Electrion moving between two parallel plates

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Homework Statement


At what angle will the electrons in the image leave the uniform electric field at the end of the parallel plates (point P) ? Assume the plates are .049 m long, E = 5x10^3 N/C and v0 = 1x10^7 m/s. Ignore fringing of the field.
GIANCOLI.ch21.p59.jpg

Homework Equations


E = kQ/r^2
F=ma
F= kQ1Q2/r^2

The Attempt at a Solution


I am having difficulty figuring out how to get started. I know the equation for the motion of the electron is
y= -(eEx^2)/(2mv0^2) but I don't know if this helps me. I think they want the angle the path of the electron makes with the x axis, but I am not sure. Can someone get me started or give me a hint on how to relate the angle to everything else please?
 
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The angle at which the electron is moving is given by the direction of the velocity vector of the electron. So, try to figure out the x and y components of the velocity at point P.

Note: Two out of the three equations that you listed under "relevant equations" are not actually relevant to this problem. Can you spot them?
 
I tried plugging in .049 m for x into the equation of motion as well as the mass of an electron for m and all the other given information and got
y = - [(1.602x10^-19)(5x10^3)(.049)^2]/[2(9.1x10^-31)(1x10^7)^2] = -.011 m
which is how far below the x-axis it is so the angle would be tan^-1(-.011/.049) = -13 degrees?
 
I guess F= ma is the relevant one?
 
ok so to find the velocity vector at point P ... there is no x component of acceleration, so vx= v0
vy = vy0 - at
vy0 = 0 so
vy = - at
a = F/m = qE/m = -eE/m
so
vy = eEt/m ... am i on the right track?
 
toothpaste666 said:
ok so to find the velocity vector at point P ... there is no x component of acceleration, so vx= v0
vy = vy0 - at
vy0 = 0 so
vy = - at
a = F/m = qE/m = -eE/m
so
vy = eEt/m ... am i on the right track?

Yes, you are!
 
I think I am now stuck though because I don't have any information for t
 
ah thank you! so it constantly travels 1x10^7 m/s in the x direction for the length of .049 m.
v = d/t so t= d/v = .049 m / 1x10^7 m/s = 4.9 x 10 ^-9 s
so
vy = eEt/m = (1.602x10^-19)(5x10^3)(4.9x10^-9)/(9.1x10^-31) = 4313077 m/s right?
 
ok so that means theta = tan^-1(4313077/(1x10^7)) = 23.3 degrees but -23.3 degrees because it is going clockwise from the x axis
 
Yes. Or you can just say 23.3o below the horizontal. (That way, whoever sees your answer doesn't have to decipher the meaning of the negative sign.) But, if you are having to plug your answer into some sort of grading program, then you might need to include the sign.
 
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thank you so much!