Ask Question
12 February, 07:38

Three identical boxcars are coupled together and are moving at a constant speed of 28.0 on a level, frictionless track. They collide with another identical boxcar that is initially at rest and couple to it, so that the four cars roll on as a unit. Friction is small enough to be neglected. Part AWhat is the speed of the four cars? Part BWhat percentage of the kinetic energy of the boxcars is dissipated in the collision? Part CWhat happened to this energy?

+5
Answers (1)
  1. 12 February, 09:01
    0
    Let m be the mass of each car

    mass of three cars = 3m

    Kinetic energy of 3 coupled cars = 1/2 x 3m x 28²

    = 1176 m

    mass of 4 coupled cars = 4m

    Its velocity v = 3m x 28 / 4m (using conservation of momentum law)

    = 21 m / s

    Kinetic energy of 4m mass

    = 1/2 x 4m x 21²

    = 882 m

    Loss of energy

    = 1176 m - 882 m = 294 m

    percentage of loss

    = (294 / 1176) x 100

    = 25 %

    This energy appears in the form of sound, heat etc on collision.
Know the Answer?
Not Sure About the Answer?
Get an answer to your question ✅ “Three identical boxcars are coupled together and are moving at a constant speed of 28.0 on a level, frictionless track. They collide with ...” in 📙 Physics if there is no answer or all answers are wrong, use a search bar and try to find the answer among similar questions.
Search for Other Answers