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  • Apr 3, 2011, 09:15 AM
    tropicalfruit09
    Free-Body Diagrams in Two Dimensions
    Two tugboats are pulling a freighter. Find the net force and direction of the acceleration for the following cases. Assume that each tugboar pulls with a force of 1.2 x 10^5 N. Assume no resistive force at this time. a) Tugboat 1 pulls in a direction given by [N 60degrees E] and tugboat 2 pulls in a direction given by [S60 degrees E].

    I drew the diagram, and I found that the contained angle was 60 degrees, so I used the cosine law to solve for Fnet, but the answer at the back was different.

    Thanks in advance!
  • Apr 20, 2011, 01:11 PM
    RPVega
    First, remember to always draw a picture of your problem.
    Next, resolve the two vectors into their respective
    x and y components. After that, the respective
    x and y components of the two vectors are simply
    added to together.

    For vector F1:

    sin 60 = y1 / F1 ; y1 = F1 sin 60
    cos 60 = x1 / F1 ; x1 = F1 cos 60

    For vector F2:

    sin -60 = y2 / F2; y2 = F2 sin -60
    cos -60 = x2 / F2; x2 = F2 sin -60

    For the resultant vector F3:

    F3 = F1 + F2
    F3 = (x1 + x2)i + (y1 + y2)j
    F3 = [(F1 cos 60)+(F2 cos -60)]I + [(F1 sin 60) + (F2 sin -60)]j

    Since we know the value of F1 and F2, we simply need to know
    the values of sin 60, cos 60, sin -60, and cos -60.
    It is left as an exercise for you to evaluate the last equation
    for the resultant vector F3 above.
  • Apr 20, 2011, 01:29 PM
    tropicalfruit09
    Comment on RPVega's post
    Thank you!
  • Apr 21, 2011, 09:39 AM
    Unknown008

    Indeed, but if you make a picture and fully understand it, you can draw a parallelogram of forces to get the resultant force (in this case, also a rhombus).

    This gives you directly another pair of forces that you use with the cosine rule to get the resultant.


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