Примери за използване на Quarks and gluons на Английски и техните преводи на Български
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In QGP, the colour charges of quarks and gluons are screened.
In a QGP, the color charge of the quarks and gluons is screened.
The dynamics of the quarks and gluons are controlled by the quantum chromodynamics Lagrangian.
Since the force between color charges does not decrease with distance,it is believed that quarks and gluons can never be liberated from hadrons.
For one billionth of a trillionth of a second,they break up into a plasma… consisting of quarks and gluons, the glue that holds the quarks together.
In this image, clouds of quarks and gluons on the boundary surface describe related complex objects such as an apple in the interior.
The impact tears the particles apart into their component pieces and some of the energy involved converts into a hot,soup-like plasma of quarks and gluons.
These particles are the quarks and gluons that compose baryonic matter.
The temperature is so high that the boundaries between different nuclei disappear so everything becomes a hot-plasma soup of quarks and gluons,” says Wang.
Just like these glass balls are filled with a bunch of stuff, the protons that are smashed together at the LHC are also filled with stuff-- particles called quarks and gluons.
Color charge is a property of quarks and gluons that is related to the particles' strong interactions in the theory of quantum chromodynamics QCD.
To get a grasp on what holds these visible forms of matter together- everything from stars to planets to people- you have to understand how quarks and gluons interact.
This state is thought to consist of asymptotically free strong-interacting quarks and gluons, which are ordinarily confined by color confinement inside atomic nuclei or other hadrons.
The quarks and gluons stay separated for only fractions of a second before decaying, but that's long enough for scientists to observe them using powerful equipment.
Thus, about 4 to 5 percent of the entire universe--almost all the familiar matter around us--comes from the energy of motion of quarks and gluons in protons and neutrons.
The theory of quarks and gluons and the strong interaction accounts quantitatively for“the mass of protons, neutrons and ultimately you and me and everything around us.”.
The fact that confinement prevents one from observing an isolated quark orgluon might seem to make the whole notion of quarks and gluons as particles somewhat metaphysical.
This process(baryogenesis) was accompanied by the combination of quarks and gluons in hadrons, as well as the probable appearance of cosmological topological defects(in particular, cosmological strings, walls and monopoles).
In a fundamental way, it connects string theory, the most studied approach to quantum gravity, with theories of quarks and gluons, which are the cornerstone of particle physics.
This process(baryogenesis) was accompanied by the combination of quarks and gluons in hadrons, as well as the probable appearance of cosmological topological defects(in particular, cosmological strings, walls and monopoles).
At these temperatures even protons and neutrons, which make up the nuclei of atoms,melt resulting in a hot dense soup of quarks and gluons known as a quark-gluon plasma.”.
Asymptotic freedom, a steady reduction in the strength of interactions between quarks and gluons as the energy scale of those interactions increases(and the corresponding length scale decreases).
Above a critical temperature, proton and neutrons and other forms of hardronic matter'melt' into a hot,dense soup of free quarks and gluons, the quark-gluon plasma.
The amount of entropy the researchers found agreed with that expected assuming the quarks and gluons were entangled, the physicists report in their paper, which is now awaiting peer review before publication in a journal.
Early in the life of our universe, for a few millionths of a second, matter was a very hot and very dense medium- a kind of primordial‘soup' of particles,mainly composed of fundamental particles known as quarks and gluons.
In theoretical physics, quantum chromodynamics(QCD) is the theory of the strong interaction between quarks and gluons, the fundamental particles that make up composite hadrons such as the proton, neutron and pion.
Although the experimental high temperatures and densities predicted as producing a quark- gluon plasma have been realized in the laboratory,the resulting matter does not behave as a quasi-ideal state of free quarks and gluons, but, rather, as an almost perfect dense fluid.