Finding the WORK done by a crane in lifting a load

AI Thread Summary
The discussion focuses on calculating the work done by a crane lifting a 500N load vertically 40m. The key equation for work is W = F * S, where the force is the weight of the load and the distance is the vertical height. Participants clarify that only the vertical displacement matters for calculating work against gravity, as horizontal movement does not require additional force due to negligible friction. The correct calculation for work done by the crane is thus 20,000 Nm, based solely on the vertical lift. Understanding the physics behind the problem is essential for arriving at the correct answer.
vinci
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Homework Statement


A crane lifts its 500N load to the top of the building from A to B. Distances are shown on the diagram. Calculate how much work is done by the crane

IMG_2304.jpg

Known variables:
AB= displacement= 50m
AC=horizontal distance=30m
BC=vertical distance=40m

2. Homework Equations

Work done= force * distance covered in direction of force
W=F.S

Force=mass* acceleration
F=ma

Hypotenuse= Root ( Adjacent^2 + Opposite^2 )

The Attempt at a Solution


[/B]
From the diagram it can be seen that there the DISPLACEMENT is AB or 50 M. The load is 500N which will require a force in upward direction of 500N. I am confused with which variables to use but nevertheless
Work done in upward direction(BC):
W=FS
=500N*40M=20000NM

Work done in horizontal direction(AC):
W=FS
=500N*30M=15000NM I'm unsure about this one if 500N force will be required because we are not pushing a body on the ground and not countering a friction of 500N

Work done in AB?
W=FS
=500N * 50M =25000NM
(This can't be right can it? Because from what I think the crane will first lift the weight up and then rotate)
This is a simple high school question and I might be overcomplicating it but I am really confused which variables to use since the question should have ONE answer.
 
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Hello Vinci, :welcome:

Look carefully at your first relevant equation ! The only force the crane exerts on the load is in which direction ?
 
BvU said:
Hello Vinci, :welcome:

Look carefully at your first relevant equation ! The only force the crane exerts on the load is in which direction ?
The crane exerts a force in two directions. An upward one and then a horizontal one. Am I right?
 
You can ignore the horizontal one: the sideways movement can be executed with negligibly small force (in theory. By doing it real slow and having a minimum of friction - something that isn't extremely realistic, but that's what they mean here).
 
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So I should only be concerned with the motion on y-axis or the one due to 500N force and the distance covered by it is 40M making the answer 20000NM, right?
Why has the questioniare even mentioned the two other distances then/
 
To make you think thoroughly about this "in the direction of the force" principle :smile: .
 
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I solved this question from the AS level book by calculating angle (theta) as in by tan of theta n then apply the Fdcos@ equation taking d as 50
Coz tension is working against gravity no? So the crane is moving both vertically and horizontally
 
@Ahmer: cosTHEETA calculates the horizontal component of the force. I don't believe that's the right answer.
 
Tension is pulling against gravity. Physically, the horizontal component is not doing any work because the displacement comes for free: there is no opposing force (no horizontal component of gravity -- and we agree to ignore the horizontal acceleration).
 
  • #10
In such tasks, many things are simplified, because otherwise it becomes too difficult, one then also no longer sees the principle represented. So there is no friction, which is why the horizontal displacement can be done with zero force. And if force F=0, F*s is also 0.
 
  • #11
Eberhard said:
In such tasks, many things are simplified, because otherwise it becomes too difficult, one then also no longer sees the principle represented. So there is no friction, which is why the horizontal displacement can be done with zero force. And if force F=0, F*s is also 0.
Note that this homework thread is six years old!
 
  • #12
Hello. I also don't get this question. Even though I have read the comments posted on this post,I still don't get it. Can anyone please explain me why we are using the vertical height of the building rather than the other two ?
 
  • #13
haha0p1 said:
Hello. I also don't get this question. Even though I have read the comments posted on this post,I still don't get it. Can anyone please explain me why we are using the vertical height of the building rather than the other two ?
:welcome:
Are you asking whether it takes just as much work to move an object horizontally as it does to lift it vertically?
 
  • #14
PeroK said:
:welcome:
Are you asking whether it takes just as much work to move an object horizontally as it does to lift it vertically?
No, I am asking something else. BTW, I feel i have understood why we are taking 40m when we are calculating the WORK done by the CRANE. the 500N of the load is due to Gravity and since the gravity is acting in the vertical direction, we are taking 40 m(i.e the vertical height of the building). Is this logic correct?
 
  • #15
haha0p1 said:
No, I am asking something else. BTW, I feel i have understood why we are taking 40m when we are calculating the WORK done by the CRANE. the 500N of the load is due to Gravity and since the gravity is acting in the vertical direction, we are taking 40 m(i.e the vertical height of the building). Is this logic correct?
Yes, but that's not logic, that's physics!
 
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