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5 November, 18:57

Blocks with masses of 3.0 kg, 4.0 kg, and 5.0 kg are lined up in a row on a frictionless table. All three are pushed forward by a 13 N force applied to the 3.0 kg block. How much force does the 4.0 kg block exert on the 5.0 kg block?

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  1. 5 November, 19:08
    0
    Fc = 5.41 N

    Explanation:

    Newton's second law:

    ∑F = m*a Formula (1)

    ∑F : algebraic sum of the forces in Newton (N)

    m : mass s (kg)

    a : acceleration (m/s²)

    Newton's second law for the set of the three blocks

    F = 13 N

    m=3.0 kg + 4.0 kg+5.0 kg = 12 kg

    F = m*a

    13 = 12*a

    a = 13 / 12

    a = 1.083 m/s² : acceleration of the set of the three blocks

    Newton's second law for the 5.0 kg block

    m = 5.0 kg

    a = 1.083 m/s²

    Fc: Contact force of the 4 kg block on the 5 kg block

    Fc = 5.0 kg * 1.083 m/s²

    Fc = 5.41 N
  2. 5 November, 19:23
    0
    5.42 N

    Explanation:

    Let the contact force between 3 kg anf 4 kg is f1 and between 4 kg and 5 kg is f2.

    F = 13 N

    Let a be the acceleration in the system.

    Use the free body diagrams and apply Newton's second law of motion.

    F - f1 = 3 x a ... (1)

    f1 - f2 = 4 x a ... (2)

    f2 = 5 x a ... (3)

    By adding all these equation, we get

    a = 13 / 12 m / s^2

    Substitute the value of a in equation (3), we get

    f2 = 5 x 13 / 12 = 5.42 N
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