds them. 

That model explains why electromagnetic interaction and weak nuclear force are so powerful when we compare them with gravitation. The dimension of tensor between quarks and gluons is very small. In comparison to the area of the quarks. 

Protons and neutrons are involving three quarks. And gluons between them. Normally we can say that strong nuclear force keeps those particles in one entirety. 

But how to describe the strong nuclear force? There is some kind of electromagnetic- or quantum vacuum. That keeps those particles together. So there are two possible points where we can find graviton. 

There is the possibility that there is some unseen particle between gluon and quarks. And maybe the electromagnetic underpressure of that particle that can be the graviton pulls quarks and gluons together. Or there is another interesting possibility. That possibility is that gluons are also gravitons. 

Three quarks, that strong nuclear interaction connects with gluons are formin protons and neutrons. When those baryons are spinning the structure of those quarks is sending wave motion along with tensors that are connecting gravitons to gluons. 

The dimension of the wave motion that the quarks are sending is far bigger than the dimension of the wave motion that leaves from the tensor. And that causes the gravitation to be so weak. 

When energy pikes that are leaving from those tensors are traveling through the universe they are forming extremely thin pikes. Those pikes can affect a longer range than wave motion that leaves from quarks. The electromagnetic turbulence destroys the energy waves that are leaving the quarks. 

The reason why the energy waves that source is in tensor travel to higher distance is that they are hitting each other less frequently than wave motion that leaves from quarks. 

Friday, March 4, 2022

Does the gluon or gluons orbit quarks "8"-shaped or regular orbiting trajectory?

Above this text is an image of neutron (Image 1). The effect of the strong interaction strong nuclear force marked as a "Y"-shaped structure. But what is the thing that makes those quarks stay in one entirety? The  2 down quarks and 1 up quarks. Along with gluons, those quarks form neutrons. 2 Up quarks and 1 down quark with gluons form protons. The gluons connecting those particles to their entirety are called neutrons or protons. 

The strong interaction is not the interaction between quarks. It is the interaction between quarks and gluons. But why gluons are keeping the neutrons and protons as one entirety. There is the possibility that the gluon is orbiting quarks by the eight-shaped trajectory. And that thing means that the pressure of that particle is pushing the quarks to one entirety. Those trajectories are drawn in image 2 by using black circles. (Image 2)

When we are thinking about image 2. There are marked possible trajectories of gluons. The trajectories could be "8"-shaped. But gluons can also orbit those quarks with regular orbiting trajectories. That causes an idea that could there be the forms that we can call "atoms in atoms". So could some elementary particle be the "miniature atom"? 

Why do I think like this? The reason for that is that. If the gluons are moving or jumping between those quarks. That could destroy the proton or neuron. So there must be some kind of electromagnetic vacuum in the middle of those quarks. Or the gluons would orbit around those quarks that cause their quantum fields are pushing quarks together. 



Image 2: 


Explanation 2. 

Could the mysterious graviton be the particle in the middle of the proton or neutron? The theory is that graviton could just be the quantum-size black hole. 

About the question of why protons and neutrons are in their form? In that case. The quantum-size black hole or hypothetical graviton pulls superstrings from quarks inside it. That thing causes the radiation that is called dark energy and the expansion of the universe. 

But that requires that graviton exists. The hypothetical quantum-size black holes are acting just like large black holes. When they are pulling something inside them. That thing causes radiation. So could the graviton be the quantum-size black hole?

But there can be some other interesting explanation for that thing. And that thing is the most fascinating in the world. Maybe there is graviton in the middle of protons or neutrons. That thing means that the graviton could be a quantum-size black hole. That pulls the strings from the quarks inside it. 

Because energy or superstrings are traveling only in one direction. That is in the middle of the quarks that cause the recoil effect. The recoil effect keeps those quarks at a certain distance from the center of the particle. And the balance between the pushing and pulling effect keeps those quarks in one entirety. 

But if quarks are like small yarn balls they are losing their mass all the time when that quantum-size black hole will pull those superstrings in it. And that causes the radiation. 


https://en.wikipedia.org/wiki/Gluon


https://en.wikipedia.org/wiki/Graviton


https://en.wikipedia.org/wiki/Neutron


https://en.wikipedia.org/wiki/Proton


https://en.wikipedia.org/wiki/Quark


https://en.wikipedia.org/wiki/Standard_Model


https://en.wikipedia.org/wiki/Strong_interaction

Does the dark matter has a particle form at all?



Dark matter means the mystery gravitational effect. The thing that forms this effect can be the material. Which elementary particles have a different size than the elementary particles of visible material have. 

That thing means that the wave movement that those particles are sending has the wavelength that makes it invisible. Another version of dark matter is that thing has no particle form at all. That means dark matter is the wave movement called dark energy. 

Image 2 is the neutron. The gluons jump between quarks. Neutron is formed of two down quarks and one up quarks and gluons. The image could portray a proton. Because it has a similar internal structure with a neutron. But the proton is formed by one down quark and two up quarks and gluons. 

The wavelength that those quantum tornadoes or rotating quantum channels are sending. Would be different than other particles sending. That thing makes the wave movement invisible. And maybe axions are hiding in those quantum tunnels. There is the possibility that there is a quantum vacuum in those tunnels. And that means outcoming energy pushes those quarks to one entirety. 



Image 2: https://en.wikipedia.org/wiki/Neutron


The mass of hypothetical axion-particles could tell the form of the dark matter. The thing is that the cosmology is that the dark energy is one of the mysteries that can solve another mystery. The mysteries of the dark universe is the thing that can solve where the material came from. 

The name axion of that theoretical particle is coming to an idea that the form of that thing could be elongated. Theories are telling that material is formed in wave-particle duality. That was caused by the mysterious event called  Big Bang. The question about the Big Bang is interesting. Was that thing released only energy that impacted with wave movement that already exists? And that impact caused the wave-particle duality that formed the visible universe. 

The thing is that dark matter is the mysterious gravitational effect. That means that there is the possibility that dark matter has not necessarily have a particular form. The dark energy or a dark wave movement that affects some extremely small particles can cause mysterious gravitational effects. That wave movement can affect the gluons and make them heavier or put them to a higher energy level than they should. 


The form of Dark matter is interesting. And maybe quite soon the researchers can answer two questions.


1) Is dark matter similar material with the visible material? That means the dark matter could turn to wave movement and otherwise. But if dark energy is the same thing as dark matter. That means the dark energy could create the gravitational effect. 

So that means the dark matter would not necessarily have the particle form. The dark wave movement that affects the gluons or some superstrings could cause the mysterious gravitational effect called "dark matter". 

2) And can the dark matter form atoms or molecules? Like visible material? The galaxies where is no dark matter is an interesting detail. 

That tells that dark matter can form the structures like visible material. But are those dark matter structures some kind of clouds of nebulas formed of dark matter? Or is there some kind of more complicated structures that are formed of dark matter? 


The weakness in the Big Bang theory is that it doesn't answer where the thing that exploded came from? 


The Big Bang theory is always the solution for the origin of the material. But where did the material or wave movement  Big Bang released come from? The moment of the Big Bang is point zero in the universe's history. But what happened in the point minus one (-1)? 

There was something that released the material to the universe. Or is it so? If we think that dark matter is the dominating form of material. There is a possibility that the crossing wave movement turned the dark matter into visible material. 

So if the dark matter is similar material with the visible material. The answer for the Big Bang can cause because of the wave-particle duality. But getting acceptance of this theory dark matter should have a similar particle form with the visible material. 

There is the possibility that the wave-particle duality forms when the quantum fields of the particles will touch each other. That thing can cause quantum friction or quantum spark. That thing will turn the quantum field or the superstring that forms that quantum field turns to a roll or yarn ball-shaped structure.  


https://en.wikipedia.org/wiki/Axion


https://en.wikipedia.org/wiki/Dark_energy


https://en.wikipedia.org/wiki/Dark_matter


https://en.wikipedia.org/wiki/Gluon


https://en.wikipedia.org/wiki/Quark


https://en.wikipedia.org/wiki/Standard_Model


https://en.wikipedia.org/wiki/String_theory


Monday, January 24, 2022

Are the mysterious gravitons and dark matter the yet unknown states of well-known particles?



There is the possibility that dark energy is multiple wavelengths of electromagnetic radiation which has many sources. Those sources can be Higgs bosons, free quarks, and gluons. The quantum channels or quantum tornadoes can also send radiation. 

Also, there is the possibility that the supermassive black holes are sending radiation whose wavelength is extremely low. Also, the mesons are sending some kind of radiation when they are splitting. 

When we are looking at the image of protons and neutrons. We can see also gluons. Gluons are transporter particles of a strong nuclear force. The gluons are traveling in the protons and neutrons between quarks. And behind those particles is the channel. When those subatomic particles are jumping between quarks. They are forming the vacuum behind them. But also those particles are sending the electromagnetic impact wave. 

That impact wave is similar to the pressure wall the objects send when they travel in the air. But the electromagnetic or quantum cone is made of electromagnetic wave movement or quantum field.

So the thing is that there is the possibility that the source of the dark energy is the dark matter. That term means that dark matter is the material whose only known interaction with material is gravitation. But there is the possibility that dark matter is the free quarks and gluons. When quarks and gluons are sending radiation the wavelength of that radiation is the same as the diameter of quarks and gluons. 

That means we have difficulties detecting that radiation. Also, short-living particles like Higgs bosons are sending radiation with their unique wavelength. That means that there is the possibility that dark matter is well-known, but maybe short-living particles. The thing is that the quantum channels behind the gluons are also sending wave movement. The reason why we cannot observe dark energy is that. We don't know what particle sends that wave movement. 

The same thing is the graviton. The mysterious hypothetical gravitation transporter particle. There is the possibility that it is some kind of gluon. Or maybe it's the so-called free gluon. Normally the gluons exist only in the protons and neutrons. 

There they transport the strong nuclear force. But there is the possibility that somewhere in the universe is free gluons. 

Things like Higgs bosons are sending wave movement during their short lifetime. When that particle is turning to wave movement the wave movement that it sends remains. 

There is another theory of the origin of dark energy. And that thing is that the origin of that mysterious wave movement is in the small "quantum vacuums". Those miniature WARP bubbles are pulling wave movement through it. Even those bubbles are smaller than electrons. 


They act like other low-energy areas. Energy travels always from the higher energy level to the lower energy level. 


The wave movement travels through those bubbles and hits the quantum field at the other side of that bubble. That impact sends the radiation. And that means there is possible that this kind of phenomenon can also form dark energy. The quantum-size black holes are also curving the wave movement. And that causes the energy flow. Also, things like supermassive black holes are sending the radiation which wavelength is the size of their event horizon. 

So how does this connected with dark energy? Here I repeat the words from the begin of this text. There is the possibility that dark energy is multiple wavelengths of electromagnetic radiation which has many sources. 

Those sources can be Higgs bosons, free quarks, and gluons. The quantum channels or quantum tornadoes can also send radiation. Also, there is the possibility that the supermassive black holes are sending radiation whose wavelength is extremely low. Also, the mesons are sending some kind of radiation when they are splitting. 

Even if we don't know quark and gluon nebulas there is a possibility. That those nebulas are existing somewhere in the universe. Outside the supergroups of galaxies might be a state of matter that is existing only in extremely cold and stable conditions. There is the possibility. That there is a large mass of free quarks and gluons. If the distance of those particles is too high. That causes gluons cannot tie the quarks to one entirety. 

And that denies the forming of protons and neutrons. Maybe, those gluon and quark clouds exist only in the world where the disturbance and level of wave movement are minimal. And the distance of the particles is far higher than in our galaxy. Maybe James Webb-telescope gives answers for that kind of thing. 

Friday, November 12, 2021

About the gravitational waves, strong nuclear force, and gluon interaction.





Image 1: Artists view of the neutron and its internal structure. Credit: Prof. Dr. Xiaorong Zhu, University for Science and Technology, China (ScitechDaily)


The quantum origin of the gravitational waves and gravitation might be in gluons. Or something that is between gluons.  So, could the gluon be the particle that is behind the gravitational waves?


When the energy level of gluons is rising. Those small subatomic particles are sending wave movement through the universe. Or actually, the energy flow away from gluons would begin just after the energy stress or energy pumping ends. 

The fact is that the gravitational wave doesn't require the graviton. The question is that the gravitational waves are the wave movement that origin is in the extremely small particles. When the extremely high mass objects impact together they are sending wave movement. 

So when the objects like neutron stars and black holes are impacting they are orbiting each other. And the energy is transferring between them. When the energy load of the objects is increasing it starts to anneal the gluons. And the gluons send the radiation or wave movement through the universe. 

The gravitational waves are the extremely weak wave movement in the universe. The fact is that every particle is sending gravitational waves. But only the most massive objects can send strong enough gravitational waves that researchers can see those wave movements with sensors. So the thing is that there must be some kind of particle or reaction that sends the gravitational wave moves through the universe. 

The idea is that the gravitational wave is the energy load that travels in the universe and changes the weight of the particles. So is the origin of the gravitational waves the interaction between some yet known material and antimatter particles. And could those particles maybe graviton and anti-graviton the hypothetical transportation particle of the gravitation. But that requires the existence of graviton.

 Or maybe, there is no need for antigraviton for sending the gravitational waves. The thing is that. If the source of the gravitational waves is small-size the wave movement that the particle sends. Affect only the quantum field around the atoms increasing the weight of the material. And then those quantum fields will resend the wave movement and particles to other quantum fields. The quantum field around the atom acts like gel. When a particle hits the quantum field shakes. And forming the small vacuum area and that pulls the other quantum fields to it. 


Are gluons the quantum origin of gravitation?


The gluons are particles that make quarks stay together in protons and neutrons. The structure of protons and neutrons is a little bit more complicated than the diagrams introduce. 

The idea is that maybe the quantum annealing of the extremely small subatomic particles causes the gravitational wave. The impact of extremely massive objects like neutron stars or black holes would cause that energy to be loaded into those extremely small particles that are sending that wave movement through the universe. 

But mainly, those particles are forming of three quarks and gluons that are traveling in them. The question is how the gluon will glue those quarks to one entirety? The answer for that thing might solve the question of which way the gravitation will affect. The idea is that when gluons are jumping between the quarks they are causing the "quantum vacuum" behind them. That vacuum will pull the quarks together. 

So that thing would explain why the strong nuclear force will interact only the short distance. And then the thing that makes the protons and neutrons stay together would be the "vacuum" of energy that follows the gluons. 

And then we must ask one very vital question. Is the energy vacuum the thing that forms the protons and neutrons? Can this energy vacuum form when the extremely small subatomic particles like gluon and anti gluon are impacting. That extremely small annihilation would push the quantum field away forming the quantum shockwave. Or actually, it could be acting like an extremely small nuclear detonator. 

That thing could form the quantum-size black hole that pulls the wave movements away from some area. And then the quarks are closing together. The gluons would be the debris of that wave movement. Or maybe the origin of gluons is in the quarks. When quarks impact, they are sent small sparks that are gluons together. 

In the case, that the protons and neutrons are hadron particles. Form around the electromagnetic or quantum energy vacuum. That thing means that the outside quantum force or quantum field pushes those particles together. The thing is that the quantum field is keeps the quarks together is the surface of protons and neutrons. 

When the particles hit together in the quantum world they are sending wave movement. That means they are acting like particles in our size world. When two quarks hit they are sending the wave movement like stones send soundwaves. The annihilation is the most high-energetic reaction in nature. 

That reaction happens between mirror particles. The only difference between antimatter and material particles is the polarity of those particles. So when the anti-particle hits with its mirror-particle that causes the quantum field around it will rip. And the subatomic particles are released. That means the subatomic particles in the protons and neutrons are sending the energy wave that looks like a flash of energy wave. 


https://www.ligo.caltech.edu/page/gravitational-waves


https://scitechdaily.com/new-insights-into-the-dynamic-inner-structure-of-the-neutron/


https://en.wikipedia.org/wiki/Gluon


https://en.wikipedia.org/wiki/Graviton


https://en.wikipedia.org/wiki/Standard_Model


Image 1:https://scitechdaily.com/new-insights-into-the-dynamic-inner-structure-of-the-neutron/


Gluons and the strong nuclear interaction.

When we think about energy flow from the strongest to the weakest. Free energy. That causes an atom’s decay. It is formed. Or. Released in t...