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A flat disk of radius 0.50 m is oriented so that the plane of the disk makes an angle of 30 degrees with a uniform electric field. If the field strength is 713.0 N/C find the electric Tiux through the surface A) 560 Nm2/C B) 620 N·m2/C C) 160 n N.m2/C D) 280 N.m2/C

Respuesta :

Answer:

The electric flux is [tex]280\ \rm N.m^2/C[/tex]

Explanation:

Given:

  • Radius of the disc R=0.50 m
  • Angle made by disk with the horizontal [tex]\theta=30^\circ[/tex]
  • Magnitude of the electric Field [tex]E=713.0\ \rm N/C[/tex]

The flux of the Electric Field E due to the are dA in space can be found out by using Gauss Law which is as follows

[tex]\phi=\int E.dA [/tex]

where

  • [tex]\phi[/tex] is the total Electric Flux
  • E is the Electric Field
  • dA is the Area through which the electric flux is to be calculated.

Now according to question we have

[tex]=EA\cos\theta \\=713\times 3.14\times 0.5^2 \times \cos60^\circ\\=280\ \rm N.m^2/C[/tex]

Hence the electric flux is calculated.

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