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The electric field in a certain region of Earth’s atmo- sphere is directed vertically down. At an altitude of 300 m the field has magnitude 60.0 N/C; at an altitude of 200 m, the magnitude is 100 N/C. Find the net amount of charge contained in a cube 100 m on edge, with horizontal faces at altitudes of 200 and 300 m

Respuesta :

anniwuanyanwu1

Answer:

Net charge contained in the cubeq= 3.536×10^-6C

Explanation:

Formular for total flux in a cube is given as:

Total flux= E300Acos(180) + E200Acos(0)

Where A is crossectional area

Total flux= A(E200-E300)

Total flux= q/Eo

q= Eo×total flux

q=(8.84×10^-12)×(100)^2×(100-60)

q= 3.536×10^-6C

ajeigbeibraheem

Answer:

[tex]q = 3.54*10^{-6}C[/tex]

Explanation:

Given that:

A = 100m

([tex]E_l[/tex]) = 100

([tex]E_v[/tex]) = 60

E₀(constant) = 8.85 * 10⁻¹²

The net amount of charge can be found using the expression:

=  [tex]\frac{q}{E_0} = \theta[/tex]

=  [tex]q= \theta E_0[/tex]   where θ =0; A(El-Ev)

=  [tex]q= E_0A(E_l-E_v)[/tex]

=  [tex]q=(8.85*10^{-12}*(100)^2*(100-60)[/tex]

=  [tex]q=(8.85*10^{-12}*(100)^2*(40)[/tex]

=  [tex]q=(8.85*10^{-12}*(400,000)[/tex]

=  [tex]q = 3.54*10^{-6}C[/tex]

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