Calculate kinetic energy of neutrons in nuclear fission How can I calculate the mean kinetic energ

rockandriot0odjn

rockandriot0odjn

Answered question

2022-05-14

Calculate kinetic energy of neutrons in nuclear fission
How can I calculate the mean kinetic energy of an emitted neutron in a nuclear fission. Take for example the fission of U-235 to Ba-141 and Kr-92.
A calculation which just shows that the mean energy will be in the range of "fast" neutrons (> 1MeV) would be enough for me.

Answer & Explanation

Madelyn Lynch

Madelyn Lynch

Beginner2022-05-15Added 15 answers

This is an interesting problem because the naïve approach gives the wrong answer.
If you model the fission as a four- or five-body decay,
236 U B a + K r + ( 2 or 3 ) n ,
where the initial 236 U is at rest, the total momentum of all the decay products has to add up to zero and the total energy has to add up to the Q-value of the fission reaction. The most likely way to add up to zero momentum is for all the fragment momenta p B a , p K r , p n to have roughly the same magnitude but to be directed in random directions in space. (Compare to a two-body decay, where the final momenta must have the same magnitude and opposite directions, or to a three-body decay, where the phase space for two products to have nearly parallel momenta is much smaller than the phase space for the angles between all the momenta to be large.)
If all the momenta have more or less the same magnitude, that predicts that the kinetic energies
E i = p i 2 / 2 m i
should mostly be carried by the least massive decay products, the neutrons. The reality, however, goes the other way. That's a strong argument that the five-body decay model is wrong.
A more likely approach might be a series of two-body decays, such as
236 U 142 B a + 92 K r 142 B a 141 B a + n 92 K r 91 K r + n
where the time it takes for the fission fragments to decay by neutron emission is comparable to the time required for the fission framgents to (partially) thermalize by interacting with the surrounding medium. In the literature (for example) this is known as "neutron evaporation" from the excited fission fragments. It's easy to check that the fission fragments will be born traveling at 3--5% of the speed of light, which gives them plenty of time for many thermalizing interactions with other nuclei in the fuel during the 10 15 s before the "prompt" neutrons are emitted.
So now your question becomes: why do neutrons which evaporate from an excited nucleus at rest have typical energies of a few MeV? That answer is much more boring: it's because a mega-eV is the typical spacing between nuclear energy levels. Alpha and beta decay energies are typically a few MeV for the same reason.
hard12bb30crg

hard12bb30crg

Beginner2022-05-16Added 3 answers

I still won't plug the numbers in for you but I'll explain the principle.
You start off with your 235 U and all the energy that is wrapped up in there will be our total (we can see how much we have to play with from the mass excess). Then, through fission, you get your 141 Ba and 92 Kr and two neutrons (this depends on whether you have spontaneous fission or neutron induced fission but you can adapt this as fits your situation). Now check how much energy you have left to play with from your original uranium using the basic rule:
Q = Δ ( A ) + Δ ( B ) Δ ( C ) Δ ( D )
Where your Δ ( A ) is the mass excess of some particle A in the reaction A + B C + D. Your energy Q is left to be distributed among your remaining products. This energy is then distributed as a Maxwell-Boltzmann PDF, the neutrons(being lightest) could take the majority of that energy and conserve momentum (since momentum depends on v and kinetic energy on v 2 ) so you can approximate the maximum kinetic energy of the neutron as the Q value.
235 92 141 = 2

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