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University Physics with Modern Physics

Hugh D. Young, Roger A. Freedman

Physics

14th edition Edition 路 1596 pages

ISBN: 9780321973610

Chapter 4: Q15E (page 714)

In Example 21.3, calculate the net force on charge $q_{1}$

Short Answer

Expert verified

The net force on the charge $q_{1}$ is $18.0 脳 10^{- 5} N$ .

Step by step solution

01

Step 1:

As $q_{2}$ exerting an attractive force on charge $q_{1}$

And $q_{3}$ exerting a repulsive force in charge $q_{1}$ .

So, combining the two forces to find the net force exerted on $q_{1}$ .

02

Step 2:

Force by $q_{2}$ on $q_{1}$ is

$F_{2} = k \frac{|q_{1} q_{2}|}{r^{2}}$

Here, K is $9.0 脳 10^{9} N 路 m^{2} / C^{2}$ , r is the distance between $q_{1}$ and $q_{2}$ , $r = 2 c m$

$q_{1} = 1.0 n C$ and $q_{2} = 3.0 n C$

Putting all these values

$F_{2} = (9.0 脳 10^{9}) (\frac{(- 3 脳 10^{- 9}) (1 脳 10^{- 9})}{{(0.02)}^{2}}) = 6.75 脳 10^{- 5} N$

03

Step 3:

Force by $q_{3}$ on $q_{1}$ is

$F_{3} = K \frac{|q_{3} q_{1}|}{r^{2}}$

Here, $q_{1} = 1.0 n C$ and $q_{3} = 5.0 n C$

Putting all these values

$F_{3} = (9.0 脳 10^{9}) (\frac{(5 脳 10^{- 9}) (1 脳 10^{- 9})}{{(0.02)}^{2}}) = 11.25 脳 10^{- 5} N$

So, the net force is

$F_{n e t} = F_{2} + F_{3} = 6.75 脳 10^{- 9} + 11.25 脳 10^{- 9} = 18.0 脳 10^{- 5} N$

Hence, the Net force on the charge $q_{1}$ is $18.0 脳 10^{- 5} N$ .

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