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Suppose two equal charges of 0.65 C each are separated by a distance of 2.5 km in air. What is the magnitude of the force acting between them, in newtons?
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Suppose two equal charges of 0.65 C each are separated by a distance of 2.5 km in air. What is the magnitude of the force acting between them, in newtons?

User Moshbear
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1 Answer

3 votes

Answer:

Force between two equal charges will be 608.4 N

Step-by-step explanation:

We have given charges
q_1=0.65C\ and\ q_2=0.65C

Distance between the charges = 2.5 km = 2500 m

According to coulombs law force between two charges is given by


F=(1)/(4\pi \varepsilon _0)(q_1q_2)/(r^2)=(Kq_1q_2)/(r^2), here K is constant which value is
9* 10^9Nm^2/C^2

So force
F=(9* 10^9* 0.65* 0.65)/(2500^2)=608.4N

User Karlen Kishmiryan
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6.4k points
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