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Four particles each having a charge q, are placed on the four vertices of a regular pentagon. The distance of each corner from the centre is a. Find the electric field at the centre of the pentagon.

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Let the charges be placed at the vertices A,B,C and D
of the pentagon ABCDE. If we put a charge q at the
corner E also, the field at O will be zero by symmetry.
Thus, the field at the centre due to the charges at A, B,
C and D is equal and opposite to the field due to the
charge q at E alone.
The field at O due to the charge q at E is
`(q)/(4piepsilon_0 alpha^2)` along EO.
Thus the field at O due to the given system of charge
is `(q)/(4piepsion_0alpha^2)` along OE.
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