Ask Question
11 July, 03:35

A 5.00-kg box slides 3.00 m across the floor before coming to rest. what is the coefficient of kinetic friction between the floor and the box if the box had an initial speed of 3.00 m/s?

+3
Answers (1)
  1. 11 July, 05:00
    0
    Let's call the coefficient of kinetic friction k.

    We can use the equation v^2 = v (initial) ^2 + 2a (x-x (initial)) to find the acceleration of the box.

    v=0 m/s

    v (initial) = 3 m/s

    x = 3 m

    x (initial) = 0 m

    a = (v^2-v (initial) ^2) / 2 (x-x (initial))

    a = (-9 m^2/s^2) / 3 m

    a = - 3 m/s^2

    Since F = ma, and the only horizontal force on the box is friction, we can say that F (friction) = k*F (normal) = k*F (gravitational) = m*a

    k = m*a/F (gravitational)

    F (gravitational) = m*g

    k = (m*a) / (m*g)

    k = a/g

    k = (-3 m/s^2) / (-9.81 m/s^2)

    k = 0.31
Know the Answer?
Not Sure About the Answer?
Find an answer to your question ✅ “A 5.00-kg box slides 3.00 m across the floor before coming to rest. what is the coefficient of kinetic friction between the floor and the ...” in 📘 Physics if you're in doubt about the correctness of the answers or there's no answer, then try to use the smart search and find answers to the similar questions.
Search for Other Answers