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g A small object of mass 2.5 g and charge 18 uC is suspended motionless above the ground when immersed in a uniform electric field perpendicular to the ground. What is the magnitude and direction of the electric field

User Verysuperfresh
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1 Answer

15 votes
15 votes

Answer:
1361.11\ N/C,\text{upward}

Step-by-step explanation:

Given

Mass of particle is
m=2.5\ gm

Charge of particle is
q=18\ \mu C

Electrostatic force must balance the weight of the particle


\lim_(n \to \infty) a_n \Rightarrow mg=qE\\\\\Rightarrow E=(2.5* 9.8* 10^(-3))/(18* 10^(-6))\\\\\Rightarrow E=1361.1\ N/C

Direction of the electric field is in upward direction such that it opposes the gravity force.

User Taewan
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