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A –8.0-µC charge is located 0.45 m to the left of a +6.0-µC charge. What is the magnitude and direction of the electrostatic force on the positive charge?

User Panu Oksala
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1 Answer

17 votes
17 votes

Answer:

2.133 N to the left

Step-by-step explanation:

We can represent the situation with the following equation:

Then, the magnitude can be calculated as:


\begin{gathered} F=k(q_1q_2)/(r^2) \\ \\ \text{ Where k = 9 x 10}^9\text{ N m}^2\text{ /C}^2 \end{gathered}

Where q1 and q2 are the charges and r is the distance. So, replacing q1 = 8 x 10^(-6) C, q2 = 6.0 x 10^(-6) C, and r = 0.45 m, we get:


F=(9*10^9)((8*10^(-6))(6*10^(-6)))/(0.45^2)=2.133\text{ N}

Therefore, the magnitude of the electrostatic force is 2.133 N and the direction is to the left.

A –8.0-µC charge is located 0.45 m to the left of a +6.0-µC charge. What is the magnitude-example-1
User Tom Page
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2.5k points