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14 January, 03:12

A firefighter with a weight of 707 N slides down a vertical pole with an acceleration of 2.79 m/s2, directed downward. (a) What is the magnitude of the vertical force on the firefighter from the pole?

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  1. 14 January, 03:17
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    The vertical force acting on the firefighter = 908.27 N

    Explanation:

    Force: Force of a body is defined as the product of mass and its acceleration. The S. I unit of force is Newton (N)

    The vertical force acting on the firefighter = Force due to the weight of the firefighter + force due to acceleration.

    Ft = Fw - Fa

    Where Ft = The vertical force acting on the firefighter, Fw = Force due to the weight of the firefighter, Fa = force due to acceleration.

    Fw = mg

    Making m the subject of formula in the equation above

    m = Fw/g ... Equation 1

    Where m = mass of the firefighter, g = acceleration due to gravity,

    Given: Fw = 707 N,

    Constant: g = 9.8 m/s²

    Substituting these values into eqaution 1

    m = 707/9.8

    m = 72.14 kg.

    But, Fa = ma

    Where a = acceleration of the firefighter.

    Given: a = 2.79 m/s²,

    And m = 72.14 kg

    Fa = 72.14 * 2.79

    Fa = 201.27 N

    Therefore, Ft = 707 + 201.27 = 908.27 N

    Ft = 908.27 N

    The vertical force acting on the firefighter = 908.27 N
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