Question:

Work and Energy HELP?

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A 500 g stone is dropped from the top of a building 120 above the ground.Determine

a)Velocity when reaches ground

b) Kinetic Energy when it hits ground

Please Help. I don't know what formula to use and its so confusiing. Please help solve this step by step

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  1. You're a little confused with units:

    I'm going to use the metric system:

    For example

    building height = h=120 meters

    500 grams = 0.5 Kg

    g=9.8 m/s^2

    Use conservation of energy:

    potential energy= m*g*h

    kinetic energy= 0.5*m*v^2

    mgh=(1/2)*m*v^2

    solve for v:

    v=sqr(g*h*2)=sqr(9.8*120*2)

    = 48.5 m/s

    KE=0.5*0.5*(48.5)^2

    = 588 joules

    check:  mgh= 588 joules


  2. The work done on the stone is going to be -MGH.  

    This value will be your kinetic energy.    Remember the conservation of energy and that 1/2MV^2 = K

    So, Kinitial = 0.  U intial = MGH

    Kfinal = 1/2MV^2 U final = 0

    MGH = 1/2MV^2

    2GH=V^2

    V = √2GH

  3. I think the way this question is asked, it's wanting you to use Kinematics to solve for part a)

    using v^2 = u^2 + 2as    ( where u = 0)

            v^2 = 2 * 9.8 * 120

             v  = 48m/s

    To solve part b)  you would then use the kinetic Energy formula

    Ek = 1/2mv^2

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