Composition of Nucleus
NUCLEAR PHYSICS

147460 The binding energy of a nucleus is equivalent to

1 the mass of nucleus
2 the mass of proton
3 the mass of neutron
4 the mass defect of nucleus
NUCLEAR PHYSICS

147462 Which one is the correct representations of binding energy $\left(B_{N}\right)$ versus atomic number $\left(A_{s}\right)$ dependent ?

1
2
3
4
NUCLEAR PHYSICS

147481 Consider the following nuclear reaction $\mathrm{X}^{200} \rightarrow \mathrm{A}^{110}+\mathrm{B}^{90}+$ Energy
If the binding energy per nucleon for $\mathrm{X}, \mathrm{A}$ and $\mathrm{B}$ are $7.4 \mathrm{MeV}$, and $8.2 \mathrm{MeV}$ and $8.2 \mathrm{MeV}$ respectively, the energy released will be:

1 $90 \mathrm{MeV}$
2 $110 \mathrm{MeV}$
3 $200 \mathrm{MeV}$
4 $160 \mathrm{MeV}$
NUCLEAR PHYSICS

147485 When deuterium and helium are subjected to an accelerating field simultaneously then

1 both acquire same energy
2 deuterium accelerates faster
3 helium accelerates faster
4 neither of them is accelerated
NUCLEAR PHYSICS

147460 The binding energy of a nucleus is equivalent to

1 the mass of nucleus
2 the mass of proton
3 the mass of neutron
4 the mass defect of nucleus
NUCLEAR PHYSICS

147462 Which one is the correct representations of binding energy $\left(B_{N}\right)$ versus atomic number $\left(A_{s}\right)$ dependent ?

1
2
3
4
NUCLEAR PHYSICS

147481 Consider the following nuclear reaction $\mathrm{X}^{200} \rightarrow \mathrm{A}^{110}+\mathrm{B}^{90}+$ Energy
If the binding energy per nucleon for $\mathrm{X}, \mathrm{A}$ and $\mathrm{B}$ are $7.4 \mathrm{MeV}$, and $8.2 \mathrm{MeV}$ and $8.2 \mathrm{MeV}$ respectively, the energy released will be:

1 $90 \mathrm{MeV}$
2 $110 \mathrm{MeV}$
3 $200 \mathrm{MeV}$
4 $160 \mathrm{MeV}$
NUCLEAR PHYSICS

147485 When deuterium and helium are subjected to an accelerating field simultaneously then

1 both acquire same energy
2 deuterium accelerates faster
3 helium accelerates faster
4 neither of them is accelerated
NUCLEAR PHYSICS

147460 The binding energy of a nucleus is equivalent to

1 the mass of nucleus
2 the mass of proton
3 the mass of neutron
4 the mass defect of nucleus
NUCLEAR PHYSICS

147462 Which one is the correct representations of binding energy $\left(B_{N}\right)$ versus atomic number $\left(A_{s}\right)$ dependent ?

1
2
3
4
NUCLEAR PHYSICS

147481 Consider the following nuclear reaction $\mathrm{X}^{200} \rightarrow \mathrm{A}^{110}+\mathrm{B}^{90}+$ Energy
If the binding energy per nucleon for $\mathrm{X}, \mathrm{A}$ and $\mathrm{B}$ are $7.4 \mathrm{MeV}$, and $8.2 \mathrm{MeV}$ and $8.2 \mathrm{MeV}$ respectively, the energy released will be:

1 $90 \mathrm{MeV}$
2 $110 \mathrm{MeV}$
3 $200 \mathrm{MeV}$
4 $160 \mathrm{MeV}$
NUCLEAR PHYSICS

147485 When deuterium and helium are subjected to an accelerating field simultaneously then

1 both acquire same energy
2 deuterium accelerates faster
3 helium accelerates faster
4 neither of them is accelerated
NUCLEAR PHYSICS

147460 The binding energy of a nucleus is equivalent to

1 the mass of nucleus
2 the mass of proton
3 the mass of neutron
4 the mass defect of nucleus
NUCLEAR PHYSICS

147462 Which one is the correct representations of binding energy $\left(B_{N}\right)$ versus atomic number $\left(A_{s}\right)$ dependent ?

1
2
3
4
NUCLEAR PHYSICS

147481 Consider the following nuclear reaction $\mathrm{X}^{200} \rightarrow \mathrm{A}^{110}+\mathrm{B}^{90}+$ Energy
If the binding energy per nucleon for $\mathrm{X}, \mathrm{A}$ and $\mathrm{B}$ are $7.4 \mathrm{MeV}$, and $8.2 \mathrm{MeV}$ and $8.2 \mathrm{MeV}$ respectively, the energy released will be:

1 $90 \mathrm{MeV}$
2 $110 \mathrm{MeV}$
3 $200 \mathrm{MeV}$
4 $160 \mathrm{MeV}$
NUCLEAR PHYSICS

147485 When deuterium and helium are subjected to an accelerating field simultaneously then

1 both acquire same energy
2 deuterium accelerates faster
3 helium accelerates faster
4 neither of them is accelerated