Strong interactions (Nuclear physics)

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Information for Authority record

Name (Hebrew)
תהליכים חזקים (פיזיקה גרעינית)
Name (Latin)
Strong interactions (Nuclear physics)
Name (Arabic)
التفاعلات القوية (الفيزياء النووية)
See Also From tracing topical name
Nuclear reactions
MARC
MARC

Other Identifiers

Wikidata: Q11415
Library of congress: sh 98005979
Sources of Information
  • Summer Institute on Particle Physics (24th : 1996 : Stanford Linear Accelerator Center). Proceedings of the Summer Institute on Particle Physics ... 1997:t.p. (the strong interaction)
  • McGraw-Hill dict. sci. tech.:s.v. (Strong interaction; one of the fundamental interactions of elementary particles, primarily responsible for nuclear forces and other interactions among hadrons)
  • Conference on Prospects for Strong Interaction Physics at ISABELLE (1977 : Brookhaven National Laboratory). Prospects for strong interaction physics at ISABELLE, 1977.
  • INSPEC thes.(Elementary particle strong interactions INIS thes. (Strong interactions))
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Wikipedia description:

In nuclear physics and particle physics, the strong interaction, also called the strong force or strong nuclear force, is one of the four known fundamental interactions. It confines quarks into protons, neutrons, and other hadron particles, and also binds neutrons and protons to create atomic nuclei, where it is called the nuclear force. Most of the mass of a proton or neutron is the result of the strong interaction energy; the individual quarks provide only about 1% of the mass of a proton. At the range of 10−15 m (1 femtometer, slightly more than the radius of a nucleon), the strong force is approximately 100 times as strong as electromagnetism, 106 times as strong as the weak interaction, and 1038 times as strong as gravitation. In the context of atomic nuclei, the force binds protons and neutrons together to form a nucleus and is called the nuclear force (or residual strong force). Because the force is mediated by massive, short lived mesons on this scale, the residual strong interaction obeys a distance-dependent behavior between nucleons that is quite different from when it is acting to bind quarks within hadrons. There are also differences in the binding energies of the nuclear force with regard to nuclear fusion versus nuclear fission. Nuclear fusion accounts for most energy production in the Sun and other stars. Nuclear fission allows for decay of radioactive elements and isotopes, although it is often mediated by the weak interaction. Artificially, the energy associated with the nuclear force is partially released in nuclear power and nuclear weapons, both in uranium or plutonium-based fission weapons and in fusion weapons like the hydrogen bomb.

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