andyrk said:You mean to say even though I am compressing the spring, it is actually the wall that is compressing it?
andyrk said:why do we have compression of x (done by us) only?
If you're asking why the compression is x=F/k and not x=2F/k, then it's simply a matter of the way the spring constant, k, is defined.andyrk said:Both wall and hand should compress because of Hooke's Law.
What if I say that I don't want to make things easier and look at things just the way they are? Would it then mean that I compressed the spring by ##x/2## even though I clearly compressed it by ##x##?Drakkith said:I'm saying that it doesn't matter who you say does the compressing. Both you and the wall are exerting a force on the spring, so it's probably most accurate to say both of you are compressing it. However, we live in a world where we like to make things easier by saying that it is you that does the compressing, and not the wall. That way you can simplify the equations, making things like Hooke's law much easier to work with. Only having to worry about the distance one end of the spring moves is much easier than worrying about both ends.
andyrk said:What if I say that I don't want to make things easier and look at things just the way they are? Would it then mean that I compressed the spring by ##x/2## even though I clearly compressed it by ##x##?
If I take a spring in my hand and stretch it a length x more than its original length, with both my hands. Now, do both my hands experience an inward force ##F = -kx##?Orodruin said:Look, it is very very simple, ##x## is the difference between the spring length and the spring rest length, ##F## is the force (on either side) and ##k## the spring constant. Do not overcomplicate things!
Orodruin said:Look, it is very very simple, ##x## is the difference between the spring length and the spring rest length, ##F## is the force (on either side) and ##k## the spring constant. Do not overcomplicate things!
andyrk said:If I take a spring in my hand and stretch it a length x more than its original length, with both my hands. Now, do both my hands experience an inward force F=−kxF = -kx?
andyrk said:But no one replied to post #13.
Please read the posts better.Orodruin said:Look, it is very very simple, ##x## is the difference between the spring length and the spring rest length, ##F## is the force (on either side) and ##k## the spring constant. Do not overcomplicate things!
andyrk said:But no one replied to post #13.
So just applying a force on one end doesn't mean that the spring would extend or compress?Chestermiller said:I'm going back to your original post, because I think I can help relate the kinematics to the force in a little different way that might work for you. The tension in the spring is always going to be T = kΔL, where ΔL is the change in length, relative to the original unextended length. If ΔL is negative, then the spring is in compression, and the tension is negative.
Let xL represent the x coordinate of the left end of the spring at time t, and let xR represent the x coordinate of the right end of the spring at time t. Let the original unextended length of the spring be L0. So we are going to allow the possibility that both ends of the spring can move, and not just one end. So the left end can move by moving your left hand, and the right end can move by moving your right hand. With this description, the change in length of the spring ΔL relative to its original unextended length is given by:
$$ΔL=x_R-x_L-L_0$$
It doesn't matter which hand is moving and in which direction, the only thing that matters is the distance between your left hand and your right hand, xR-xL. The tension that each hand feels is then given by:
$$T=k(x_R-x_L-L_0)$$
If the term in parenthesis is negative, then the spring is in compression.
Hope this helps.
Chet
Yes, that's right. It isn't possible to apply a force to one end of a mass-less spring to try to get it to extend or compress, without in some way anchoring the other end. In one case, you've anchored it by attaching it to the wall, and, in the other case, you've anchored it by holding it with your other hand. Or, you could move both ends simultaneously, but the forces on your two hands would always be of the same magnitude.andyrk said:So just applying a force on one end doesn't mean that the spring would extend or compress?
No. For springs that have mass and involve acceleration, the force on one end is not equal to the force on the other end, and the tension varies along the spring. You saw that kind of deal last week when you analyzed the tension variations along a rotating rod that has mass.andyrk said:Very interesting and fascinating. But isn't that true for springs that have mass as well?
It is not possible to identify the individual amount that each hand compresses the spring. There is no such thing. The only thing that matters is the distance between the two hands, and not their individual locations. For example, if you hold your left hand fixed and move your right hand to the left x inches, you might think that your right hand has compressed the spring. But now, what if you move both hands to the right x inches, while holding the length of the spring fixed. The spring still has the same force, but now it looks like the right hand was fixed, and the left hand compressed the spring. If someone had left the room before any compression was done, and then came back afterwards, they would not be able to tell.andyrk said:But I don't think the spring can compress or extend that way then. Also, if you compress a spring with both hands..so that its length changes by x, both the hands experience a force ##F = -kx## in opposite direction. But how do we know how much did each hand compress the spring individually?
I can't visualize this situation.Chestermiller said:But now, what if you move both hands to the right x inches, while holding the length of the spring fixed.
Sorry, then all I can say is that it is not possible to identify the individual amount that each hand compresses the spring.andyrk said:I can't visualize this situation.
If you push harder with your left hand than you push back with you right, then your left hand will just end up pushing the spring and all (including your right hand) to the right.andyrk said:I can't visualize this situation.
The same way you know how much noise each hand makes individually, when you clap them.andyrk said:But how do we know how much did each hand compress the spring individually?
andyrk said:But how do we know how much did each hand compress the spring individually?
My suspicion is that you aren't reading your source correctly, but try this: https://en.wikipedia.org/wiki/Spring_(device)andyrk said:Can someone provide a link which describes in detail everything about a spring in physics terms? Because the book I have says nothing about the fact that spring exerts the same force in opposite direction at both ends, but it uses this fact to solve many problems that follow it.
Even this doesn't say anything about the spring applying equal and opposite forces at both ends.russ_watters said:My suspicion is that you aren't reading your source correctly, but try this: https://en.wikipedia.org/wiki/Spring_(device)