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A uniformly charged rod (length = 2.0 m, charge per unit length = 5.0 nc/m) is bent to form one quadrant of a circle. what is the magnitude of the electric field at the center of the circle?
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A uniformly charged rod (length = 2.0 m, charge per unit length = 5.0 nc/m) is bent to form one quadrant of a circle. what is the magnitude of the electric field at the center of the circle?

User Michael Schnerring
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1 Answer

3 votes

Electric field at the center of circular arc is given by the formula


E = (2k\lambda sin(\theta)/(2))/(R)

here we know that


\lambda = 5nC/m


k = 9 * 10^9 Nm^2/C^2


(\pi)/(2)R = L = 2m


R = (4)/(\pi)

also we know that


\theta = (\pi)/(2)

now from above formula


E = (2(9* 10^(-9))(5* 10^(-9))sin45)/(4/\pi)


E = 50 N/C

User Fred Laurent
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7.6k points
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