Showing posts with label Bosons. Show all posts
Showing posts with label Bosons. Show all posts

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

Sunday, May 1, 2022

A small piece of writing about the Higgs boson and its strange qualities


 



Is the spin of the Higgs boson equal to zero really or virtually? 


When particle accelerators are uncovering the Higgs' boson. They don't create it. They are releasing it by removing wave movement from around that boson. 

There is the possibility that Higgs's spin of Higgs's boson is virtually equal to zero. One version of that idea is that the Higgs's boson is in the extremely large quantum field. 

That means that the quantum field just slides over the other quantum fields. Or the spin of that particle is so high that we cannot recognize the changes in the wave movement. 

Theoretically, particles are like yarn balls. The particle is wave movement, turned to a ball-shaped form. There is "hair" on that particle. And when that "hair" is touching the outside quantum field it would slow its spin. During that moment the particle sends wave movement. 

If there is no hair on that particle it would not be slowing. And that means it would not send wave movement or the wave movement is straight or monotonic like some "OOOO". So we cannot detect that wave movement because it's monotonic. Changes in the particle's spin speed are the thing that causes the wave movement that sends wave movement and turns the particle detectable. 

Another version is that the particle's spin is extremely high that its hair makes the electromagnetic vacuum around it. That thing causes the phenomenon, where the particle has two quantum fields. The outer and inner quantum fields. 

If the quantum field is too large, the wave movement from the inner quantum field disappears. Or the observers cannot separate it from the shaking or waving of the larger quantum field.  If the quantum field of the small particle is too large it collapses. Because the energy from outside pushes it to a smaller size. 


Why Higgs' boson is so dangerous?


Higgs' boson is the only known scalar boson. The spin of those bosons equals zero. That means there is no side-moving wave movement. And that means the Higgs' boson is extremely hard to see. There is the possibility that Higgs' boson involves in all other particles. So if some kind of energy load is coming through the Higgs' boson that causes the phenomenon where the energy load that comes from Higgs' boson is ripping all other Higgs' bosons into pieces. 

That thing will erase all material from the space. The term scalar boson means that they are like the nucleus of all (or almost all) other elementary particles. And the other particles are the superstring, wave movement (or information) that is accumulated at the surface of those bosons. And the hypothetical graviton particle is the tensor inside Higgs' boson. 

But there is another possibility that can explain the strange behavior of the Higgs' boson. The spin of the particle can equal virtually zero. That thing means that the particle is smooth, as I wrote many times. The idea of the virtually zero spin means that there is no interaction or changes in the energy level of the quantum field that surrounds the Higgs' boson. 

The term "spin" doesn't only mean that the particle is rotating. That term can also mean the interaction between the particle and quantum fields around it. If there is hair on the particle, that hair causes changes in the quantum field around the particle. If the spin of the particle is very high we cannot detect the changes in energy level in the quantum field of the particle. 

Or actually, the hair must be high enough that it can come out from the particle's quantum field. The hair of the particles is sending radiation to the particle's quantum bubble. And that causes interaction between the outside quantum field. The thunder that makes it possible to see particles are coming from the particle's quantum field and outside quantum field interaction. 

So if the hair of the particle is inside the particle's quantum field its quantum field is smooth. That means the interaction between particles and outside quantum fields is like interaction with smooth surfaces. So the interaction is silent. If the Higgs' boson is released from other elementary particles. It hovers in the extremely large quantum field. That quantum field makes it impossible that the hair of the particle cannot reach the edge of its quantum field. 

And if the only thing that sends some kind of wave movement or chancing wave moment is only the nucleus of that Higgs' boson. That thing means that this radiation resonates only with other Higgs's bosons or the interaction happens only between other nucleuses Higgs' bosons. But that interaction requires that the Higgs' boson is released from its core. And it would very fast collect superstrings around it and form the new particle. So, that means Higgs' boson is in all other particles but only the highest energy levels can release it by removing superstrings around it. 


See also:

Higgs boson

Scalar boson

Standard model of physics

https://miraclesofthequantumworld.blogspot.com/


Thursday, April 28, 2022

Why are the hypothetical graviton particles so hard to detect?



Image 1) Elementary particles with hypothetical graviton. 


When we want to detect elementary particles we must remember that the elementary particles are so small. And some of them are so short-living that we don't have time to detect them. The particle itself doesn't vanish anywhere. It just turns to wave movement. If we are thinking that elementary particle has a form as wave movement and particle we must say that if we want to observe particles we want to observe those wave bites and especially their ball-looking forms.

 In the case of many massive high-energy particles, we cannot see those particles. We can see wave movement that those particles send. And when we are trying to think why we cannot see graviton we can start our chain of thoughts from another particle that is hard to detect. The name of that particle is Higgs boson. 

Higgs boson is a so-called scalar boson. The spin of the scalar boson equals zero. And that thing causes that it will not send wave movement. Or wave movement is so weak that it's hard to detect. If we want to compare that only known scalar boson with a cannonball that travels through the air. We can see that we are seeing only the quantum low-pressure area behind that boson. 

The reason why Higgs boson's spin equals zero is simple. In the case where the object's speed or energy level is extremely high. The Doppler effect pushes the quantum field to that particle. That thing acts like a pressure wave and the pressure of that quantum field is stopping the spin. 

But also that impacting quantum field will glide over the Higgs boson. That thing causes the effect where the outcoming Doppler-field impacts with Higgs boson's quantum field. And that impact wave denies that the radiation or wave movement that comes from the Higgs boson cannot come through that impact point. So the quantum field acts as the form of the stealth aircraft and makes the wave movement glide over the Higgs boson. 

Also, that impacting quantum field causes that there are no sideways coming wave movement that outside observer can detect. When we are thinking possibility that the pressure of a high-moving particle's quantum field can press them smooth. And turn their spin equal to zero we can think that the Higgs boson is rather the state of particle that some independent particle. But its behavior changes so much that we can say that it is an independent particle. 

There is the possibility that the Higgs boson spins so fast that it turns smooth. And smooth particles cannot send wave movement through the universe. That's why I believe that the black holes have no hair. And what is the hair of particle? The hair of the particle is the bites of waves or superstrings that are forming them. When the spin of particle turs fast enough or its gravitation field is strong enough. That pulls those hairs against the core of the particle. 



Image 2 introduces the impacting radiation when it impacts the black hole. But it could also introduce the behavior of the quantum field of the Higgs boson. The quantum fields or wave movement slide over that quantum field like they are acting in stealth aircraft. The name "Scalar boson" means that there is a possibility to turn all particles into scalar bosons simply by increasing their speed to a certain level. That thing makes those particles smooth. When we are thinking of wave-particle duality the particle is like a yarn ball. There are small hairs on that structure. 

And those structures or "hair" make normal particles rotate or spin because the wave movement touches those particles. But if the particle is smooth the outcoming wave movement cannot affect it. Or otherwise, we can think that the particle is rotating or spinning so fast. That the spin press those hairs against its core. If there is no hair that particle cannot send the radiation. The hair or the particle pushes the quantum fields and sends the wave movement moving through the space. If the particle is smooth or the quantum field denies that the other quantum fields cannot interact with the particle. That means there is no visible wave movement. 

But then let's go to think about the graviton. There is the possibility that the hypothetical transporter particle of gravitation is tensor. Or rather saying it's a tensor boson. In mathematics, tensor connects linear space, scalar descriptions, and certain geometric amounts. 

So we can think that the scalar boson closes all other bosons inside it. Or it involves all other bosons. And then we can continue this thinking that the tensor boson closes also the scalar boson inside it. That means it's so common but sends so weak radiation that it's hard to detect. The idea is that the tensor boson is in the middle of all other bosons. And that thing rolls the superstrings around it to yarn balls called particles. 

So when we are transforming that term to graviton it's hard to detect because it's inside all other bosons. The idea is that the graviton is like a pothole. There is the possibility that this hypothetical particle sends energy above it. That energy pike would aim the wave movement that it creates the cone that moves away from the graviton and if that cone is outside the pothole. That means that the graviton is like in shadow. And extremely hard to detect. 

And that thing makes it extremely hard to detect. When some radiation will travel against that graviton it travels over the pothole. There is the theory that graviton is a photon that has an extremely high energy level. That energy level will send the photon to the fourth dimension or turn it into a black hole.


If we think that photon is the ring-shaped superstring or bite of wave movement. We can think that the photon is the shockwave of the energy that comes from higher dimensions. When we are thinking about the fourth dimension. That thing is the energy level where material disappears from view. And then we can ask,  is graviton the point where the wave movement comes out from the fourth dimension?

So is the graviton particle a small tunnel between the fourth- and third dimension or the so-called white hole? The white hole is the point where the material comes out from the wormhole. The thing that makes white hole white is when those particles and wave movement are coming out from that energy channel. They are sending wave movement or the shock wave of white light. When material or wave movement drops from the fourth dimension it releases its energy level in the form of wave movement.


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


https://en.wikipedia.org/wiki/Four-dimensional_space


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


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


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


https://miraclesofthequantumworld.blogspot.com/

Wednesday, April 27, 2022

Energy rips "W" boson to pieces. So could some yet unknown boson be the source of the Dark Energy?



"W"-boson


The shape of the "W" boson is like the "X"-letter. When the end of the aisle of the "W" boson hits energy or wave movement it starts to flow in both directions. To the middle and outside the "W" boson. The core of the "W" boson channels energy to the center of the boson. And then the energy starts to flow back to the aisle of the "X"-shaped structure. When energy hits to "W" boson it affects to entire boson. 

And part of it would tunnel itself into the aisle. That tunneled energy flow will increase the level of the energy of the wave movement that travels back to the end of the aisle. The wave movement is pushing the most out parts of the boson outside. And finally, the boson is ripping into pieces. That thing releases energy that is stored in the boson. 

The wave movement always travels from the area that is the highest energy level to lower energy level areas. And that causes the thing that energy is connecting the wave movement to the "W" boson. And the same energy rips it to pieces. And that brings interesting things to my mind. 

That thing is could the dark energy form in some kind of boson? When energy travels in the "W" and "Z" bosons. They also send radiation or wave movement that oscillates other "W" bosons. Those bosons are gauge bosons, which spin is 1. 




Image 2) Standard model


Why leptons cannot form similar structures as quarks?


The reason why bosons cannot create similar connections with quarks is that their spin is 1. That means that gluons cannot touch those particles. The spin of quarks is 1/2. And that can be the reason why quarks can from protons or neutrons. The spin of the electrons, muons, and gluons is also 1/2. And the question is why they cannot form similar structures with quarks? 

The reason for that can be in those particles' electric charge. There is the possibility that the electromagnetic charge will be stronger than the gluon-interaction called strong interaction or strong nuclear force. The reason for that is that the effect of the electromagnetic interaction between elementary particles affects longer distances than strong interaction. The strong interaction is the interaction between quark and gluon. And strong interaction ties quarks to structures like protons and neutrons. 

So the electromagnetic interaction with the same polar elementary particles pushes particles away from each other before the gluonic interaction or strong interaction can begin. And the reason why quark can form structures like protons and neutrons is that its electric charge is so weak. 

The quark's weak electric charge causes the gluon can jump between quarks before the electromagnetic interaction can affect those particles. The transporter particle of quantum electromagnetism or quantum electrodynamics is a photon. Quantum electrodynamics is the electromagnetic effect between elementary particles. 

The electric charge of leptons is 1 or -1. The electric charge of quark is 2/3e or -1/3e. So the electric charge of electrons and other leptons will push those particles away from each other. 




Image 3: Formulas of the "W" boson breakup (Wikipedia)


Is the origin of the dark energy some unknown boson? 


But could there be some missing boson, that sends the wave movement? This dark wave movement rips the universe to pieces. But what is its origin? When we are thinking about the scattering of short-living high-energy particles. 

There is the possibility that there is some kind of medium. That forms before the "W" boson turns to wave movement. So before the formula of the "W" boson turns true and its particular existence ends there could be some other particle. That means the medium particle could be so short-living that researchers cannot just detect the radiation that this particle sends. And that's why those hypothetical particles can be called "flashlight particles".  But where are those particles? There is the possibility that there is some heavier particle than "Z" and "W" bosons. 

So what does that mean? That means we should prepare to fill the Standard model with new members. Those new members can be the hypothetical graviton but also there might be missing scalar bosons. Scalar boson means that the spin of those bosons equals zero. That means those bosons would not send the wave movement and it makes them hard to see. The Higgs boson is the only known scalar boson. But there is a possibility that there is more than one scalar boson waiting for finding. 


https://scitechdaily.com/a-decade-of-science-and-trillions-of-collisions-show-the-w-boson-is-more-massive-than-expected-a-physicist-explains-what-it-means/


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


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


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


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


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


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


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


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


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


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


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


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


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


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


https://en.wikipedia.org/wiki/Tau_(particle)


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


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


https://miraclesofthequantumworld.blogspot.com/

Measurement of the "W" boson was not that expected.



The "W" boson was too heavy. And that thing can revolutionize physics. The "W" and "Z" bosons are transmitting weak nuclear force or weak interaction. So they keep the nucleus of the atom in one piece. The weak nuclear force or the weak interaction effects between protons and neutrons. The "W" boson is too heavy. And that means inside the "W" boson could be something connected to that particle. 

One of the things that can make that kind of thing is some kind of quantum plaque that is around that boson. Or there is some kind of particle that creates the form that you can see above the text. If we are thinking that "W" and "Z" bosons are affecting different directions. That means the mass of those bosons should be the same. 

Normally, the "W" boson is between protons and neutrons. The quantum fields of those particles push that high-energy and short-living particle into a piece. So the "W" boson is like a spring that is between protons and neutrons. When those particles are removed from around it.

 That thing releases those springs. The ends of those structures of the "W" boson are starting to oscillate and move back and forth. That movement turns stronger and stronger because it takes mass away from the "W" boson. And finally, the entire boson turns to wave movement. So inside the nucleus of the atom is also wave movement that resonates "W" and "Z" bosons". That wave movement is the interaction that happens between "W" (or "Z") bosons. 

Normally people don't know that most radioactive isotopes are not sending radiation all the time. The reaction that causes the radioactive radiation is outcoming energy stress. When that energy stress hits the radioactive isotopes it will shake their balance. This is the reason why warm nuclear materials are more radioactive than cold radioactive materials. 


The radiation must increase the energy level of the atom high enough that it can begin the reaction which turns the "down" quark into an "up" quark. And that thing launches the radioactive breakup. 


The weak nuclear force can transform a "down" quark into an "up" quark in neutron. That thing happens when weak interaction emits the "W" boson. Quarks are in triangular, or "V"-shaped form in the protons and neutrons. When weak interaction transforms the "down" quark into an "up" quark the "V" shaped form of the quarks turns around. And that thing sends the electromagnetic radiation. 

That radiation pushes that new particle away from the nucleus of the atom. And this is the thing that causes the radioactive breakup. The transformation of the "down" quark into an "up" quark is the thing that causes radioactive radiation and turns elements into radioactive. The number of neutrons determines how radioactive some isotope is. When there are a lot of neutrons there are lots of transformation cases. 

The radioactive breakup begins when the "W" boson transforms down quark to up quark. That transformation sends electromagnetic radiation to other quarks. And then also other quark structures are starting to rotate. That thing causes the nucleus of the atom starts to rumble. That rumble is seen as gamma-radiation. 

Then that energy load that travels through the atom pushes electrons away from their trajectory. Beta radiation is mainly fast electrons. The gamma pulses are making the effect that electron cores of the atom expand and contract. When electrons are escaping that thing rips the nucleus to pieces. 

By the way...

Theoretically, "W" and "Z" bosons can use as the power source. Those high-energy elementary particles are short living. And when they explode they are releasing energy that is stored in them. That is one thing that makes those bosons interesting. 


https://scitechdaily.com/a-decade-of-science-and-trillions-of-collisions-show-the-w-boson-is-more-massive-than-expected-a-physicist-explains-what-it-means/


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


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


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


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


https://miraclesofthequantumworld.blogspot.com/

Monday, January 31, 2022

Dimensions, bosons, and Philosopher stones

The 4D equivalent of a cube is known as a tesseract, seen rotating here in four-dimensional space, yet projected into two dimensions for display. (Wikipedia, Four-dimensional space)


What means dimension?


The fourth dimension is the theoretical thing that cannot model in a 3D universe. The thing is that when the energy level of particles is starting to grow. They are getting the attribute that it has not before. We can say that Higgs Boson is "only" an extremely high-energy electron. 

The thing is that some researchers believe that Higgs Boson is at least close to the particle that is next to photon and other particles. The photon is a gauge boson. And Higgs boson is a scalar boson.  The thing that makes Higgs Boson remarkable is it that is the first in the line of scalar bosons. 

We can think that dimension is the space or room where the particles and wave movement have a certain energy level. When the energy level rises high enough causes that the particle slips into another dimension. The brane theory explains that thing as the distance between energy levels of the observer and particle.

When the difference of the energy level of the particle and observer will turn higher. That makes it harder to see those particles. So the particle flows away from the visible area. 

Otherways if the energy level of the particle will flow away it will turn flattered and flatter until it gets the 2D form. So the 4D material is the particles that are oscillating with the frequency that is invisible to us. 

If the oscillation frequency between 3D material and higher or lower energy material is high enough. That means the interaction between those materials turns weaker at any time when the distance between energy levels is turning higher. 



Modern Philosophers stones


The WARP bubbles and Higgs bosons are the modern Philosophers stones. Those things can use for adjusting the energy level or the size of the quarks. Turning material to dark is theoretically a very easy thing. The energy must just pull out from quarks. 

And that thing should make the material invisible. And when the material wanted to return to its original form. That thing can happen by pumping energy back to quarks. 

One thing that can turn material invisible is the WARP bubble. When WARP bubble will surround particles that are not moving. That thing causes the energy will start to travel away from the particle.  So the particle will first expand, And then it will turn flat. 

The idea of dark matter is that it has quarks that size is different than invisible material. Theoretically, adjusting the size of quarks is quite easy. The Warp bubble is enough and the time of existence of that bubble determines how much energy will flow away from the material. 

The Higgs material is a theoretical form of material. The Higgs material is only the material that is turned into different sizes. The tool for that thing could be the flat or low energy Higgs boson that pulls a small part of the energy of the material to itself. 

When the WARP bubble is removed the quantum fields will press the particle to flat or different size than other particles are. Another theoretical thing that can turn quarks into a flat is Higgs Boson. When Higgs Boson is turning flat there is like the small quantum cup that is pulling energy to that thing. 

If that flat Higgs Boson is taken near material or quarks. That causes that energy travels to that quantum cup. That thing turns material to "Higgs material". The quarks in Higgs material have different sizes than visible material quarks. That makes Higgs material invisible to us. Theoretically, returning the Higgs material to visible form is easy. The lost energy must just push back to the quarks.  


Image 1) https://en.wikipedia.org/wiki/Four-dimensional_space

Image 2) https://en.wikipedia.org/wiki/Particle_physics


https://thoughtsaboutsuperpositions.blogspot.com/

Monday, December 6, 2021

Is the key to gravitation in the poles of the quantum field around atoms?

   

 Is the key to gravitation in the poles of the quantum field around atoms?


If the gravitation is a magnetic force. That requires that the quantum field around atoms must rotate freely. The protons and neutrons are formed, by a group of quarks. And their magnetic or quantum field is the sum of the quantum fields of the quarks. 

So could the key to the gravitation that the ghostly quantum field that surrounds atoms are turning their poles to opposite directions. In that case, the quantum field has independent north and south poles that are pulling each other together. In that case, the quantum field that is surrounding atoms like gauze is the thing that causes the phenomenon called gravitation. 

So could the gravitation be the magnetic force anyway? The reason for that would be that the quantum field around the atoms or subatomic particles can turn to opposite poles. 

And that thing causes that the poles of the quantum field are turning to each other. If that thing is true, that thing requires that the quantum field of the subatomic particles has its poles that are not connected with the protons or electrons. 

That means the magnetic field around the protons and nucleus of the atoms is stronger than the poles of the quantum field around it. If that thing is true, the poles of the ghostly quantum field around the atoms are the thing that causes the gravitation. 


The Higgs Boson lifetime has been measured  within septillionths of a second





Higgs Boson's lifetime has been measured by using the most accurate systems in the world. The measurement has been made within septillionths of a second which is extreme accuracy. The Higgs Boson would split in muons. Those are marked as red in the image. 

The CERN has been the leading research center in the Higgs Boson and high energy physics. The most high-energetic sensor in the world is positioning in CERN. 

And the knowledge of physics is growing all the time. The founding of Higgs Boson has started to make the re-estimate the cornerstones of the physics like Standard Model. And the fact is that the new natural laws are maybe someday reality. The key role of understanding and modeling the quantum is to understand gravitation. 

Gravitation is a mysterious force because its the weakest of all fundamental forces. And there is no observation about the transmitting particle of that force. The loss of graviton means that some people are believing that the gravitation is not an independent force at all. 

So is gravitation the force that is transmitted by pure wave movement? In that model, the gravitation would be the wave movement or string. That is touching the objects and pulling them together. 

But as I wrote somewhere earlier the form or direction of the gravitation is a mystery. There is a theory that the origin of gravitation is the oscillation of particles. When the particle oscillates it sends a photon. And the expansion of the universe causes that the size of particles. Or their quantum field is always expanding. That effect causes a part of so-called three-kelvin radiation. 

Of course, another source of the three-kelvin background radiation is the cosmic hum. When the radio waves are impacting with material or particles they are getting energy load. And that energy causes that atoms are sending energy in the form of photons. That energy is pushing those particles away from each other. 



https://newatlas.com/physics/higgs-boson-lifetime-cern/


Image:https://newatlas.com/physics/higgs-boson-lifetime-cern/


https://thoughtsaboutsuperpositions.blogspot.com/


AI can find answers to many secrets in the universe.


AI can find answers to many secrets in the universe. 



Image 1) The model of bosonic cloud.

There is introduced an idea. That boson can also form the stars.


Is dark matter the missing bosons below Higgs boson? There is no confirmed information that some particles are missing in the Standard model. But because every line of the table is the same number of particles. There is the possibility. That is in the line of the Higgs boson could be three previously unknown particles. 

There is introduced an idea. That boson can also form the stars. Like fermions could do. There is not a certain observation of the quark stars.

But those things would be the fermion stars. Quarks are fermions. But could also other fermions like electrons form the stars like giant electron crystals. And could bosons make the same thing? Maybe someday the AI can answer those questions. 







Image 2 Fundamental particles of Standard Model


The AI can search molecules from exoplanets. And it can also solve the mystery of dark matter. 

The AI can find molecules from the exoplanet atmosphere. And maybe someday the AI can find extraterrestrial lifeforms. And even alien civilizations and new natural laws. The thing is that artificial intelligence needs the matrix that is used to compile the data. That is collected from the astronomical instruments. 

This is why researchers should send the telescope far away from the Sun. That telescope can collect data on what planet Earth looks like far away from it. Then that data can compile with the data that telescopes are collecting. And maybe someday those systems and AI can find the alien race. 

The conditions of exoplanets can be extreme. The high temperature and extremely high radiation levels on the planets. Can cause that the atmosphere of the planet has an atomic form. That means the annealing of those atoms is pushing other atoms away from them. And that thing denies the form of molecules. 

The conditions on exoplanets continue for millions of years. So that thing can make the chemical and physical environment that does not exist on Earth. 


Maybe AI can solve the mystery of the ninth planet and dark matter. 


Artificial intelligence is making it possible to analyze large data masses. And maybe that thing can solve the mystery of "Planet 9" or the mysterious errors in the trajectory of planet Neptune. There is a possibility that the mysterious X-ray bursts in the atmosphere of Uranus. Aave the connection with that phenomenon that causes those anomalies in the trajectory of Neptune. 

Could that thing be the small black hole? If the black hole aims the particle flow passes it by using a parabolic trajectory that thing can happen without causing gamma-ray emission near the black hole itself. 

There is the possibility that the mysterious "Planet 9" is even more exotic than some black hole. Could that thing be the bubble of dark matter? Or when we are talking about the things like Fermion stars. We are forgetting that there is the possibility that there is some kind of bosonic star in the universe. 

Could it be possible that the fermion or bosonic stars are pushing particles away? The idea is that when those particles are spinning they are sending radiation.  There is mentioned an "exotic star" 

The term "An exotic star is a hypothetical compact star composed of something other than electrons, protons, neutrons, or muons". So could the bosons create that "exotic star"? (https://en.wikipedia.org/wiki/Exotic_star)

And that radiation can push objects or particles away. The reason why we cannot see that radiation could be the particle that sends the wave movement has a different size than particles that we know. 

The fermion stars would be large electron crystals. And there is the possibility. That also bosons can create crystal structures. The quark stars would be the fermion stars. But the thing is that the boson stars would be even more exotic. 



Image 3: Artists impression of Exoplanet KELT-9B


There is introduced an idea. That ghostly bosonic clouds are the key to dark matter. The idea is that the dark matter is actually "missing bosons" below the Higgs Boson. So that means that if those bosons are creating crystal structures those structures might be very ghostly. 

The question is, could it be possible that the fermion or bosonic stars can also push objects away? In that case, the high energy load that hits those mysterious objects causes the case that fermions or bosons are starting to spin. They are releasing energy as radiation. 

And that radiation can push objects away from the fermion or boson star. The reason why we cannot see that particle would be. That particle that sends that radiation or wave movement has a different size than particles that we already know. 

There has been introduced an idea. That the ghostly bosonic clouds can be the key to dark matter. So could the dark matter be the "missing bosons" below Higgs boson? 


Sources:


https://www.livescience.com/planet-nine-little-black-hole.html


https://newsbeezer.com/indonesiaeng/temperature-exoplanet-kelt-9b-similar-to-star-temperature/


https://physicsworld.com/a/x-ray-emissions-from-uranus-are-detected-for-the-first-time/


https://scitechdaily.com/ghostly-boson-clouds-could-solve-the-mystery-of-dark-matter/


https://theconversation.com/ai-can-reliably-spot-molecules-on-exoplanets-and-might-one-day-even-discover-new-laws-of-physics-172701


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


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


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


Image 1)https://scitechdaily.com/ghostly-boson-clouds-could-solve-the-mystery-of-dark-matter/


Image 2)https://en.wikipedia.org/wiki/Standard_Model


Image 3)https://awsimages.detik.net.id/visual/2015/08/15/4fbf27d9-ead2-4c98-b31d-44fe0dff7bbc_169.jpg?w=650


https://thoughtsaboutsuperpositions.blogspot.com/

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