What is the net work done on the box?

AI Thread Summary
The discussion revolves around calculating the net work done on a 10kg box as it is moved through various stages. Initially, it is noted that no work is done while holding the box at a constant height, as the force exerted is perpendicular to the displacement. The participants agree that while the box is displaced from point A to F, the work done is effectively zero due to the lack of change in kinetic and potential energy. There is also acknowledgment that real-world factors like friction complicate the scenario, but theoretically, the net work remains zero. The conversation highlights the importance of understanding the relationship between force, displacement, and work in physics.
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Homework Statement


A man picks up a 10kg box, and holds it at a height of 1m above the horizontal ground as he walks to a ramp, and then carries the box up the ramp to a height of 4m, and then down the ramp as shown, finally placing it on the ground at F.
21c72jd.jpg

Describe the work done at each stage of the motion. What is the net work done on the box?

Homework Equations


W=Fdcos\theta


The Attempt at a Solution


Not really sure with this one.

I said A-->B = no work done. B-->C = work done (don't think that's a good description though!). C-->D = no work done. D-->E = work done (would this be negative (or positive) work? E-->F = no work done.

So, the net work done on the box would = 0.
 
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Do you mean to say that the box is not displaced at all (i.e., is it lying at the same position at the end)?
Obviously no!
 


I don't know, I don't really get the question. In the textbook, it says that you carry something in your hands, you don't do any work on it since the force to carry it is perpendicular to the displacement.
 


Anyone? :S I need to know by tomorrow! (have an exam...)
 


But in the textbook, it said, "You also do no work on the bag of groceries if you carry it as you walk horizontally across the floor at constant velocity"... which is why I thought no work would be done from A to B, C to D and E to F.

How would I work out the net work done on the box?
 


Yeah, your textbook is correct. Even though the box is displaced from A to F, the force is at right angles to direction of displacement.
So the work done is zero as you mentioned.
 


Ok, thanks! That makes me feel much more relaxed! (cos it seemed like something that could come up in the exam) :)
 


n.karthick said:
Do you mean to say that the box is not displaced at all (i.e., is it lying at the same position at the end)?
Obviously no!

But since you've not changed the kinetic energy of the box, nor its potential energy, it makes no difference to the energy where in the plane of reference you've placed it.
 


In real sense, however it is not possible to displace a box without doing work even at constant velocity because friction comes into picture.
 

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