- #1
Ineedhelpwithphysics
- 42
- 7
- Homework Statement
- Look at picture provided
- Relevant Equations
- W = F * delta x
For A the 1.2 kg block is being pulled by gravity hence work is done downwards which will make work positive since it's going with the same direction as the force.
1.2 * 9.8 = 11.76 N pulled downwards
Work = F*d
11.76*0.75 = 8.82 J
The tension is the other force and since the thing is going at constant speed:
11.76-T = 0
T = 11.76
but the work for the tension will be negative due to the fact it's opposite to the motion so
-11.76*0.75 = -8.82J
For b: the forces that are acting on the box is tension and friction, since the thing is moving at constant velocity T = Fn
2kg*9.8 = 19.6
T- Fn = 0
11.76 = Fn
The work due to the tension on the 2kg is:
11.76 * 0.75 = 8.82J
Work due to friction on 2kg box is:
-11.76 * 0.75 = -8.82J
For C) I approached this two ways
since the system is moving at constant speed
Wnet = 1/2 m (vf^2 - vi^2)
Wnet = 0 due to the fact its constant speed
The second approach i did was just adding up all the work i calculated.
Can anyone clarify to me if constant speed always means 0 work.
1.2 * 9.8 = 11.76 N pulled downwards
Work = F*d
11.76*0.75 = 8.82 J
The tension is the other force and since the thing is going at constant speed:
11.76-T = 0
T = 11.76
but the work for the tension will be negative due to the fact it's opposite to the motion so
-11.76*0.75 = -8.82J
For b: the forces that are acting on the box is tension and friction, since the thing is moving at constant velocity T = Fn
2kg*9.8 = 19.6
T- Fn = 0
11.76 = Fn
The work due to the tension on the 2kg is:
11.76 * 0.75 = 8.82J
Work due to friction on 2kg box is:
-11.76 * 0.75 = -8.82J
For C) I approached this two ways
since the system is moving at constant speed
Wnet = 1/2 m (vf^2 - vi^2)
Wnet = 0 due to the fact its constant speed
The second approach i did was just adding up all the work i calculated.
Can anyone clarify to me if constant speed always means 0 work.