109,409 views
22 votes
22 votes
What magnitude charge creates a 19.59 N/C electric field at a point 9.52 m away?

User QuantumMechanic
by
2.8k points

1 Answer

9 votes
9 votes

Given:

The magnitude of the electric field is: E = 19.59 N/C

The distance at which the electric field is measured is: r = 9.52 m

To find:

The magnitude of the charge.

Step-by-step explanation:

The expression for the electric field intensity E is given as:


E=k(q)/(r^2)

Here, k = 4πε₀ ≈ 8.99 × 10⁹ N.m²/C², q = the magnitude of the charge.

Rearranging the above equation, we get:


q=(Er^2)/(k)

Substituting the values in the above equation, we get:


\begin{gathered} q=\frac{19.59\text{ N/C}*\text{ \lparen}9.52\text{ m\rparen}^2}{8.99*10^9\text{ N.m}^2\text{/C}^2} \\ \\ q=\frac{19.59\text{ N/C}*90.6304\text{ m}^2}{8.99*10^9\text{ N.m}^2\text{/C}^2} \\ \\ q=1.975*10^(-7)\text{ C} \\ \\ q=0.1975\text{ }*10^(-6)\text{ C} \\ \\ q\approx0.1975\text{ }\mu\text{C} \end{gathered}

Final answer:

The magnitude of the charge is 0.1975 microCoulombs.

User Nickb
by
2.7k points