Ask Question
12 December, 09:56

Two skaters, a man and a woman, are standing on ice. Neglect any friction between the skate blades and the ice. The mass of the man is 95 kg, and the mass of the woman is 51 kg. The woman pushes on the man with a force of 60 N due east. Determine the acceleration (magnitude and direction) of (a) the man and (b) the woman

+1
Answers (1)
  1. 12 December, 10:04
    0
    a₁ = 0.63 m/s² (East)

    a₂ = - 1.18 m/s² (West)

    Explanation:

    m₁ = 95 Kg

    m₂ = 51 Kg

    F = 60 N

    a₁ = ?

    a₂ = ?

    To get the acceleration (magnitude and direction) of the man we apply

    ∑Fx = m*a (⇒)

    F = m₁*a₁ ⇒ 60 N = 95 Kg*a₁

    ⇒ a₁ = (60N / 95Kg) = 0.63 m/s² (⇒) East

    To get the acceleration (magnitude and direction) of the woman we apply

    ∑Fx = m*a (⇒)

    F = - m₂*a₂ ⇒ 60 N = - 51 Kg*a₂

    ⇒ a₂ = (60N / 51Kg) = - 1.18 m/s² (West)

    For every case we apply Newton's 3 d Law
Know the Answer?
Not Sure About the Answer?
Find an answer to your question 👍 “Two skaters, a man and a woman, are standing on ice. Neglect any friction between the skate blades and the ice. The mass of the man is 95 ...” 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