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21 June, 13:17

The velocity selector in in a mass spectrometer consists of a uniform magnetic field oriented at 90 degrees to a uniform electric field so that a charge particle entering the region perpendicular to both fields will experience an electric force and a magnetic force that are oppositely directed. If the uniform magnetic field has a magnitude of 11.9 ~/text{mT}11.9 mT, then calculate the magnitude of the electric field that will cause a proton entering the velocity selector at 25.325.3 km/s to be undeflected. Give your answer in units of kV/m.

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  1. 21 June, 15:37
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    The magnitude of the electric field is 0.3011 kV/m

    Explanation:

    Magnetic force on the charge = qvB

    where;

    q is the magnitude of the charge

    v is the velocity of the proton

    B is the strength of the magnetic field

    Electric force on the charge = Eq

    where;

    E is the magnitude of the electric field

    q is the magnitude of the charge

    Eq = qvB

    E = vB

    given;

    v = 25.3 km/s

    B = 11.9 mT

    E = 25.3 x 10³ (m/s) x 11.9 x 10⁻³ (T)

    E = 301.1 V/m = 0.3011 kV/m

    Therefore, the magnitude of the electric field is 0.3011 kV/m
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