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Today, 03:05

A firefighting crew uses a water cannon that shoots water at 25.0m/s at a fixed angle of 53.0 degrees above the horizontal. The firefighters want to direct the water at a blaze that is 10.0 m above ground level.

How far from the building should they position their cannon? There are two possibilities.

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  1. Today, 03:16
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    They should position cannon at a distance of 8.88 m or 52.52 m from building.

    Explanation:

    Consider the vertical motion of water,

    We have equation of motion s = ut + 0.5 at²

    Initial velocity, u = 25sin53 = 19.97 m/s

    Acceleration, a = - 9.81 m/s²

    Displacement, s = 10 m

    Substituting

    s = ut + 0.5 at²

    10 = 19.97 x t + 0.5 x - 9.81 xt²

    t = 3.49 s or t = 0.59 s

    So at times 3.49 s and 0.59 s water reaches at a height 10 m

    Now consider the horizontal motion of water,

    We have equation of motion s = ut + 0.5 at²

    Initial velocity, u = 25cos53 = 15.05 m/s

    Acceleration, a = 0 m/s²

    Displacement, s = ?

    time, t = 3.49 s or 0.59 s

    Substituting

    s = ut + 0.5 at²

    s = 15.05 x 3.49 + 0.5 x 0 x3.49²

    s = 52.52 m

    s = 15.05 x 0.59 + 0.5 x 0 x0.59²

    s = 8.88 m

    They should position cannon at a distance of 8.88 m or 52.52 m from building.
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