Question:

Determine her initial velocity both magnitude and direction.?

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A driver springs upward from a board that is three meters above the water her speed is 9.40 m/s and her body makes an angle of 83.0 degrees w/respect to the horizontal surface of the water. Determine her initial velocity, both magnitude and direction.

magnitude_________m/s

direction__________degrees

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  1. Let:

    u be the take off speed at angle a to the horizontal,

    v be the final speed at angle b to the horizontal,

    m be the mass of the diver,

    h be the height difference between the diving board and the water,

    g be the acceleration due to gravity.

    Horizontally:

    u cos(a) = v cos(b) ...(1)

    Equating initial PE + KE to final KE:

    mu^2 / 2 + mgh = mv^2 / 2

    u^2 = v^2 - 2gh

    u = sqrt(9.40^2 - 2 * 9.81 * 3)

    = 5.43 m/s.

    From (1):

    5.43 cos(a) = 9.40 cos(83)

    cos(a) = 9.40 cos(83) / 5.43

    a = 77.8 deg.


  2. What do you want to be told other than what you already have in your question? To answer your question:

    magnitude_9.40m/s

    direction_83.0 degrees w/respest to the horizontal.
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