Explaining a Conceptual Physics Problem with Free Body Diagrams

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Homework Help Overview

The discussion revolves around a physics problem involving a mass dropped onto a spring from a height, focusing on the energy transformations and forces at play during the interaction. Participants explore the relationships between potential energy (PE), kinetic energy (KE), and the spring constant in the context of free body diagrams and energy conservation principles.

Discussion Character

  • Conceptual clarification, Assumption checking, Problem interpretation

Approaches and Questions Raised

  • Participants discuss the energy states of the mass and spring at various points, questioning how kinetic energy is accounted for during the fall and subsequent compression of the spring. There is exploration of the conditions under which the spring constant is derived and the implications of the system not being in equilibrium at maximum compression.

Discussion Status

The discussion is active, with participants providing insights and clarifications regarding the energy equations and the conditions for equilibrium. Some participants express confusion about the application of force equations and the energy conservation principles, while others suggest revisiting the assumptions made in the problem setup.

Contextual Notes

Participants note that the problem requires careful consideration of the energy states before and after the mass impacts the spring, and emphasize the importance of understanding the system's dynamics at maximum compression. There is acknowledgment of potential misinterpretations in the solution provided by the professor.

cowmoo32
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I'm reviewing some problems from a few months ago and I remember getting hung on this before. A mass is dropped from a height h above a spring. I am given the deflection of the spring when the mass stops moving momentarily. The spring constant in the solution is given by mg/x. I understand how that works if the mass is placed on a spring, but why is the extra force of the mass falling not accounted for? Why am I incorrect in saying that all of the kinetic energy of the mass falling is converted into potential energy for the spring? I tried the latter and came up with a close answer, but not the same as the solution. The mass is momentarily at rest. This isn't after the spring has damped out and stopped moving. The end goal of the problem is to find the velocity of the mass at some smaller x once the spring starts pushing it back up during the first oscillation.

Drawing a free body diagram of the mass just above the spring and after it hits, F = mg for both of them, but in the second one the spring is pushing back. I know F=ma=kx and a is constant, but if a mass is dropped on a spring, the spring will compress more than it would if the mass was gently placed on top.

edit:
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Initially the mass is not moving, so it has only PE. When the mass is falling before it hits the spring, it has a combination of PE and KE. When the mass is falling after hitting the spring, it has a combination of PE and KE, and the spring also has a combination of PE and KE. When the mass stops at the bottom of its travel momentarily, it has only PE, and the spring only has PE.

So what can you say about the sums of PE and KE at any particular moment in this sequence? Does that help answer your question?
 


I agree with you (cowmoo32). k should have been determined by setting v = 0 in the energy equation.
 


berkeman said:
Initially the mass is not moving, so it has only PE. When the mass is falling before it hits the spring, it has a combination of PE and KE. When the mass is falling after hitting the spring, it has a combination of PE and KE, and the spring also has a combination of PE and KE. When the mass stops at the bottom of its travel momentarily, it has only PE, and the spring only has PE.

So what can you say about the sums of PE and KE at any particular moment in this sequence? Does that help answer your question?
The sums should be the same, correct? When the mass has fallen the initial h + deflection, all of the energy in the system is now PEspring, at least that makes sense in my head. Why, then, do I get an incorrect value when I set mg(h + delta) = 1/2kx2?

haruspex said:
I agree with you (cowmoo32). k should have been determined by setting v = 0 in the energy equation.
Someone in my class clarified why F=mg=kx, but I still don't see why what I said above doesn't yield the right value for k.
 


cowmoo32 said:
Someone in my class clarified why F=mg=kx.
Then please explain it to me:confused:. When mg=kx there will be no acceleration, but it won't be at rest unless all the KE has been dissipated.
 


I just re-read the question, and it asks about a point in the spring compression before it reaches full compression. That means that there are all PEheight+PEspring+KEmass. Did you account for that in your work?
 


berkeman said:
I just re-read the question, and it asks about a point in the spring compression before it reaches full compression.
Yes, but before that you are required to deduce the spring constant from the compression extent when the mass is momentarily at rest. This is the bit that seems wrong in the embedded text. It says mg = kx there, which is wrong.
 


I emailed my professor and the solution is wrong. You cannot say F=mg=kx because the system is not in equilibrium. I was correct in saying that at the point of maximum compression the energy of the system is mgh=1/2kx2 where h is the distance the mass fell + the compression.

The steps in the red box in the solution you sent are not correct. I think the mistake they made is that they used the sum of the forces = 0 at the maximum compression: kx - mg = 0. The problem is that even though the velocity is zero, the acceleration is not zero at this point. It's not in equilibrium.
 

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