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10 January, 13:07

The deflection plates in an oscilloscope are 10 cm by 2 cm with a gap distance of 1 mm. A 100 volt potential difference is suddenly applied to the initially uncharged plates through a 975 ohm resistor in series with the deflection plates. How long does it take for the potential difference between the deflection plates to reach 75 volts

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  1. 10 January, 13:15
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    Answer: 23.92 ns

    Explanation:

    The capacitance, C = (e (0) * A) / d

    C = [8.85*10^-12 * 2*10^-2 * 10*10^-2] / 1*10^-3

    C = (1.77*10^-14) / 1*10^-3

    C = 1.77*10^-11

    C = 17.7 pF

    Vc = V * [1 - e^ - (t/CR) ]

    75 = 100 * [1 - e^ - (t/CR) ]

    75/100 = 1 - e^ - (t/CR)

    e^ - (t/CR) = 1 - 0.75

    e^ - (t/CR) = 0.25

    If we take the log of both sides, we then have

    Log e^ - (t/CR) = Log 0.25

    -t/CR = In 0.25

    t = - CR In 0.25

    t = - 17.7*10^-12 * 975 * - (1.386)

    t = 2.392*10^-8 s

    t = 23.92 ns
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