Difference between revisions of "Chapter 21 Problem 20"

Problem

Two small charged spheres hang from cords of equal length ${\displaystyle l}$ and make small angles ${\displaystyle \theta _{1}}$ and ${\displaystyle \theta _{2}}$ with the vertical.

(a) If ${\displaystyle Q_{1}=Q}$, ${\displaystyle Q_{2}=2Q}$ and ${\displaystyle m_{1}=m_{2}=m}$ determine the ratio ${\displaystyle \theta _{1}/\theta _{2}}$

(b) If ${\displaystyle Q_{1}=Q}$, ${\displaystyle Q_{2}=2Q}$ and ${\displaystyle m_{1}=m}$ ${\displaystyle m_{2}=2m}$ determine the ratio ${\displaystyle \theta _{1}/\theta _{2}}$

(c) Estimate the distance between the spheres for each case.

Solution

In the small angle approximation:

• the spheres only have horizontal displacement, and so the electric force of repulsion is always horizontal.
• ${\displaystyle \tan \theta \approx \sin \theta \approx \theta }$

Since the spheres are in equilibrium, the net force in each direction is zero.

(a)

${\displaystyle \sum F_{1x}=F_{T1}\sin \theta _{1}-F_{E1}=0\rightarrow F_{E1}=F_{T1}\sin \theta _{1}}$

${\displaystyle \sum F_{1y}=F_{T1}\cos \theta _{1}-m_{1}g=0\rightarrow F_{T1}={\frac {m_{1}g}{\cos \theta _{1}}}\rightarrow F_{E1}={\frac {m_{1}g}{\cos \theta _{1}}}\sin \theta _{1}=m_{1}g\tan \theta _{1}=m_{1}g\theta _{1}}$

similarly

${\displaystyle F_{E2}=m_{2}g\theta _{2}}$

Apply Newton's third law:

${\displaystyle F_{E1}=F_{E2}\rightarrow m_{1}g\theta _{1}=m_{2}g\theta _{2}\rightarrow \theta _{1}{\big /}\theta _{2}=m_{2}{\big /}m1}$

Thus the answer is 1

(b)

${\displaystyle \theta _{1}{\big /}\theta _{2}=m_{2}{\big /}m1=2}$

(c)

The distance between the two spheres in small angle approximation is

${\displaystyle d=l\sin \theta _{1}+l\sin \theta _{2}\approx l(\theta _{1}+\theta _{2})}$

in the first case ${\displaystyle \theta _{1}=\theta _{2}}$ thus:

${\displaystyle d=2l\theta _{1}\rightarrow \theta _{1}={\frac {d}{2l}}}$

${\displaystyle m_{1}g\theta _{1}=F_{E1}={\frac {kQ(2Q)}{d^{2}}}=mg{\frac {d}{2l}}}$

${\displaystyle d=\left({\frac {4lkQ^{2}}{mg}}\right)}$

in the second case ${\displaystyle 2\theta _{1}=\theta _{2}}$ thus:

${\displaystyle d={\frac {3}{2}}l\theta _{1}\rightarrow \theta _{1}={\frac {2d}{3l}}}$

${\displaystyle m_{1}g\theta _{1}=F_{E1}={\frac {kQ(2Q)}{d^{2}}}=mg{\frac {2d}{3l}}}$

${\displaystyle d=\left({\frac {3lkQ^{2}}{mg}}\right)^{1/3}}$