Answer to Question #169227 in Field Theory for Katherina

Question #169227

Point charge q 1 = +2.00µC is located @ x = 0, y = 10cm and q 2 = -

2.00µC is located @ x = -5.0cm, y = -5.0cm. Find the net electric field

at the origin.

Expert's answer

Answer

Electric field due to Point charge q 2 = +2.00µC is

"E_1=\\frac{9\\times10^9\\times2\\times10^{-6}}{(10^2)}" (-j)

=180(-j) V/m on origin

Electric field due to Point charge q 2 = +2.00µC is

"E_2=\\frac{9\\times10^9\\times2\\times10^{-6}}{(5^2+5^2)}" (-i-j)

=360(-i-j) V/m on origin

So net electric field on origin is

"E=E_1+E_2"

=360(-i)+540(-j)

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