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प्रश्न
The energy released in joule and MeV in the following nuclear reaction,
\[\ce{^2_1{H} + ^2_1{H} -> ^3_2{He} + ^1_0{n}}\]
(Assume that the masses of \[\ce{^2_1{H}}\], \[\ce{^3_2{He}}\] and neutron (n) respectively are 2.0141, 3.0160 and 1.0087 in amu) is ______ × 10−13 J.
विकल्प
1.87
2.65
3.24
5.22
MCQ
रिक्त स्थान भरें
उत्तर
The energy released in joule and MeV in the following nuclear reaction,
\[\ce{^2_1{H} + ^2_1{H} -> ^3_2{He} + ^1_0{n}}\]
(Assume that the masses of \[\ce{^2_1{H}}\], \[\ce{^3_2{He}}\] and neutron (n) respectively are 2.0141, 3.0160 and 1.0087 in amu) is 5.22 × 10−13 J.
Explanation:
Δm = [2 × 2.0141] – 3.0160 – 1.0087
= 3.5 × 10–3 amu
ΔE = Δm × 931.478 MeV
ΔE = 3.5 × 10–3 × 931.478
= 3.260 MeV
ΔE = 5.22 × 10–13 J
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