- #1
Punchlinegirl
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A charged mass on the end of a light string is attached to a point on a uniformly charged vertical sheet of infinite extent. The acceleration of gravity is 9.8 m/s^2 and the permittivity of free space is 8.85 x 10^-12 C^2/Nm^2. Find the angle \theta the thread makes with the vertically charge sheet. Answer in units of degrees.
Given:
mass of ball= 1 g
Areal charge density of the sheet= 0.23 \mu C/m^2
length of the string = 78.9 cm
Then force of charge= qE= q\sigma / 2E_0
We did some of this problem in class and went through the long process of drawing a free body diagram and summing up the components, we found that it was easier to use the pythagorean theorem to solve for T.
I found that T= \sqrt (mg)^2 + (qE)^2
So T= \sqrt 96.04 + 1.32 x 10^-5
So T= 9.8.
Then I plugged it into what we got for the forces in the y-direction, which was \theta= cos^-1 (-mg/T)
So theta= cos ^-1 (-9.8/9.8)
= 180 degrees which is wrong... can someone help me please?
Given:
mass of ball= 1 g
Areal charge density of the sheet= 0.23 \mu C/m^2
length of the string = 78.9 cm
Then force of charge= qE= q\sigma / 2E_0
We did some of this problem in class and went through the long process of drawing a free body diagram and summing up the components, we found that it was easier to use the pythagorean theorem to solve for T.
I found that T= \sqrt (mg)^2 + (qE)^2
So T= \sqrt 96.04 + 1.32 x 10^-5
So T= 9.8.
Then I plugged it into what we got for the forces in the y-direction, which was \theta= cos^-1 (-mg/T)
So theta= cos ^-1 (-9.8/9.8)
= 180 degrees which is wrong... can someone help me please?
