Revisiting the Definition of Free Fall: Acceleration or Standing Still?

In summary, when you are in free fall, you are actually accelerating in the opposite direction of gravity at a rate of 9.8m/s^2. This is because gravity is the only force acting on your body. However, when standing on the Earth's surface, the net force on your body is zero and you do not feel the acceleration due to gravity. The number 9.8m/s^2 is derived from the formula for the force of gravity between two masses, which explains why it is different from the acceleration you feel when in free fall.
  • #71
Hootenanny said:
In classical physics, any sphere can be treated as a point mass provided you are outside the sphere, this turns out to be a good approximation for most uses.

marlon said:
If it ain't broken, don't fix it :wink:

It depends on what you mean by "most uses". Orbital mechanics is used primarily to track and predict the location of the objects mankind has placed in orbit around the Earth. Secular effects arise from the Earth's non-spherical mass distribution; in other words, the point mass model is broken. We have worried about these effects since the beginning of the space age.
 
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  • #72
D H, the point mass is not broken, it just cannot be used on the Earth since it is not a perfect sphere. At least that's what Marlon's saying.
 
  • #73
Jarle said:
D H, the point mass is not broken, it just cannot be used on the Earth since it is not a perfect sphere. At least that's what Marlon's saying.
It can be used on earth, depending on the degree of accuracy required. For example, if you wish to calculate the trajectory of a bullet fired from a gun do you think that because we treat the Earth as a point mass and ignore that fact that it is non a uniform sphere will make a significant difference? How about calculating the terminal velocity of a falling object on earth?

There is very little the this universe which is perfectly spherical (or perfect in any geometric sense), all that is important is that the error due to any assumptions is very small in comparison to the required accuracy.

As an aside and further to DH's comment; we don't used classical physics to track orbiting satellites, we must use relativistic physics so we obviously don't treat the Earth as a point mass.
 
  • #74
Ah, finally. So what's the realitivistic equation for the force of gravity? It must be something else than F=GMm/r^2
 
  • #75
Jarle said:
Ah, finally. So what's the realitivistic equation for the force of gravity? It must be something else than F=GMm/r^2
There is not one equation, but ten known as the Einstein field equations. Basically they describe the curvature of space time which results in the observed gravitational force. They can be written down as a single tensor equation. There are a few tutorials available on the Internet, you should search for the "Einstein Field Equations".
 
  • #76
Hootenanny said:
As an aside and further to DH's comment; we don't used classical physics to track orbiting satellites, we must use relativistic physics so we obviously don't treat the Earth as a point mass.

We do not use relativistic physics to track orbiting satellites. I ought to know. I have been working with satellites (guidance, navigation, and control) for 26 years. The errors induced by using the Newtonian approximation are tiny, much smaller (for example) than the errors induced by imperfectly modeling exoatmospheric density.

We do need to account for relativity for one thing. The clocks on any satellite run at a slightly faster rate than those on the Earth (38 microseconds per day or about 1 millisecond per month). That effect is negligible on most satellites; a calibrated quartz clock is accurate to a few seconds per month. The GPS satellites, however, need very accurate timing and thus carry atomic clocks. The relativistic effect on those clocks must be taken into account. The state (position and velocity) of a GPS satellite is still propagated using Newtonian mechanics.
 
  • #77
D H said:
We do not use relativistic physics to track orbiting satellites. I ought to know. I have been working with satellites (guidance, navigation, and control) for 26 years.
My apologies, I did not intend my comment as a personal attack in any way.
D H said:
We do need to account for relativity for one thing. The clocks on any satellite run at a slightly faster rate than those on the Earth (38 microseconds per day or about 1 millisecond per month). That effect is negligible on most satellites; a calibrated quarz clock is accurate to a few seconds per month. The GPS satellites, however, need very accurate timing and thus carry atomic clocks. The relativistic effect on those clocks must be taken into account. The state (position and velocity) of a GPS satellite is still propagated using Newtonian mechanics.
This is what I meant by my comment, I should have been more specific (i.e. specified that relativity is used to correct the clock times); not to model the position of an orbiting satellite.
 
  • #78
Jarle said:
, it just cannot be used on the Earth since it is not a perfect sphere. At least that's what Marlon's saying.

No, that is NOT what i have been saying. What i said is that the earth, although not being a perfect sphere, is considered to be a point particle (just like any other planet) in classical physics. C'mon, i have been saying this over and over again.

marlon
 
  • #79
D H said:
It depends on what you mean by "most uses". Orbital mechanics is used primarily to track and predict the location of the objects mankind has placed in orbit around the Earth. Secular effects arise from the Earth's non-spherical mass distribution; in other words, the point mass model is broken.
This is very true yet it does not change the fact that spherical objects (like planets, or at least like the idialization of them) are considered to be point particles in classical physics. Hootenanny already gave some examples, which i am sure, you will not deny. In light of Jarle's original comments on gravity, i wanted to make sure he understood this. That is all.

marlon
 
  • #80
marlon said:
This is very true yet it does not change the fact that spherical objects (like planets, or at least like the idialization of them) are considered to be point particles in classical physics.

I agree. There is no difference between the gravitational potential for a point mass and a spherical mass in classical physics for all points outside of the spherical object.
 
  • #81
Well, I agree, the Earth could be looked upon as a point particle. BUT, what I meant that that does not makes the equation 100% correct due to it's non-sphere like form... But it is probably insignificant...

Anyway, I believe that there must be another factor involved here, since a black hole is evidence that the smaller the volume the mass is spreaded on, is making a difference in the gravitational effect. Since the blakc holes density made the gravitational force exceed the speed of light (you know what I mean...) means that the density DOES matter, or what? The factor might be pretty insignificant when comparing planets to stars and such, but in the end, it would really matter. :\

I am not saying it works like this, I am saying that I believe it should work like this, even though it is not taken in consideration in classical physics.
 
  • #82
Jarle said:
Well, I agree, the Earth could be looked upon as a point particle. BUT, what I meant that that does not makes the equation 100% correct due to it's non-sphere like form... But it is probably insignificant...

Anyway, I believe that there must be another factor involved here, since a black hole is evidence that the smaller the volume the mass is spreaded on, is making a difference in the gravitational effect. Since the blakc holes density made the gravitational force exceed the speed of light (you know what I mean...) means that the density DOES matter, or what? The factor might be pretty insignificant when comparing planets to stars and such, but in the end, it would really matter:\

I don't quite understand what your point is here. In the fields/applications where the effects of GR / non-uniformity of the Earth is not significant, then why should we over complicate calculations, when the result from a much simpler calculation would be sufficiently accurate? In the fields where such effects are significant, then they will already have been taken into account (Check DH's orbital mechanics). What your saying is in essence correct, '[insert assumption here]' matters in some applications. However, for many 'everyday' applications classical physics and the assumption that [insert assumption here] is more than sufficiently accurate (as is treating the Earth as a uniform sphere and point mass and ignoring GR). The reason we make assumptions is to simplify calculations, without losing any significant degree of accuracy.
 
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  • #83
Well, that was kind of what i said... That the calculations would indeed be accurate enough, even if we treat the planet as a point particle.

Anyway, it didn't have much to do with my other question.

I meant that if you put 1000 kg of material in 1m^3. This would create LESS gravitational energy for a point outside the sphere than if the volume was 1cm^3. I know it does not work that way in classical physics, but I thought that the black hole would be a good example of gravity working this way. but please, TRY to understand my point instead of just saying it doesn't mean anything if I haven't defined it totally correct.
 
  • #84
Jarle said:
I meant that if you put 1000 kg of material in 1m^3. This would create LESS gravitational energy for a point outside the sphere than if the volume was 1cm^3. I know it does not work that way in classical physics, but I thought that the black hole would be a good example of gravity working this way. but please, TRY to understand my point instead of just saying it doesn't mean anything if I haven't defined it totally correct.
Yes, what you are saying is in essence correct. I would point out that Gravitational Energy in GR is a bit of a fuzzy subject (as far as I know Marlon feel free to chip in), so it is better to talk in terms of curvature of space-time.
 
  • #85
Ah, the acknowledge I was waiting for! puh...

So, you say that this is correct, why did Marlon (as I presume knows a good deal about this) deny it?
 
  • #86
Jarle said:
So, you say that this is correct, why did Marlon (as I presume knows a good deal about this) deny it?
Clearly, you are not a good reader. It is not the first time i have been thinking this about you. In post 68 i wrote this as a response to your above question :

"Ok, got it. Essentially you are right : you would evolve to a "black hole type situation" if an object has a lot of mass contained in a smaller volume or if you would take a certain amount of mass but lower the volume in which it is contained. But again, my point is that black holes require a tremendous amount of gravity, and thus a very big collapse of mass. This kind of behaviour is not described by classical physics (ie the formula's we have been discussing). I wanted to point out that there is a distinction to be made here : classical physics versus general relativity. One cannot just take a general relativity phenomenon and expect it to be properly described in terms of classical physics. That's all."


marlon, sighs bigtime...well...whatever...
 
  • #87
All right, sorry, I understood now fairly enough after intensive reading. Well, I guess my point is proven then...
 
  • #88
Jarle said:
Well, I guess my point is proven then...
And your misconceptions have been replaced by proper physical knowledge :wink:

marlon
 
  • #89
Misconceptions and misconseptions...

I was asking why it wasn't like so and so, not saying that it WAS like that. You see the difference?
 
  • #90
I can see this thread takes circular path... I don't think we need to be so pedantic about the language, do we chaps?
 

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