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Question

The magnitude of the average electric field normally present in the atmosphere just above the surface of the Earth is about 150N/C, directed inward towards the center of the Earth. This gives the total net surface charge carried by the Earth to be : [Given ϵ0=8.85×1012C2/Nm2,RE=6.4×106m]
  1. +660kC
  2. 660kC
  3. +680kC
  4. 680kC

A
+660kC
B
660kC
C
680kC
D
+680kC
Solution
Verified by Toppr

From Gauss' Law,
the electric field entering the Earth's atmosphere is E. The flux of this field is,
E.ds = E×4πR2
This should be equal to the charge enclosed inside the Earth divided by ϵ
Hence,
E×4πR2 = qϵ
Hence, putting back the value of 3 knowns, the value of q=680×103C

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