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When you're in a train and it slows down, you experience the push forward from the deceleration which is no surprise since the force one experiences results from good old $F=m a$. However, the moment the train stops one is apparently pulled backwards. But is that a real physical effect or just the result from leaning backwards to compensate the deceleration and that force suddenly stopping?


So far the answers basically agree that there are two spring forces involved, for one thing oneself as already guessed by me and for the other the vehicle itself as first suggested in Robert's answer. Also, as Gerard suggested the release of the brakes and some other friction effects might play a role. So let's be more precise with the question:

Which effect dominates the wrong-pull-effect? And thus, who can reduce it most:

  • the traveler
  • the driver
  • the vehicle designer?

edit Let's make this more interesting: I'm setting up a bounty of 50 100 (see edit below) for devising an experiment to explain this effect or at least prove my explanation right/wrong, and by the end of this month I'll award a second bounty of 200 150 for what I subjectively judge to be the best answer describing either:

  • an accomplished experiment (some video or reproducibility should be included)
  • a numerical simulation
  • a rigorous theoretical description

update since I like both the suggestions of QH7 and Georg, I decided to put up a second bounty of 50 (thus reducing the second bounty to 150 however)

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It's definitely a real effect, you can make your car bounce back if you let go of the brakes at the right time. –  crasic Nov 12 '10 at 20:39
    
Interesting question. I suspect you've given exactly the right answer in your question. –  Noldorin Nov 12 '10 at 20:40
    
Pick me! Pick me! I feel like Donkey in Shrek .... ;-) –  andrewfd Feb 10 '11 at 14:30
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When looking for a theoretical description or good simulation, You should define what kind of train is braked in which way (funktion of brake/time). A modern train like ICE with evenly distributed mass over length and braking controlled by some fuzzy logic will do very different from an old local train. –  Georg Feb 10 '11 at 17:21
    
@Georg: good point, let's assume an old local train (RE for example), I didn't test for this effect in an ICE –  Tobias Kienzler Feb 11 '11 at 8:31
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16 Answers

up vote 26 down vote accepted
+150

I spent last weekends making my own realisation of MPM method code (just for fun of it). I just had an idea that I can try to simulate something similar to the problem of interest.

So, here is our "car".
Initial configuration
It is moving to the right with some constant speed. Then I apply some constant external force to the "wheels" to stop them. And that's what I've got:
1step1 2Step2
3step3 4step4
5step5 6step7
The colours denote the amount of stress in the medium. And here is the animation: Animation

Everyone are free to give other ideas for simulations/visualisations...

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awe-SOME! the car looks a bit wobbly, but basically this strongly supports the spring theory –  Tobias Kienzler Mar 1 '11 at 9:18
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Well, I made it wobbly to be more visual. And I think it supports most of all the sensible things said about the effect... –  Kostya Mar 1 '11 at 10:35
    
This well illustrates the stresses and motions on the parts of car body and are well worth examining, but those are not likely to cause the effects on the passenger. –  mgkrebbs Jun 16 '11 at 3:13
    
I'm sorry if I'm such a novice that I simply can't understand, but what exactly is the conclusion here? These are great illustrations by the way, but if this is meant to show that the wobbly car is throwing the person back a little bit, I'm not sure I see that conclusion being drawn. –  NickC Sep 26 '11 at 21:40
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Try making only the junction between the wheels and the body of the car flexible. I think the suspension alone is enough to give the effect. –  Diego Jan 26 '12 at 8:31
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I think this effect is caused by the overshooting in the response of the body to the change in the train's acceleration.

Suppose there is a "perfect" train that can start/stop acceleration (breaking) instantaneously. It starts slowing from speed 50 m/s and until it reaches the zero speed.

Here is a simulation. The "body" model is very approximate, but demonstrates the effect. As we know, we experience similar effect when train begins slowing.

enter image description here

I took the moving "body" model from here: http://en.wikipedia.org/wiki/State_space_representation#Moving_object_example

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Nice calculations, thanks! So you assume a body-spring effect. I really wonder whether a marble rolling on the floor when the deceleration stops would slightly accelerate or not... Although I guess the truth is a combination of both body tension and vehicle tilting –  Tobias Kienzler Sep 29 '12 at 7:03
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I believe this has to do with Jerk. Jerk is the derivative of acceleration. The brakes of the vehicle will provide a nearly constant force against the motion of the car. Since $F=m a$, as your vehicle slows at a constant rate of negative acceleration. Once the car stops, the force (and consequently your acceleration) go to zero very quickly. This results in a high amount of Jerk, and this is what you're feeling.

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I think several answers already pointed correctly to factors. But, at least in cars, I think the dominant factor is the set of front and rear springs. My illustration is very much exaggerated. In (a) we have a car with constant speed. When the driver gives the car a deceleration with the breaks the springs system enters in configuration (b). When the vehicle finally stops and there is no acceleration on it, the spring system oscillates back a little (c) before returning to the equilibrium configuration (a). The wrong pull effect happens between (b) and (c) my illustration

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+1 for the drawing, and for using the same car rotated =P, but I think the body as a spring is the answer –  HDE Feb 28 '11 at 17:49
    
I still believe this is a more probable explanation than the body as spring as I don't think the car is flexible enough to overcome the suspension effect. I should have probably added a driver and the forces acting on him, in my illustration. In C the passenger clearly feels a force in the opposite direction the car was moving. –  Diego Jan 26 '12 at 8:26
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And thus, who can reduce it most: the vehicle designer !

The French car maker Citroen do the compensation since long time ago.

quoting from citroenet

Anti dive suspension is incorporated since the rear brakes take their fluid from the rear suspension which pulls the tail down under heavy braking.

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There is no pulling, your body is pulling yourself because of the muscles' contraction to counter balance the deceleration.

Let's model your body by a mass reparteed vertically, plus a your feet. No force is applied, you are standing straight. Imagine we are at constant speed, the train driving from left to right on the picture.

equilibrium

When the vehicule decelerates, you are the subject of inertial force (if we consider the train as the reference, the inertial force aka fictious force greatly simplifies the explaination ; you could consider the earth as the reference and study the momentum instead).

Now let's consider you don't wear rollerblades. Your shoes have enough friction on the ground, and an opposite force is applied on your feet. The sum of these two forces is null, and you don't slide.

inertial

However, these two results in a couple) on your body, which begins to rotate.

resulting couple

Now, I'll assume you have a brain. Instinctively, the brain orders your muscles to contract to counteract this couple.

counter couple

This muscular couple is created by your powerful calf contracting (i.e. pulling your body down), and your strong tibia has an opposite force.

All of sudden, the train stops, and the deceleration is null. What remains is your own couple. You pull yourself back.

enter image description here

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+1 very nice human as a block model :) –  Tobias Kienzler Feb 18 '11 at 8:05
    
however there still remains the question whether this effect is the dominating one or if the vehicle's design or the conductor's behaviour plays a role as well –  Tobias Kienzler Feb 18 '11 at 8:07
    
Of course, all this explaination is based on the fact that "all of a sudden" the train decelerates, and "all of sudden", this deceleration disappears (when it is stopped). You wouldn't be surprised, and feel pulled if the train deceleration increases slowly and then is reduced slowly. In mathematical terms, this means that the acceleration should be a continuous function over time. –  rds Feb 18 '11 at 13:06
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A priori, the vehicle design does not play a role. But it could be designed to compensate. For instance, the TGV left and right rails are not at the same level when the track is curved, so that your lateral weight compensates the Centrigal force. Similarly, a train would feel more comfortable if the upfront was risen when the trains decelerates. –  rds Feb 18 '11 at 13:13
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The explanation comes from standard mechanics where a body is in equilibrium when the forces acting on, and torques about the centre of mass sum to zero.

When the train is decelerating, there are torques acting on your body where it makes contact with the train via the seat or floor, and you automatically alter your body postition to create counter-torques so that your body remains in equilibrium. When the train suddenly stops, this net counter torque is no longer balanced, and so you rotate about your centre of mass in a direction that pulls you back.

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A simple experiment:
Take a pendulum which is suspended using some support like a wooden frame.
Tape what happens when you stop.
Compare with video of you on the same train during the same stop.
Scientific enough and simple.
If the pendulum's motion differs from yours, your explanation is correct.

Sorry don't have numerical or theoretical explanation.

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+1 one could also tape the train station in addition to the pendulum to estimate the true deceleration and then calculate whether any additional force acts on the pendulum –  Tobias Kienzler Feb 15 '11 at 8:19
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@Tobias, Taping the train from outside and the passenger too is a good idea. But the pendulum is of no use. This would have a a resonant frequency at abot some tenths of a second, much too slow to tell You details of the acceleration. Such a pendulum is well known as "ballistic pendulum" and tells You about the overall impulse. The lack of damping would impede the "reading" of the pendulum swing further. –  Georg Feb 17 '11 at 11:49
    
@Georg: good idea, that way one could also compare multiple passengers at once. And yes, a better accelerometer might help indeed –  Tobias Kienzler Feb 17 '11 at 11:59
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@Tobias, I'd try this on a "museum" (steam) train. More advanced trains have more sophisticated controls and the driver sits in a seat like in a car. Both factors make braking smoother in general. And: nobody will ask You questions why You tape the train :=) –  Georg Feb 17 '11 at 13:03
    
@Georg: both excellent points :) –  Tobias Kienzler Feb 17 '11 at 14:59
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Another way of observing this effect is to have a car go up a gentle slope at some speed, put it in neutral gear, wait for it to stop and then hitting the breaks. Most people expect that using the breaks when the car is at rest (even if just momentarily) will have no perceptible effect, and they are surprised to feel a 'jerk' very similar to the one mentioned in the question.

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Bit late to the game, but if we put a glass of water on the train in these circumstances you will see the water pushed to the "front" side of the glass as the train slows and then, when the train comes to a stop, swish to the "back" side of the glass, repeating in broadly diminishing cycles until coming to a rest.

The human body is certainly more rigid than a water in a glass, but your organs (and brain which is pretty heavy) will follow the waters pattern of motion and kick back.

Now try the same thought experiment with a glass of frozen solid water. No kickback.

I guess the answer is fluid dynamics combined with deceleration.

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Basically this glas of water is a good idea, the drawback of such an accelerometer is the low damping of its natural vibration. But nevertheless one should try. –  Georg Feb 10 '11 at 14:34
    
The accelerometers used by TÜV in the 50ties were kind of U-tube manometers, filled with some viscous liquid. –  Georg Feb 10 '11 at 16:26
    
@georg, if you're concerned with vibration damping, you could use a rigid pendulum; it should give similar behavior and could be constrained to one axis. –  Joe Feb 11 '11 at 14:53
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I drew up this picture below:

delivery of braking force between the ground and vehicle

where upon returning to this page I see this question is 3 months old. However, I will answer this anyways, because nobody got the answer right in my opinion. The picture illustrates the springs or struts in the under carriage of the vehicle. In decelerating these communicate the deceleration from the road or rails to the vehicle. The deceleration is due to a static friction (holonomic or no slipping) between the tire and the ground, $F_b~=~-kx$. Here the braking friction is equal to the spring force the struts deliver. The braking force has a dependency on the velocity, where $F_b(v)~=~ F\theta(v)$, which is a heaviside function that turns off when the velocity equals zero. This means the spring has a slight distension when the vehicle comes to a rest and this then gives that little force forwards we experience.

It is often that people who do theoretical physics have never done things like rebuild a car engine.

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+1 Nicely put, but I feel it prudent to point out that this argument (albeit less formal) has in fact been proposed in other answers. –  qftme Feb 10 '11 at 14:03
    
It has my +1 since this is probably the most clear and straightforward answer. –  mbq Feb 11 '11 at 10:56
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We have two effects going on. One is that the person is countering a constant acceleration, but when it rapidly stops there is nothing to stop the counterforce (lean) from creating acceleration of the person. The train is not a rigidbody, but in fact is a deformable body, so your intuition which assumes it posses infinite stiffness is wrong.. A deformable body under stress (to transmit the deceleration from the brakes to the distributed mass of the train car), is also under strain (i.e. the body of the train experiences some deformation). The instant the braking force is removed, these stresses and strains remain, and the train car is in a nonequlibrium state.

Try modeling it as mass on a spring attached to a rigid body. Subject the rigid body to a constant acceleration, and let the spring/mass come to its equilibrium position. Then eliminate the acceleration. The spring is not in its equilibrium position, and the mass will see acceleration.

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+1 I think this can be supported by my experience this morning: When the train stopped, the wrong-pull did not happen immediately but after estimated 0.5s, which may be caused by the freezing cold influencing the effective spring constant of the train you mentioned –  Tobias Kienzler Dec 2 '10 at 9:36
    
+1 Just read this after having made similar aguments in a comment above. This, IMHO, is the correct explanation. –  qftme Feb 10 '11 at 14:00
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You are pulled wrong way by your own hands and legs, which were stressed to keep you decelerating together with the vehicle.

When the vehicle suddenly stopped accelerating (this is how friction works: it is opposite to speed, and then speed suddenly reaches zero) then this tension keeps pulling you until you react and reconfigure.

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so your answer basically concurs with my guess? (+1) –  Tobias Kienzler Dec 2 '10 at 9:38
    
yes, that's true –  Pavel Radzivilovsky Dec 4 '10 at 22:28
    
I beleive this is the correct answer but offer a slight extension to it: –  qftme Feb 10 '11 at 13:45
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In addition to the tension built up, and released, by the passengers' limbs and torso, there will also be a similar release from the seat, carriage and brakes on the train. Clearly the seat fixings, the carriage-to-chassis fixings and the brakes-to-chassis fixings all have a small amount of 'give' in them (as does the actual plastic comprising the chair and the metal comprising the train). Thus, under braking, the torque due to the deceleration will build up a small, soon-to-be-felt, recoil once the deceleration reduces to zero. –  qftme Feb 10 '11 at 13:54
    
Sounds true to me; however, the body is perhaps the most flexible of all, and therefore contributes the most to the effect. –  Pavel Radzivilovsky Mar 7 '11 at 10:30
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Perhaps it can be explained like this:
At a certain moment the train pilot releases the brake system. At that point the heavy mass of the train is released from a rather powerfull constraint and it's wheels can move freely (well not completely free of course). When the wheels turn slightly forwards you experience a force in the other direction. The mass of the train being quite large and the release of the brakes quite sudden, this force is stronger then the previous carefull deceleration.

So the short pull wouldn't be in a "wrong" direction.
I should be easy to verify in reality whether this explanation is correct.

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+1 I don't know if the brakes are released when the train stops, but this sounds plausible –  Tobias Kienzler Nov 15 '10 at 8:19
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That does sound like a reasonable explanation, but I don't think that's the effect Tobias describes. You can try it out in a car - if you release the brakes as you come to a stop, you don't get what I think of as the 'pull back' (aka Kienzler) effect. You do feel a force in the other direction, but it seems more like a return to normal. Whereas if you keep the brakes applied until you completely stop, you feel the effect. (Most drivers avoid doing this as it doesn't give a smooth ride!) –  Grant Crofton Nov 15 '10 at 9:30
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That effect is a real one, but You forgot the springs in the buffers! –  Georg Feb 10 '11 at 14:31
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I think since the acceleration of the motion of the vehicle towards voyage direction is always <= zero for the slowing down process, the explanation has to be searched somewhere else since this cannot explain your "kickback".

To my opinion it might be that the slowing down acts on the vehicle also as angular acceleration such that it gets tilted a little (front "into the ground", back "into air"). At the point when the vehicle stops, this tilt will vanish (might be described by aperiodic oscillation). This movement, call it "up-whipping" will again have a turning point causing the kick into the seat.

Well, maybe :)

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-1 I'm afraid. Your paragraph about angular acceleration/oscillation looks like a whole lot of tosh to me. –  Noldorin Nov 12 '10 at 20:40
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Well, then, please go ahead and explain this kickback in terms of an acceleration along the line of voyage (1D, a <= 0 for all t). You might find that there cannot be an explanation for it and one has to look for alternatives; one was given by me. I suggest you to try to understand the situation before blaming other people. –  Robert Filter Nov 15 '10 at 8:03
    
+1ing and bumping @Noldorin. I think it sounds possible, but we should calculate, simulate or measure it for final conclusions... –  Tobias Kienzler Nov 15 '10 at 8:16
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I think @Robert's answer about 'up-whipping' might explain some of the effect in some cases, but I doubt it's noticeable in trains or other things with limited or no suspension travel.

I'm fairly certain it's mainly down to the 'leaning back' effect (the Kienzler effect??). Take a marble with you next time you travel by train, you can probably devise an experiment to find out!

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+1 yay for having my own effect now :p But seriously, I should really just test it, some reliable accelerometer. Maybe also a pendulum if I can un-calculate the intertia precisely enough... –  Tobias Kienzler Nov 15 '10 at 8:18
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