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Question
two point - charges (q_1) and (q_2) are held in place 4.50 cm apart. another point - charge (q = 1.75 mu c) of mass 5.00 g is initially located 3.00 cm from each of these charges and released from rest. you observe that the initial acceleration of (q) is (324 m/s^{2}) parallel to the line connecting the two point - charges. find (q_1) and (q_2).
Step1: Identify relevant forces and laws
We use Coulomb's law $F = k\frac{q_1q_2}{r^2}$ and Newton's second - law $F = ma$.
Step2: Analyze the symmetry of the problem
Due to symmetry, the vertical components of the electric forces on charge $Q$ from $q_1$ and $q_2$ cancel out. Only the horizontal components contribute to the acceleration. Let the distance between $q_1$ and $q_2$ be $d = 4.50\ cm=0.045\ m$, and the distance between $Q$ and each of $q_1,q_2$ be $r = 3.00\ cm = 0.03\ m$. The mass of $Q$ is $m=5.00\ g = 0.005\ kg$, the charge of $Q$ is $Q = 1.75\ \mu C=1.75\times 10^{- 6}\ C$, and the acceleration of $Q$ is $a = 324\ m/s^2$.
Step3: Calculate the net horizontal force
The net force on $Q$ is $F = ma$. According to Coulomb's law, the horizontal component of the force exerted by $q_1$ (or $q_2$) on $Q$ is $F_x=k\frac{qQ}{r^2}\cos\theta$, where $\cos\theta=\frac{d/2}{r}$. The net horizontal force $F = 2F_x$. So $ma = 2k\frac{qQ}{r^2}\cos\theta$.
Step4: Solve for $q$ (where $q = q_1=q_2$ due to symmetry)
We know that $\cos\theta=\frac{d/2}{r}=\frac{0.045/2}{0.03}=0.75$. Rearranging the equation $ma = 2k\frac{qQ}{r^2}\cos\theta$ for $q$ gives $q=\frac{ma r^2}{2kQ\cos\theta}$. Substituting the values $k = 9\times 10^{9}\ N\cdot m^2/C^2$, $m = 0.005\ kg$, $a = 324\ m/s^2$, $r = 0.03\ m$, $Q = 1.75\times 10^{-6}\ C$, and $\cos\theta = 0.75$ into the formula:
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$q_1 = q_2=61.7\ nC$