Work Done Dragging 50kg Crate 8m: Find Force, Angle & Energy

  • Thread starter Thread starter lynchdemartin
  • Start date Start date
  • Tags Tags
    Dynamics
AI Thread Summary
To calculate the work done in dragging a 50 kg crate over 8 m at a constant velocity, the force of friction is 225 N, and the rope is pulled at a 20-degree angle. The tension in the rope must counteract the friction, leading to the equation Tcos(20) = 225 N. The work done by the person is calculated as W = T x distance, resulting in 1800 J, as the total tension T is greater than 225 N due to the vertical component. The confusion arose from distinguishing between the work done by the person versus the rope's tension.
lynchdemartin
Messages
9
Reaction score
0
A 50.0 kg crate is dragged at a constant velocity of 1.5 m/s for a distance of 8.0 m. If the force of friction on the crate is 225 N, how much work was done by the person to drag the crate over the 8.0 m distance if the rope used to drag the crate was directed at 20degrees angle above the horizontal?

my work:
mass 50kg
distance 8m
angle 20 degrees
Force of Friction 225N
since we have a constant velocity Fnet = 0
Fnet = T - Ff

Solve for T
0 = T - 225N
T = 225N

therefore T x distance moved by the rope x cosx = work done
so I got 225N x 8m x cos20 = 1690 J

However the answer sheet says it's 1800 J...
 
Physics news on Phys.org
lynchdemartin said:
A 50.0 kg crate is dragged at a constant velocity of 1.5 m/s for a distance of 8.0 m. If the force of friction on the crate is 225 N, how much work was done by the person to drag the crate over the 8.0 m distance if the rope used to drag the crate was directed at 20degrees angle above the horizontal?

my work:
mass 50kg
distance 8m
angle 20 degrees
Force of Friction 225N
since we have a constant velocity Fnet = 0
Fnet = T - Ff

Solve for T
0 = T - 225N
T = 225N

therefore T x distance moved by the rope x cosx = work done
so I got 225N x 8m x cos20 = 1690 J

However the answer sheet says it's 1800 J...

The tension T is greater than 225N, since the horizontal force (the cos component of T) is 225N to oppose the friction force.
 
berkeman said:
The tension T is greater than 225N, since the horizontal force (the cos component of T) is 225N to oppose the friction force.

That's only if the object is "not moving at constant velocity". In this question it is moving at constant velocity so Fnet must equal 0.
 
lynchdemartin said:
That's only if the object is "not moving at constant velocity". In this question it is moving at constant velocity so Fnet must equal 0.

Correct. The Fnet in the horizontal direction has to equal zero (225 -225 = 0).
 
I still get 1690J for work done. Driving me nuts...
 
lynchdemartin said:
A 50.0 kg crate is dragged at a constant velocity of 1.5 m/s for a distance of 8.0 m. If the force of friction on the crate is 225 N, how much work was done by the person to drag the crate over the 8.0 m distance if the rope used to drag the crate was directed at 20degrees angle above the horizontal?

my work:
mass 50kg
distance 8m
angle 20 degrees
Force of Friction 225N
since we have a constant velocity Fnet = 0
Fnet = T - Ff

Solve for T
0 = T - 225N
T = 225N

therefore T x distance moved by the rope x cosx = work done
so I got 225N x 8m x cos20 = 1690 J

However the answer sheet says it's 1800 J...

You may confuse last part.
net F=0
Tcos20 = f =225 N
W=(Tcos20)*8=1800 J
 
umm this might seem stupid but I think the question is asking what is the work done by the "person" not the "rope" so then it's T 225 N x 8m = 1800J ?
 
lynchdemartin said:
umm this might seem stupid but I think the question is asking what is the work done by the "person" not the "rope" so then it's T 225 N x 8m = 1800J ?

The person is doing the work, but you've got the correct answer. The horizontal component of T is 225N, to oppose the frictional force. The actual tension T is greater than 225N, since there is also a vertical component to the Tension.
 
berkeman said:
The person is doing the work, but you've got the correct answer. The horizontal component of T is 225N, to oppose the frictional force. The actual tension T is greater than 225N, since there is also a vertical component to the Tension.

thanks I can finally rest now..
 

Similar threads

Work done by the force of a man on a crate of 80N
Replies
14
Views
6K
Calculate the work done moving a crate
Replies
3
Views
3K
Calculating Work on a Moving Crate with an Inclined Rope
Replies
5
Views
7K
Work done by man pushing a crate up a ramp, includin done on
Replies
5
Views
10K
What is the Change in Kinetic Energy of a Crate Being Pulled at an Angle?
Replies
1
Views
2K
Work done when dragging a crate 15m at 37° angle
Replies
10
Views
2K
Finding Work Done by Gravity on Inclined Crate
Replies
6
Views
17K
Finding the work done by a block
Replies
4
Views
3K
Work done by friction force on an object?
Replies
4
Views
5K
Need help on finding the work done on an Object by the applied force.
Replies
17
Views
5K

Hot Threads

Recent Insights

Back
Top