voko said:
The fixed end at O, in addition to being able to exert a reaction force, may exert a reaction couple (because it prevents rotation about itself). So you should include that couple in the moments equation.
You are right I was missing the moment reaction.
SteamKing said:
First, you did not construct a free body diagram for this beam..
Second, you did not show the sum of the forces equations for both the x and y directions. (It helps to show the force at C in terms of its components)
Third, writing a moment equation about B is unnecessary. A moment equation about point O is sufficient.
The reason your moment equation doesn't make sense is that you neglected to put the unknown reaction moment at O in your equation. If you had started with a FBD, this would have been clear.
Well I went directly to the equation I didn´t understand, but I´m goint to do what you said.
1.- Hopefully this body diagram is correct:
2.- Ok, these are the equations:
Sum Fx= -3KN *sin (30) + Rx= 0 -----> Rx= 1,5KN
Sum Fy=-3KN*cos(30) -0,5KN*9.81 +1,4KN +Ry= 0 ----> Ry=6,103
3.- Well I didn´t understand what was going to change but I tried to do that to see if the reactions at O entered the equation and it made sense.
4.- I see, well I thought that the reactions on the wall were only forces. It´s difficult to imagine to me that there is a moment reaction, since a moment could be created through the use of two forces.
Now the equation for the moments looks like this one:
1,4*1,2 +15 - 0,5*2.4*9.81 - 3*cos(30)*4.8 + Mro=0
Mro= 7.57 KN m, ccw
Which is the answer in the book.
I think that the main problem to me was that I thought that moments could me "counteracted" through forces, it was difficult to realize that even if the reaction forces at O are equal to the forces applied I didn´t solve the problem because not only is important the force, in the equation for the moments the moment arms are equally important and there must be a reaction moment.
I´ll show what I mean with an example to check if I´m right about this, let's take the same situation but without a wall, now there are three points as it´s shown in the image.
And we know the distances a=b=c=0,3 meters.
It is not necessary to calculate forces and moments, from a general point of view, you have three points acting normally to the beam and that means that their line of action passes through the point O, as a consequence their moment arms are zero around O.
If an external moment is applied to the beam around point O, it doesn´t matter if it´s gravity or any other force, there must be a moment reaction from the three points to "counteract" that moment. But how is that possible? If the moment arms of the points are zero around O how are they able to create a moment around O of equal magnitude but opposite sense to the applied moment?
I can´t imagine moments without forces and moment arms.
