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22 November, 22:02

A 1.2 kg block of mass is placed on an inclined plane that has a slope of 30° with respect to the horizontal, and the block of mass is released. A friction force Fk = 2.0 N acts on the block as it slides down the incline. Find the acceleration of the block down the incline.

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Answers (2)
  1. 22 November, 22:03
    0
    a≅3.33

    Explanation:

    a = (P*sin∝-Fk) : 1.2
  2. 22 November, 22:19
    0
    The acceleration of the block down the incline is 3.23 m/s²

    Explanation:

    Fk = frictional force

    m = mass

    g = acceleration due to gravity

    F1 = force in direction of motion

    theeta = inclination angle

    For Force on inclined plane

    F1 = m*g*sin (theeta)

    F1 = (1.2) * (9.8) * sin (30)

    F1 = 5.88-N

    now,

    Fnet = F1 - Fk

    Fnet = 5.88 - 2

    Fnet = 3.88-N

    now for acceleration,

    Fnet = m*a

    a = Fnet / m

    a = 3.88 / 1.2

    a = 3.23 m/s²
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