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12 August, 12:17

Two skydivers are holding on to each other while falling straight down at a common terminal speed of 57.10 m / s. Suddenly, they push away from each other. Immediately after separation, the first skydiver, who has a mass m 1 of 94.80 kg, has a velocity v 1 with the following components ("straight down" corresponds to the positive z - axis). v 1, x = 5.430 m / s v 1, y = 4.250 m / s v 1, z = 57.10 m / s What are the x - and y - components of the velocity v 2 of the second skydiver, whose mass m 2 is 57.70 kg, immediately after separation? Assume that there are no horizontal forces of air resistance acting on the skydivers.

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  1. 12 August, 13:08
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    Answer: - 8.88 m/s on x and - 6.98 m/s on y

    Explanation:

    Given

    Common terminal velocity, v (t) = 57.1 m/s

    Mass of the first skydiver, m1 = 94.8 kg

    Velocity of the skydiver

    v1 (x) = 5.43 m/s

    v1 (y) = 4.25 m/s

    v1 (z) = 57.1 m/s

    Mass of the second skydiver, m2 = 57.7 kg

    Now, in order to find the components of velocity along X and Y axis:

    Before they got separated, the momentum along X - axis is zero.

    After they got separated, the momentum along X - axis is still zero.

    Therefore we can say,

    m1. v1 (x) + m2v2 (x) = 0

    94.8 * 5.43 + 57.7 * v2 (x) = 0

    57.7 * v2 (x) = - 512.592

    v2 (x) = - 512.592 / 57.7

    v2 (x) = - 8.88 m/s

    If we also consider the momentum along Y - axis:

    Before they got separated, the momentum = 0

    After they got separated, the momentum along Y - axis is still 0

    Therefore we can say that

    m1v1 (y) + m2v2 (y) = 0

    94.8 * 4.25 + 57.7 * v2 (y) = 0

    57.7 * v2 (y) = - 402.9

    v2 (y) = - 402.9 / 57.7

    v2 (y) = - 6.98 m/s

    Therefore, the magnitude of the x and y component of the velocity are

    -8.88 m/s and - 6.98 m/s respectively.
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