Ask Question
2 December, 14:49

Two skydivers are holding on to each other while falling straight down at a common terminal speed of 55.9 m/s. Suddenly, they push away from each other. Immediately after separation, the first skydiver (who has a mass of 89.3 kg) has the following velocity components (with "straight down" corresponding to the positive z-axis) : V1, x = 7.43 m/s V1, y = 5.75 m/s V1, z = 55.9 m/s What are the x - and y - components of the velocity of the second skydiver, whose mass is 57.7 kg, immediately after separation? V2, x = ? m/s V2, y = ? m/s What is the change in kinetic engery of the system? in Joules

+4
Answers (1)
  1. 2 December, 15:17
    0
    10,041.7 J

    Explanation:

    Using Newton's second law of motion of motion; the linear momentum in each direction will be conserved.

    For each direction,

    Momentum before collision = momentum after collision

    In the x - direction, there was initially no x-component for velocity before collision for the two bodies,

    0 = m₁v₁ₓ + m₂v₂ₓ

    0 = (89.3) (7.43) + (57.7) (v₂ₓ)

    v₂ₓ = (-89.3*7.43) / 57.7

    v₂ₓ = - 11.50 m/s (minus indicating that the motion is in the opposite direction the first diver's motion).

    In the y - direction, there was initially no y-component for velocity before collision for the two bodies,

    0 = m₁v₁ᵧ + m₂v₂ᵧ

    0 = (89.3) (5.75) + (57.7) (v₂ᵧ)

    v₂ᵧ = (-89.3*5.75) / 57.7

    v₂ᵧ = - 8.90 m/s (minus indicating that the motion is in the opposite direction the first diver's motion).

    And the velocity in the z-axis for both has been given to be 55.9 m/s

    Kinetic energy of the system before leaving each other = (1/2) (89.3+57.7) (55.9²) = 229673.535 J

    Kinetic energy of skydiver 1 after collision

    To do this, we first find the magnitude of the velocity

    v₁ = √ (7.43² + 5.75² + 55.9²) = 56.684 m/s

    Kinetic energy = (1/2) (89.3) (56.684²) = 143463.84 J

    Kinetic energy of skydiver 2 after collision

    To do this, we first find the magnitude of the velocity

    v₂ = √[ (-11.50) ² + (-8.90) ² + 55.9²] = 57.76 m/s

    Kinetic energy = (1/2) (57.7) (57.76²) = 96251.39 J

    Change in kinetic energy of the system = (final kinetic energy) - (initial kinetic energy)

    Change in kinetic energy of the system = 143463.84 + 96251.39 - 229673.535 = 10041.695 J = 10041.7 J
Know the Answer?
Not Sure About the Answer?
Find an answer to your question 👍 “Two skydivers are holding on to each other while falling straight down at a common terminal speed of 55.9 m/s. Suddenly, they push away ...” in 📗 Physics if the answers seem to be not correct or there’s no answer. Try a smart search to find answers to similar questions.
Search for Other Answers