Perpendicular Forces and Changes in Momentum

In summary: It's just that the perpendicular force does change the velocity of the object in the perpendicular direction.
  • #1
Jacob959
6
0
Okay, I feel like I am just missing something that should be very easy to see, but I can't seem to wrap my head around this concept. Can anyone explain to me why a force perpendicular to the momentum only changes the direction of the momentum and not the magnitude? By my logic, if Fnet=Δp/Δt, and thus, Δt*Fnet = mΔv, then shouldn't the perpendicular force change the velocity of object in the direction perpendicular to the current direction of momentum? And because the velocity changes in the new direction, wouldn't the magnitude of the momentum change since the magnitude of the velocity changed?

Hopefully you can follow my logic and see where it is flawed! Thanks in advance!
 
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  • #2
of course it will change if it is always pointing in the same direction or at least for a finite time so as to cause this velocity change.If you are confused with some circular motion type thing then you might be aware that the acceleration is not always or for a finite moment points in same direction.
 
  • #3
The problem goes as this:

You have a particle moving on a plane. You have an acceleration vector of the constant magnitude and of the direction always perpendicular to the velocity of the particle. You can write it down as a differential equation.

Now consider infinitesimal accelerations (changes of velocity). You can split an infinitesimal acceleration into two parts: the part parallel to the direction of motion and the part perpendicular to the direction of motion. I don't know if you can see it, but the parallel part is responsible for changing the magnitude of velocity without changing direction and the perpendicular part is for changing direction without changing magnitude. If you don't see it, then just integrate it in your mind :).

With the problem you gave, the acceleration vector is always perpendicular to the direction of motion, so it will never change the magnitude.

Note that the magnitude is determined by the magnitude of acceleration. It is not a boundary condition. The speed of your particle is a solution of the equation.
 
  • #4
Jacob959 said:
... then shouldn't the perpendicular force change the velocity of object in the direction perpendicular to the current direction of momentum? And because the velocity changes in the new direction, wouldn't the magnitude of the momentum change since the magnitude of the velocity changed?

Hopefully you can follow my logic and see where it is flawed! Thanks in advance!
Yes, the velocity will change in that direction, so will the momentum. But in the direction perpendicular to it, the velocity will be a little smaller, n't it? When you add them, you will see the speed didn't change, therefore magnitude of momentum stays constant.
 
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  • #5
The idea here is that acceleration is always perpendicular to velocity. As velocity changes direction, so does the acceleration, so that it remains perpendicular to velocity. So the path changes, but not the speed. As a real world example of this, imagine a car at constant speed taking a variety of turns on a twisty road.
 
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  • #6
This is an example of a counter-intuitive situation. It is hard not to think in terms of the effect of gravity, say, on an object that's moving horizontally. After a short while, the (free fall) object's momentum (and, of course, Kinetic Energy) will have increased. But the force is only normal to the path of the object initially - so the OP's statement only applies during the first infinitessimal. Thereafter, the force has a component in the direction of the motion so the magnitude of the momentum can increase.
In the case of circular motion (the only example where the magnitude of the momentum does not increase) the easiest argument against a change is that the 'string' doesn't get any shorter. Hence, there is no 'force times distance' involved so there is no work done - so the KE will be unchanged and, hence, neither will the magnitude of the momentum.
 
  • #7
sophiecentaur said:
In the case of circular motion (the only example where the magnitude of the momentum does not increase)
You can have a constant speed path of just about any shape, as long as there are no sharp "corners". The example of a car driving at constant speed in a variety of patterns (circle, ellipse, spiral, sin wave, parabola, ...) should help explain this concept.
 
  • #8
rcgldr said:
You can have a constant speed path of just about any shape, as long as there are no sharp "corners". The example of a car driving at constant speed in a variety of patterns (circle, ellipse, spiral, sin wave, parabola, ...) should help explain this concept.
Ah yes - but not with only a normal force acting.
(You had me worried there for a second. :wink:)
 
  • #9
sophiecentaur said:
Ah yes - but not with only a normal force acting.

Did you just write the opposite of what you meant?

All of the described trajectories can indeed be obtained with only a normal force acting.

If the force is not normal, the speed will not be constant but all of the described trajectories can still be obtained. Along with including some additional shapes that have sharp corners.

Or have I missed the joke?
 
  • #10
I was rather thinking that the speed would need to be constant for the magnitude of the momentum to be the same and was then thinking in terms of elliptical orbits, where the central force is not normal all the time. A 'rounded square' would fit the bill as well as a circle but, I guess, if you imagine a perfectly smooth wire track, there could only ever be a normal force on the object - so it could be any shape you liked and the object would maintain constant speed.
 

Related to Perpendicular Forces and Changes in Momentum

What is a perpendicular force?

A perpendicular force is a force that acts on an object at a 90 degree angle from the object's motion. This force can cause changes in the direction of motion but does not directly affect the object's speed.

How do perpendicular forces affect momentum?

Perpendicular forces do not directly affect an object's momentum, as momentum is determined by an object's mass and velocity. However, they can cause changes in the direction of an object's momentum.

What is the relationship between perpendicular forces and changes in momentum?

Perpendicular forces can cause changes in an object's momentum by changing its direction of motion. This is known as the principle of conservation of momentum, which states that the total momentum of a closed system remains constant in the absence of external forces.

Can perpendicular forces cause changes in speed?

No, perpendicular forces do not directly cause changes in an object's speed. However, they can indirectly affect an object's speed by causing changes in its direction of motion, which can then lead to changes in its speed.

Do perpendicular forces always cause changes in momentum?

No, perpendicular forces do not always cause changes in momentum. If the perpendicular force is balanced by an equal and opposite force, the object's momentum will remain constant. Only when the perpendicular force is unbalanced will it cause a change in momentum.

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