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Question
The fission properties of \[\ce{_94Pu^239}\] are very similar to those of \[\ce{_92U^235}\]. How much energy (in MeV), is released if all the atoms in 1 g of pure \[\ce{_94Pu^239}\] undergo fission? The average energy released per fission is 180 MeV.
Numerical
Solution
Number of atoms in 1 g of pure \[\ce{Pu}\]
= `(6.023 xx 10^23)/239 xx 1000`
= 2.52 × 1024
As average energy released in fission is 180 MeV, the total energy released
= 2.52 × 1024 × 180 MeV
= 4.53 × 1026 MeV
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