Electric Fields , Finding final velocity. NEED HELP

AI Thread Summary
To find the final velocity of charge Q1 when released from a distance of 12 cm from stationary charge Q2, the initial method using constant acceleration was incorrect due to varying acceleration. Instead, applying the conservation of energy principle is recommended. The work done by the electric force was calculated, leading to the conclusion that the potential energy change equals the kinetic energy gained. After recalculating with the correct force at 20 cm, the final velocity was determined to be approximately 28.3 m/s, aligning with the answer key. Using energy methods provides a more accurate solution for this scenario.
skye204
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Homework Statement


Mass= 15g
Q1= 8.0uC
Q2= 25 uC (stationary)

Q1 is released from a point 12cm from Q2. How fast will Q1 be moving when the separation is 20cm.


Homework Equations



F=ma
F=qe
F=kQq/r2
E=kQ/r2
Ke=mv2/2
W=FD
vf2=vi2+2ad

The Attempt at a Solution


F=(9x109)(25x10^-6)(8x10^-6)/(.12^2)
F=125N

F=MA
125/0.015= A
A= 8333m/s2

vf2=vi2+2ad
vf2=0+2(8333)(.20-.12)
vf=36.5m/s

ACTUAL ANSWER IS : 28.3 according to the answer key

Thanks for help!
 
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Hi skye204! Welcome to PF :smile:

The formula that you've used i.e "vf2=vi2+2ad" is applicable only when the acceleration is constant. In this case acceleration changes, so this is not applicable. I would suggest you apply the energy conservation principle instead :wink:
 
vf2=vi2+2ad
vf2=0+2(8333)(.20-.12)
vf=36.5m/s



you can not use the above formula as the acceleration is not constant.
you should try using energy method.
 
I get it

W=FD
W=125N x.12
W= 15

F=(9x109)(25x10^-6)(8x10^-6)/(.2^2)
F=45N


W=45 x .2
W= 9

pe=pe' + ke'
15= 9 + 0.015(v^2)/2
v= 28.28

Thanks!
 

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