In fusion reaction `._(1)H^(2) + ._(1)H^(2) to ._(2)He^(4) + Q`
Find the energy released while binding energy per nucleon for deuterium is 1.12 MeV and for helium nucleus is 7.07 MeV

If the binding energy per nucleon of deuterium is 1.115 MeV, its mass defect in atomic mass unit is

Nuclear energy is released in fusion reaction, since binding energy per nucleon is

When two dentrons (._(1)H^(2)) fuse to from a helium nucleus ._(2)He^(4), 23.6 MeV energy is released. Find the binding energy of helium if it is 1.1 MeV for each nucleon of deutrim.

Two deuterons udnergo nuclear fusion to form a Helium nucleus. Energy released in this process is : (given binding energy per nucleon for deuteron = 1.1 MeV and for helium = 7.0 MeV)

The amount of energy released in the fusion of two ._(1)H^(2) to form a ._(2)He^(4) nucleus will be {Binding energy per nucleon of ._(1)He^(2)=1.1 MeV Binding energy per nucleon of ._(2)He^(4)=7 MeV ]

The mass defect of He_(2)^(4) He is 0.03 u. The binding energy per nucleon of helium (in MeV) is

Assume the binding energy per nucleon for deuteron (1)H^(2) and Helium (2)He^(4) is 1.1MeV and 7.1MeV respectively.The energy released (in "MeV ) when two deuterons fuse to form a helium nucleus is "n" .Then "n" is