Determine type of particle emitted from decay?

bob dobilina
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Homework Statement


A Phosphorous 34 decays and emits a particle. A JJ Thomson experiment is done to find out the charge to mass ratio of this particle. The particle moves undeflected through mutually perpendicular magnetic and electric fields of 2.00 x 10-3 T and 1.08 x 104 N/C, respectively. When the electric field is turned off, the particle deflects to a radius of 1.53x10-2m. Determine the type of particle emitted.

Homework Equations


Fe = electric Force
Fm = Magnetic Force
Fc= centripetal Force
B=Magnetic Field
r=radius of curvature
m=mass
v=velocity
E=Electric Field
q=charge of particle

Fe= qE
Fm=qvB
Fc=mv2/r

When the electric field is turned off we know that Fm=Fc
Because the particle is undeflected, we know that Fe=Fm

The Attempt at a Solution


To find the v of this particle, we can manipulate the formual of Fe=Fm into:
E=vB
v=(E/B)

To find the mass of the particle we can manipulate the formual of Fm=Fc into:
m= (Fc x r)/v2

So, i figured out the velocity and mass of the particle, and now I am trying to determine the type of particle emitted. Am i able to do this using mass only? Or should I try and find the charge of the particle, and if so how?

Thanks
 
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You have no info to help you find the charge. So you are restricted to the type of particle (pion, muon, Kaon, electron/positron), just like the exercise text puts it.
 
BvU said:
You have no info to help you find the charge. So you are restricted to the type of particle (pion, muon, Kaon, electron/positron), just like the exercise text puts it.
Would i be able to manipulate Fm=Fc to find q (the charge).
qvB=mv2/r
q=(mv)/(rB)
?
 
If you have the direction of ##\vec B##, ##\vec v## and know which way it deflects, yes. But you don't.
 
BvU said:
If you have the direction of ##\vec B##, ##\vec v## and know which way it deflects, yes. But you don't.

Alright. I figure the charge to mass ratio should be:
Fm=Fc
qvB = (mv2)/r
(q/m)=v/(Br)
When i crunch the numbers I get an answer of 1.7647 x 10 11
Same as an electron..what do you think of this?
 
Crunching numbers gives a number. But you need a mass. In kilograms, preferably (not in stones, lbs or that kind of stuff).

Pretty heavy electrons ! perhaps ##10^{-11}## (if the 'number' is in kilograms) ?

:wink:

But I think you are doing fine. Click 34P in this table to see the decay mode...[edit] Oops I forgot, ##m_e = 9.10938291 × 10^{-31}## kilograms ??

[edit] Oops2 I remember the value of e/m in C/kg is the same as your number, that's a lot better !
 
BvU said:
Crunching numbers gives a number. But you need a mass. In kilograms, preferably (not in stones, lbs or that kind of stuff).

Pretty heavy electrons ! perhaps ##10^{-11}## (if the 'number' is in kilograms) ?

:wink:

But I think you are doing fine. Click 34P in this table to see the decay mode...[edit] Oops I forgot, ##m_e = 9.10938291 × 10^{-31}## kilograms ??

[edit] Oops2 I remember the value of e/m in C/kg is the same as your number, that's a lot better !
Sorry I should have included the units in my ratio. Awesome. Thank you for the help.
 

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