jackjoo87 said:
thanks for your reply, Bob S.
I already calculate the answers for a(1.33) ,b (0.165), and c, KE(alpha)=2.0541 MeV); KE(H3)= 2.7259 MeV.
For question d, how mean length of alpha particle changes with pressure within the chamber? can i get directly from the curve Fig. 3.2?
This is a question on page 667 of Evans "The Atomic Nucleus". The curve 3.2 for alpha particle range on page 650 is for
1 atm air. The question asks what the range would be in
2 atm helium. the Bethe-Bloch dE/dx equation (Evans page 637) is directly proportional to the product of the number
N of atoms/cm
3 and the number
Z electrons per atom in the stopping medium. The range is inversely proportional to
NZ (see Evans page 647). For a gas (ideal gas law), the number of
molecules per cm
3 is the same for all gases at 1 atm. Air (a diatomic molecule) has
twice the number of
atoms/cm
3 at 1 atm as helium. Furthermore, helium has a
Z of 2, while air has an
effective Z of ~7.2 per atom. Does this help?
An alternative (and simpler) way of thinking about this is the Bethe-Bloch energy loss dE/dx due entirely to collisions with
electrons, and is therefore proportional to the number of
electrons per cm
3. Using this guidance,
NZ for air at 1 atm is proportional to 1 x 2 x 7.2, while for 2 atm helium it is 2 x 1 x 2. So the range in 2 atm helium is 14.4/4 = 3.6 times the range in 1 atm air. Does this make sense?
Bob S
