Ask Question
25 April, 13:03

A 50 kg projectile is fired at an angle of 30 degrees above the horizontal with an initial speed of 1.2 X 10^2 m/s from the top of a cliff 142 m above level ground, where the ground is taken to be y=0. a) what is the initial total mechanical energy of the projectile? b) suppose the projectile is traveling 85 m/s at its max height of y=427 m. How much work has been done on the projectile by air friction? C) what is the speed of the projectile immediately before it hits the ground if air friction does one and a half times as much work on the projectile when it is go down as when go up?

+2
Answers (2)
  1. 25 April, 13:10
    0
    A) The total mechanical energy is:

    M. E = Kinetic energy + Potential energy

    M. E = 1/2 mv² + mgh

    = 0.5 x 50 x 120² + 50 x 9.81 x 142

    = 430,000 J

    b) Work done by friction will be equal to the mechanical energy lost

    M. E at max height: 1/2 x 50 x 85² + 50 x 9.81 x 427

    = 390,000 J

    Change in ME = work done by air =

    430000 - 390000

    = 40,000 J

    c) All of the potential energy will be converted to kinetic energy and added to its existing kinetic energy at maximum height. Also, the work done by air will be subtracted from the M. E because it will be lost.

    K. E (final) = M. E (max height) - 1/2 (Work done by air while going up)

    1/2 50v² = 390,000 - 20,000

    v = 121.7 meters per second
  2. 25 April, 13:30
    0
    A)

    Initial total mechanical energy = kinetic energy (KE) + potential energy (PE)

    Hence,

    KE = ½*m*v²; PE = m*g*h

    ME = ½*m*v² + m*g*h

    = m * (½*v² + g*h)

    = 50.0 * (½*1.2²*10^4 + 9.80*142)

    = 50.0 * (7.2*10^3 + 1392)

    = 4.30*10^5 J

    B)

    The energy loss at max height is ∆PE + Ef

    The total energy at the max height is:

    m*g*hm * ½*m*v² = 50.0 * (9.8*427 + ½*85.0²)

    = 3.90*10^5 J

    Total energy change at max height = final energy - initial energy

    3.90*10^5 - 4.30*10^5 = - 4*10^4 J

    ∆PE + Ef = - 4*10^4 J

    ∆PE = m*g * (h0 - hm)

    = 50*9.8 * (142 - 427)

    = - 1.40*10^5 J

    -1.40*10^5 - Ef = - 4*10^4

    Ef = 10^5 J

    C)

    When it hits the ground, all the energy is kinetic. The total energy at peak is 3.90*10^5;

    The energy gain on the way down is ∆PE - Ef = m*g*hm + Ef

    = 50*9.8*427 - 1.5*10^5

    = 5.92*10^4 J

    Total energy at ground = 3.90*10^5 + 5.92*10^4

    = 4.49*10^5 J

    = ½*m*vg²

    vg = √[2*Eg/m]

    = √[2*4.49*10^5/50]

    = 134 m/s
Know the Answer?
Not Sure About the Answer?
Find an answer to your question 👍 “A 50 kg projectile is fired at an angle of 30 degrees above the horizontal with an initial speed of 1.2 X 10^2 m/s from the top of a cliff ...” 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