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24 November, 18:21

17. (a) Will the electric field strength between two parallel conducting plates exceed the breakdown strength for air (3.0*106 V/m) if the plates are separated by 2.00 mm and 5.0*103 V a potential difference of is applied? (b) How close together can the plates be with this applied voltage?

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  1. 24 November, 21:20
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    Distance between plates d = 2 x 10⁻³m

    Potential diff applied = 5 x 10³ V

    Electric field = Potential diff applied / d

    = 5 x 10³ / 2 x 10⁻³

    = 2.5 x 10⁶ V/m

    This is less than breakdown strength for air 3.0*10⁶ V/m

    b) Let the plates be at a separation of d. so

    5 x 10³ / d = 3.0*10⁶ (break down voltage)

    d = 5 x 10³ / 3.0*10⁶

    = 1.67 x 10⁻³ m

    = 1.67 mm.
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