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8 October, 21:33

A package is dropped from a helicopter moving upward at 15m/s. If the helicopter was 1000m above the ground when the package was released, how long does it take before the package strikes the ground

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  1. 8 October, 21:59
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    yi = Initial height of the helicopter

    yf = final height of the helicopter

    vyi = component of the initial vertical velocity of the helicopter

    g = gravity constant (9.8m/s^2)

    yf = yi + vyideltat - 1/2gt^2

    0m = 1000m + (15m/2) deltat - 1/2 (9.8m/s^2) t^2

    -1000m = (15m/s) t - (-4.9m/s^2) t^2

    Use the quadratic formula

    4.8t^2 - 15t - 1000 = 0

    t1 = 15.75s and t2 = - 12.65

    t2 is rejected, time can't be negative

    Thus, it takes 15.75s before the package strikes the ground.
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