GR: Gravitational Forces Represented by Christoffel Symbols

In summary: The summary is that the author proposes that the gravitational force in GR is represented by a subset of the Christoffel symbols, and that this representation is valid for an accelerating observer in flat space time.
  • #1
pervect
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To avoid hijacking an existing thread, I wanted to start a new one on how "gravitational forces" are represented in GR.

There doesn't seem to be a lot on this in the intro textbooks, alas, which mostly deal with the issue by avoiding it. Which suggests there could be some non-obvious problems, or at least grounds for long arguments.

But, forging ahead, nonetheless, I would like to propose an idea, which seems reasonable to me, to see if it will stay afloat, and perhaps the discussion (if we get one) will clarify things a bit.

The basic idea is that gravitational forces in GR are represented by Chrsitoffel symbols - or rather a subset of them.

This does represent the forces one experiences in an accelerating elevator as 'real' forces - but this is exactly the goal we want to achieve, I think, from the principle of equivalence.

To sketch the mathematical, if we consider the reference frame of an accelerating observer in flat space time, ala MTW we find that the metric is

ds^2 = (1 + 2g x) dt^2 - dx^2 - dy^2 - dz^2

see for instance MTW, pg 331, or, with some sign differences, http://www.citebase.org/fulltext?format=application%2Fpdf&identifier=oai%3AarXiv.org%3A0901.4465 [Broken], above (20), where we've simplified things by assuming no rotation.and we can identify [itex]\Gamma^{x}{}_{tt} = -g[/itex] from the usual expression

[tex]\Gamma^{c}{}_{ab} = \frac{1}{2} g^{cd} \left( \partial_{a} g_{bd} + \partial_{b} g_{ad} - \partial_{d} g_{ab} \right) [/tex]

Curved space-time introduces second order corrections to the metric, which won't affect the values of the Christoffel symbols.

So the basic idea is that "gravitational forces" are represented by [itex]\Gamma^{x}{}_{tt}, \Gamma^{y}{}_{tt}. \Gamma^{z}{}_{tt}[/itex], three of the Christoffel symbols.

We can also note, ala MTW pg 330, that the Fermi-Walker transport law _requires_ that [itex]\Gamma^{\hat{x}}{}_{\hat{t}\hat{t}} = \Gamma^{\hat{t}}{}_{\hat{x}\hat{t}} = a^j[/itex] along the worldline of the accelerating observer, where [itex]a^j[/itex] is the 4-acceleartion of the observer.

So, basically, Christoffel symbols carry information about the acceleration and the rotation of the worldline, and no information about the curvature of the space-time (that information is in second order terms in the metric, and comes from the Riemann tensor).
 
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  • #2
There is much I like about this, but a few questions as well:

- Even for a given body, undergoing some general motion, the Christoffel symbols have an arbitrary element due to coordinate choice. To minimize this, perhaps you want to specify a particular type coordinates for this goal of force definition, that are built by a standard recipe from the body's motion (potentially including rotation).

- Despite the equivalence principle, and the corresponding fact that all non-tidal 'gravitational forces' in GR are inertial forces, many people still want to distinguish the inertial force felt in a turning car from the inertial force felt standing on the ground. Your definition won't make them happy. Addressing this goes in two related directions: trying to define a class of 'effectively stationary observers' or trying to define a special class of coordinate systems for making this distinction (Christoffel symbols in the 'right coordinates' are gravitational force).
 
  • #3
PAllen said:
perhaps you want to specify a particular type coordinates for this goal of force definition, that are built by a standard recipe from the body's motion (potentially including rotation).

I'm not sure this will work as you state it, because the "right" choice of coordinate system will depend on the spacetime, not the body's motion. That's certainly true in the "canonical" case of falling bodies near the Earth; the "right" coordinates in which the Christoffel symbols give the gravitational "force" are static coordinates (i.e., Schwarzschild coordinates) centered on the Earth, and those are determined by the timelike Killing vector of the spacetime, not the motion of the body.
 
  • #4
Pervect said:
So the basic idea is that "gravitational forces" are represented by Γxtt , Γytt , Γztt three of the Christoffel symbols.
This seems sensible conclusion from that metric ( which is not a solution of the EFE).
 
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  • #5
PeterDonis said:
I'm not sure this will work as you state it, because the "right" choice of coordinate system will depend on the spacetime, not the body's motion. That's certainly true in the "canonical" case of falling bodies near the Earth; the "right" coordinates in which the Christoffel symbols give the gravitational "force" are static coordinates (i.e., Schwarzschild coordinates) centered on the Earth, and those are determined by the timelike Killing vector of the spacetime, not the motion of the body.

That's a point if you want to define a global sense of 'force of gravity'. That is what I was describing in my second bullet. In the first, I was taking a local point of view that would apply to even the 'frame' of a spinning top in rocket far from any mass. The idea was you build a possibly rotating Fermi-Normal frame from the object's motion. Then, SR or GR, Christoffel symbols in this frame describe local inertial forces. My point in the first bullet was that if you don't specify some recipe like 'a rotating Fermi frame', Pervect's concept seems ill defined (to me).
 
  • #6
PAllen said:
That's a point if you want to define a global sense of 'force of gravity'. That is what I was describing in my second bullet. In the first, I was taking a local point of view that would apply to even the 'frame' of a spinning top in rocket far from any mass. The idea was you build a possibly rotating Fermi-Normal frame from the object's motion.

I think "Fermi normal coordinates" only apply along a geodesic (and in such coordinates along a geodesic, all the Christoffel symbols are zero). I think the more general method would be to compute the frame field along the object's worldline, and then equate the proper acceleration vector derived from the frame field to the "acceleration due to gravity" (more precisely to minus the "acceleration due to gravity"). In local coordinates matched to the frame field, this would correspond to evaluating the Christoffel symbols that pervect is using ([itex]\Gamma^{i}_{00}[/itex] for each spatial index [itex]i[/itex]).

However, I'm still not sure this would end up matching people's intuitive sense of what "gravitational force" is except in special cases where the object was moving along a particular type of worldline (such as an orbit of a timelike Killing vector field).
 
  • #7
Mentz114 said:
This seems sensible conclusion from that metric ( which is not a solution of the EFE).

Yes, it is. It's just the Minkowski metric in a different coordinate chart (the Rindler chart), at least if I'm remembering that portion of MTW correctly (I don't have it handy right now to check).
 
  • #8
pervect said:
we can identify [itex]\Gamma^{x}{}_{tt} = -g[/itex]

Thinking it over some more, I'm not sure this makes sense globally. The Christoffel symbol is indeed as given here, but it only corresponds to the observed "acceleration due to gravity" along one particular observer's worldline--the observer whose proper time is equal to the coordinate time [itex]t[/itex] in this chart. Other observers at rest in this chart (the other Rindler observers) have different proper accelerations and so will observe a different "acceleration due to gravity", but the Christoffel symbols in the global chart will be the same.

PAllen's suggestion of using local coordinates (or the local frame field, as I posted) would work because different Rindler observers will have different frame fields, and hence different local coordinates centered on their worldlines. (I see that you refer to this at the end of the OP, but there you use the "hatted" Christoffel symbols, which are *not* the same as the global ones you use earlier in the OP.)
 
  • #9
PeterDonis said:
I think "Fermi normal coordinates" only apply along a geodesic (and in such coordinates along a geodesic, all the Christoffel symbols are zero). I think the more general method would be to compute the frame field along the object's worldline, and then equate the proper acceleration vector derived from the frame field to the "acceleration due to gravity" (more precisely to minus the "acceleration due to gravity"). In local coordinates matched to the frame field, this would correspond to evaluating the Christoffel symbols that pervect is using ([itex]\Gamma^{i}_{00}[/itex] for each spatial index [itex]i[/itex]).

However, I'm still not sure this would end up matching people's intuitive sense of what "gravitational force" is except in special cases where the object was moving along a particular type of worldline (such as an orbit of a timelike Killing vector field).

This is not what I learned from MTW. The following online source agrees with me:

http://relativity.livingreviews.org/open?pubNo=lrr-2004-6&page=articlesu18.html [Broken]

(see section 3.2). The whole point of Fermi-Normal coordinates is to describe the local experience of a non-inertial world line.

Again, the point of my first bullet was to go along with Pervect's idea of treating motion in a car as gravity just as much as standing on the ground. My only point was if a coordinate dependent quantity was to be used as a proposed definition of inertial forces in a car, something needed to be said about construction of canonic coordinates to express it in.

It was only in my second, independent, bullet that I raised the question of distinguishing 'inertial forces you would like to think of as gravity' from other inertial forces.
 
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  • #10
I'm sitting in a chair. We can interpret the Christoffel symbols as measures of the gravitational force holding me against the chair, but we can equally well say that there is no gravitational force, and the Christoffel symbols measure the chair's force on me. Really all they're telling me is that if I fix a coordinate system relative to the chair, then an object with zero coordinate velocity in those coordinates has a certain proper acceleration. They're not telling us about physics or forces or gravity, they're telling us about an arbitrarily chosen coordinate system.

PAllen said:
Despite the equivalence principle, and the corresponding fact that all non-tidal 'gravitational forces' in GR are inertial forces, many people still want to distinguish the inertial force felt in a turning car from the inertial force felt standing on the ground. Your definition won't make them happy.
Well, those people are being unreasonable and/or don't understand GR very well, so I don't think making them happy is a good criterion. Clearly the two examples (turning car, standing on the ground) have to be described the same way if we take the equivalence principle seriously. I would describe the passenger in the turning car as experiencing an outward gravitational field -- in coordinates fixed to the car. This kind of thing just shows that the gravitational field is not a physically meaningful thing to worry about.
 
  • #11
PAllen said:
This is not what I learned from MTW. The following online source agrees with me:

http://relativity.livingreviews.org/open?pubNo=lrr-2004-6&page=articlesu18.html [Broken]

(see section 3.2). The whole point of Fermi-Normal coordinates is to describe the local experience of a non-inertial world line.

You're right, I was misunderstanding the terminology. What I was calling "local coordinates matched to the frame field" are actually Fermi Normal coordinates. Sorry for the mixup on my part.
 
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  • #12
bcrowell said:
I'm sitting in a chair. We can interpret the Christoffel symbols as measures of the gravitational force holding me against the chair, but we can equally well say that there is no gravitational force, and the Christoffel symbols measure the chair's force on me.

I tend to lean towards this point of view as well. The OP says it's a goal to "represent the forces one experiences in an accelerating elevator as 'real' forces", but to me the "real" force felt by the observer at rest in an accelerating elevator is not "gravity", it's the elevator pushing on the observer. A freely falling object inside the elevator does not have any "force" on it. In other words, on this view force is always accompanied by proper acceleration, and it's always due to something that can cause proper acceleration.

I understand that many people don't want to take this view of "force". (I've lost count of the number of threads where this issue has arisen in one form or another.) The OP's position appears to be to try to come up with a different definition of "force" that allows gravity to be a force, so we can say that the freely falling rock here on Earth is pulled down by gravity, as is a freely falling object inside an accelerating spaceship. I see the intuitive motivation for this, but on balance I would prefer to try to convince people that the "force means proper acceleration" view works better.
 
  • #13
PeterDonis said:
I think "Fermi normal coordinates" only apply along a geodesic (and in such coordinates along a geodesic, all the Christoffel symbols are zero).

I was re-reading MTW, and the online reference and perhaps I've conflated Fermi coordinates with Fermi Normal coordinates.

http://www.citebase.org/fulltext?format=application%2Fpdf&identifier=oai%3AarXiv.org%3A0901.4465 [Broken]

The Fermi coordinates have been introduced by Fermi in 1922 [12–14]. They are defined in the neighborhood of the worldline C of an apparatus or an observer.

...

For the sake of simplicity, Manasse and Misner [22] introduced, along a geodesic, a specialization of the Fermi coordinates: the Fermi normal coordinates. The idea is similar to the Riemann normal coordinates; for each event P on the worldline C, the spatial coordinate lines crossing through P are considered as geodesics. Then the second derivatives of the metric tensor components in the Fermi normal coordinates can be written as a combination of the curvature tensor components in the initial coordinates.

If I've gotten it right this time, what I want are the Fermi coordinates - ones defined "by the worldline of an apparatus."

I think the more general method would be to compute the frame field along the object's worldline, and then equate the proper acceleration vector derived from the frame field to the "acceleration due to gravity" (more precisely to minus the "acceleration due to gravity").

This was more or less the procedure that MTW was adopting - and the simply expressed result of their procedure was that the acceleration could be read directly off the Christoffel symbols. Basically, when you require that your time coordinate be the proper time of an apparatus, you can't parallel transport your basis vectors, but you need to adopt a transport law.

You want the transport law to generate local Lorentz transformations. The infinitesimal generator of these local Lorentz transformations is just conceptually a rate of boost, i.e. an accleleration, and a rate of rotation, because a Lorentz transformation can be generalized as a boost and a rotation.

And the transport law determines the Christoffel symbols, which in turn give us the acceleration.
 
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  • #14
PAllen said:
This is not what I learned from MTW. The following online source agrees with me:

http://relativity.livingreviews.org/open?pubNo=lrr-2004-6&page=articlesu18.html [Broken]

(see section 3.2). The whole point of Fermi-Normal coordinates is to describe the local experience of a non-inertial world line.

I may have to retract my retraction. Thanks for the reference.
 
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  • #15
PAllen said:
That's a point if you want to define a global sense of 'force of gravity'. That is what I was describing in my second bullet. In the first, I was taking a local point of view that would apply to even the 'frame' of a spinning top in rocket far from any mass. The idea was you build a possibly rotating Fermi-Normal frame from the object's motion. Then, SR or GR, Christoffel symbols in this frame describe local inertial forces. My point in the first bullet was that if you don't specify some recipe like 'a rotating Fermi frame', Pervect's concept seems ill defined (to me).

I would say the traditional frame has been that of a static observer. So traditional gravity is the value of the Christoffel symbols in the frame of a static observer. (Possibly, a stationary observer is sufficient.)

This leaves you in a pickle when you don't have a static (or perhaps stationary) metric, however.
 
  • #16
Next up on the sanity check list. If forces really are Christoffel symbols, and transform as such, why do 4-accelerations transform as tensors, when Christoffel symbols do not transform like tensors?

I have yet to demonstrate explicitly that Christoffel symbols do, in fact, transform as tensors under Lorentz Boosts, but it seems like the right answer.

This leaves me, at least, with the idea that 4-accelerations transform as tensors under a properly restricted set of transformation laws (i.e. Lorentz boosts), but not under general non-linear transformations, like x' = x + at^2, for instance - or the relativistic equivalent x' = cosh(a tau), t' = sinh(a tau).
 
  • #17
pervect said:
Next up on the sanity check list. If forces really are Christoffel symbols, and transform as such, why do 4-accelerations transform as tensors, when Christoffel symbols do not transform like tensors?

Well, by this definition of "forces", forces don't correspond to 4-accelerations, so you can't expect their transformation properties to be the same. They are simply different things on this view.
 
  • #18
pervect said:
I would say the traditional frame has been that of a static observer. So traditional gravity is the value of the Christoffel symbols in the frame of a static observer. (Possibly, a stationary observer is sufficient.)

This leaves you in a pickle when you don't have a static (or perhaps stationary) metric, however.

Hmm...let's explore a few cases.

Inside a black hole's event horizon, there are no static or stationary observers, so we can't define gravitational force. I suppose this might be OK.

An FRW cosmological model isn't static or stationary, so we can't define the gravitational force. This seems wrong to me. Any sensible definition of gravitational force should give zero by isotropy.

In the field of a rotating body, we have effects like frame-dragging, so the spacetime is stationary but not static. It seems like you'd want to be able to define the gravitational force on a person standing on the rotating Earth's surface, so we can't demand staticity.

But if we can't demand staticity, then it seems like we have too much ambiguity. We can have observer A who is orbiting the moon in a ground-skimming orbit, and observer B who is sitting on the surface of the moon. A says g=0, B says 1.6 m/s2. Who is right?

The only option I see is to embrace the equivalence principle and stop trying to define gravitational forces except as properties of arbitrarily chosen coordinate systems or frames of reference, which makes gravitational forces uninteresting to talk about.
 
  • #19
bcrowell said:
In the field of a rotating body, we have effects like frame-dragging, so the spacetime is stationary but not static. It seems like you'd want to be able to define the gravitational force on a person standing on the rotating Earth's surface, so we can't demand staticity.

I think you could still make a "gravitational force" scheme work for a stationary but not static spacetime; the stationary spacetime still has a timelike Killing vector field, so there is still a notion of "static observers". It's just that the "gravitational force" those observers see now has an extra component; it's not directly radial any more. I would have to do the computation to see how that works out in terms of Christoffel symbols, though.

bcrowell said:
An FRW cosmological model isn't static or stationary, so we can't define the gravitational force. This seems wrong to me. Any sensible definition of gravitational force should give zero by isotropy.

I'm not sure isotropy implies that the "force" has to be zero; I think it only implies that the "force" has to be the same in all spatial directions. The problem I see is that the observed "gravitational force" is obviously *not* zero, although it is the same in all directions. But all of the [itex]\Gamma^{i}_{00}[/itex] Christoffel symbols *are* zero, identically, because the metric is independent of all the spatial coordinates.

So whatever scheme we come up with to represent "gravitational force" mathematically in this spacetime, it will have to be different than the one that works for static (and possibly stationary, if I'm right in what I said above) spacetimes. And in other spacetimes with different properties, we may need another scheme still, if there's any that works at all.
 
  • #20
PeterDonis said:
I'm not sure isotropy implies that the "force" has to be zero; I think it only implies that the "force" has to be the same in all spatial directions. The problem I see is that the observed "gravitational force" is obviously *not* zero, although it is the same in all directions. But all of the [itex]\Gamma^{i}_{00}[/itex] Christoffel symbols *are* zero, identically, because the metric is independent of all the spatial coordinates.

So whatever scheme we come up with to represent "gravitational force" mathematically in this spacetime, it will have to be different than the one that works for static (and possibly stationary, if I'm right in what I said above) spacetimes. And in other spacetimes with different properties, we may need another scheme still, if there's any that works at all.

Isn't the proper acceleration of comoving observers in the lambda-CDM model also zero? If so, why not consider the 'gravitational force' cosmically zero, varying only by matter lumpiness? In effect, the comoving coordinates represent the stationary background, and places where lumpiness causes Christoffel symbols to deviate from zero represent the inertial force we choose to call gravity?
 
  • #21
PAllen said:
Isn't the proper acceleration of comoving observers in the lambda-CDM model also zero?

Yes.

PAllen said:
If so, why not consider the 'gravitational force' cosmically zero, varying only by matter lumpiness?

Because the comoving observers see each other as accelerating (in the coordinate sense)--accelerating away from each other if dark energy dominates (as it does now in our universe), or accelerating towards each other if ordinary matter dominates (as it did until a few billion years ago in our universe). So by the notion of "gravitational force" that I understand the OP to be proposing (which is basically the Newtonian notion of "force" corresponding to coordinate acceleration), there must be such a force present even in the case of perfect isotropy and homogeneity.
 
  • #22
PeterDonis said:
Because the comoving observers see each other as accelerating (in the coordinate sense)--accelerating away from each other if dark energy dominates (as it does now in our universe), or accelerating towards each other if ordinary matter dominates (as it did until a few billion years ago in our universe). So by the notion of "gravitational force" that I understand the OP to be proposing (which is basically the Newtonian notion of "force" corresponding to coordinate acceleration), there must be such a force present even in the case of perfect isotropy and homogeneity.

I see. Then this is a really strong case for how only in limited cases can you make Newtonian analogies in GR. You have acceleration by so basic an observation as increasing red shift with time, yet both the relevant Christoffel symbols (the ones associated with acceleration) and proper acceleration are zero. You have observable acceleration without force (on either observer or observed). How non-Newtonian can you get! [edit: But wait: can we not say this effect is in the same family as the tidal forces we ignore in any argument like the OP?].

Despite this, there is a close relation between Christoffel symbols expressed in Fermi-normal coordinates built on a world line, and proper acceleration of the world line. This equivalence extends out for some distance, describing e.g. the inertial forces inside an arbitrarily moving lab of 'some size'. In that limited sense, I can still see validity of the OP.
 
  • #23
PAllen said:
[edit: But wait: can we not say this effect is in the same family as the tidal forces we ignore in any argument like the OP?]

Hmm. It's true that this acceleration is due to spacetime curvature, though it's a different sort of manifestation of curvature than ordinary tidal forces (the latter are due to Weyl curvature, but the former is due to Ricci curvature--the Weyl curvature is zero everywhere, at least in the idealized case of exact isotropy and homogeneity). Whereas the kind of acceleration directly mentioned in the OP can be present even in flat spacetime (as it is in the example given in the OP).

So if we adopt the view that we're ignoring curvature by restricting attention to a sufficiently small patch of spacetime, we could say, as you propose, that the "gravitational force" seen by a comoving observer is just zero because the relevant Christoffel symbols are zero. But that still doesn't seem very intuitively appealing to me. I'll have to think about this some more.
 
  • #24
Mentz114 said:
This seems sensible conclusion from that metric ( which is not a solution of the EFE).

It's a non-vacuum solution as written, with g_00 = 1+2gz. I threw it into GRTensor - it's got rho=0, but some funky negative pressures.

The familiar g_00 = (1+gz)^2 = 1 + 2gz + g^2z^2 is the vacuum solution for an accelerated observer.

The Christoffel symbols for the two have the same values *at the origin*, i.e.

[itex]\Gamma_{ztt} = g[/itex] for the first line element, while [itex]\Gamma_{ztt}=g*(1+gz)[/itex] for the second. So they're only the same at z=0.

So the extra nonlinear term g^2*z^2 is important for the curvature (making the second one a flat vacuum solution of an accelerating observer), and it has some effect on the Christoffel symbols not at the origin, but I don't see that it affects the argument that the connection coefficients where you are completely determine the gravity you feel.

It does suggest that I emphasize the point that you compute the Christoffel symbols at the origin more carefully, though.
 
  • #25
pervect said:
It's a non-vacuum solution as written, with g_00 = 1+2gz. I threw it into GRTensor - it's got rho=0, but some funky negative pressures.

The familiar g_00 = (1+gz)^2 = 1 + 2gz + g^2z^2 is the vacuum solution for an accelerated observer.

The Christoffel symbols for the two have the same values *at the origin*, i.e.

[itex]\Gamma_{ztt} = g[/itex] for the first line element, while [itex]\Gamma_{ztt}=g*(1+gz)[/itex] for the second. So they're only the same at z=0.

So the extra nonlinear term g^2*z^2 is important for the curvature (making the second one a flat vacuum solution of an accelerating observer), and it has some effect on the Christoffel symbols not at the origin, but I don't see that it affects the argument that the connection coefficients where you are completely determine the gravity you feel.

It does suggest that I emphasize the point that you compute the Christoffel symbols at the origin more carefully, though.
I was agreeing with you about the Christoffels, but having zero energy density and non-zero pressures breaks the energy condition.

It's possible to generalize this somewhat. We have
[tex]
{\Gamma^\mu}_{00}=(1/2)g^{\mu k}\left( g_{0k,0} + g_{k0,0} - g_{00,k} \right)
[/tex]
if the metric has no explicit time dependence this is
[tex]
{\Gamma^\mu}_{00}=-(1/2)g^{\mu k}g_{00,k}
[/tex]
and if the metric is diagonal
[tex]
{\Gamma^\mu}_{00}=-(1/2)g^{\mu \mu}g_{00,\mu}
[/tex]
with no summation, so [itex]{\Gamma^x}_{00}=-(1/2)g^{x x}g_{00,x}[/itex] etc.

This has the form of a force if g00 is a potential.
 
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  • #26
PeterDonis said:
Thinking it over some more, I'm not sure this makes sense globally. The Christoffel symbol is indeed as given here, but it only corresponds to the observed "acceleration due to gravity" along one particular observer's worldline--the observer whose proper time is equal to the coordinate time [itex]t[/itex] in this chart. Other observers at rest in this chart (the other Rindler observers) have different proper accelerations and so will observe a different "acceleration due to gravity", but the Christoffel symbols in the global chart will be the same.
This is correct. The reason is because it is not directly the Christoffel symbol which is equal to the fictitious force. If you look at the equation for the four-acceleration you see:
[tex]A^{\mu}=\frac{dU^\mu}{d\tau}+
{\Gamma^{\mu}}_{\lambda \nu} U^{\lambda} U^{\nu}[/tex]
Where U is the four-velocity (unit tangent vector) as a function of the proper time, τ. I haven't worked it for Rindler yet, but when you contract with [itex]U^{\lambda} U^{\nu}[/itex] you should get the correct expression.

In general, when you expand the Christoffel symbol terms, you can consider any of those to be fictitious forces (divided by mass). You could also consider them to be coordinate accelerations. There is no general way to distinguish the two other than what side of Newton's second law equation you write them on, it is simply a matter of preference and whim.
 
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  • #27
PeterDonis said:
Yes, it is. It's just the Minkowski metric in a different coordinate chart (the Rindler chart), at least if I'm remembering that portion of MTW correctly (I don't have it handy right now to check).
Have you checked this ? I still assert it has a non-zero Einstein tensor. Are we talking about the same metric ?

[tex]ds^2={dt}^{2}\,\left( -2\,g\,x-1\right) +{dz}^{2}+{dy}^{2}+{dx}^{2}[/tex]
 
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  • #28
Mentz114 said:
Have you checked this ? I still assert it has a non-zero Einstein tensor. Are we talking about the same metric ?

[tex]{dt}^{2}\,\left( -2\,g\,x-1\right) +{dz}^{2}+{dy}^{2}+{dx}^{2}[/tex]
I think that the Rindler metric is [itex]ds^2=-g^2 x^2 dt^2+dx^2+dy^2+dz^2[/itex]
 
  • #29
DaleSpam said:
I think that the Rindler metric is [itex]ds^2=-g^2 x^2 dt^2+dx^2+dy^2+dz^2[/itex]
Sure, that's flat but [itex]\Gamma^x_{tt}={g}^{2}\,x[/itex] which is not what is required. The metric in my earlier post is not a flat spacetime.
Rereading the posts maybe the important point is that it is flat at x=0 which is obvious from the metric.
More to the point is my #25.
 
  • #30
Mentz114 said:
Sure, that's flat but [itex]\Gamma^x_{tt}={g}^{2}\,x[/itex] which is not what is required. The metric in my earlier post is not a flat spacetime.
Rereading the posts maybe the important point is that it is flat at x=0 which is obvious from the metric.
More to the point is my #25.

That's interesting (and obviously correct - I double checked the computation because it is surprising to me). That says that Rindler coordinates do not constitute Fermi-Normal coordinates of an accelerated observer in flat spacetime - contrary to some commonly seen claims that this is the case.

As to Mentz's points from #25, the answer is that the metric in the OP is approximate, even for flat space time. It leaves out higher order corrections. The exact, flat spacetime, Fermi-Normal metric of a uniformly accelerating observer is given on page 173 of MTW. The g00 term is:

-(1+g x )^2

and you get -(1+2g x) only by dropping the second order term. In general spacetimes, this is all subsumed in the error term of the metric that was left out of the OP.

I believe (but have not checked the computation) that the issues raised in #25 go away if the exact metric is used.
 
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  • #31
Mentz114 said:
Sure, that's flat but [itex]\Gamma^x_{tt}={g}^{2}\,x[/itex] which is not what is required.
But for a stationary worldline in Rindler coordinates
[tex]{\Gamma^{x}}_{\lambda \nu} U^{\lambda} U^{\nu} = \frac{1}{x}[/tex]
which is what is required.
 
  • #32
Mentz114 said:
Have you checked this ? I still assert it has a non-zero Einstein tensor. Are we talking about the same metric ?

[tex]ds^2={dt}^{2}\,\left( -2\,g\,x-1\right) +{dz}^{2}+{dy}^{2}+{dx}^{2}[/tex]

I did check, and it did have a nonzero stress-energy tensor,

There are alternate formulations of the Rindler metric, but the one I usually use is

[tex]ds^2={dt}^{2}\,\left(-g^2\,x^2 -2\,g\,x-1\right) +{dz}^{2}+{dy}^{2}+{dx}^{2}[/tex]
 
  • #33
DaleSpam said:
This is correct. The reason is because it is not directly the Christoffel symbol which is equal to the fictitious force. If you look at the equation for the four-acceleration you see:
[tex]A^{\mu}=\frac{dU^\mu}{d\tau}+
{\Gamma^{\mu}}_{\lambda \nu} U^{\lambda} U^{\nu}[/tex]
Where U is the four-velocity (unit tangent vector) as a function of the proper time, τ. I haven't worked it for Rindler yet, but when you contract with [itex]U^{\lambda} U^{\nu}[/itex] you should get the correct expression.

In general, when you expand the Christoffel symbol terms, you can consider any of those to be fictitious forces (divided by mass). You could also consider them to be coordinate accelerations. There is no general way to distinguish the two other than what side of Newton's second law equation you write them on, it is simply a matter of preference and whim.

I think this hit the nail on the head. Thanks - it serves as a much better definition of four acceleration.

On a somewhat related note, if we consider [itex]\nabla_a u^b[/itex], we know that multiplying by u^a gives us the 4-acceleration, which is what motivates the above result. What would we need to do to get the information about the rate of rotation an observer moving along the worldline would experience? I'm guessing that it's also buried in this expression.
 
  • #34
pervect said:
. What would we need to do to get the information about the rate of rotation an observer moving along the worldline would experience? I'm guessing that it's also buried in this expression.
I don't know. I would guess that you would need to parallel transport the rank three angular momentum tensor along the worldline. If you expand it in terms of the Christoffel symbols then you could interpret those terms as being due to the fictitious gravitational forces in the particular coordinate system.
 
  • #35
pervect said:
I think this hit the nail on the head. Thanks - it serves as a much better definition of four acceleration.

On a somewhat related note, if we consider [itex]\nabla_a u^b[/itex], we know that multiplying by u^a gives us the 4-acceleration, which is what motivates the above result. What would we need to do to get the information about the rate of rotation an observer moving along the worldline would experience? I'm guessing that it's also buried in this expression.
You are right, the rotation is given by the rank-2 antisymmetric tensor
[tex]
\omega_{ab}= \nabla_{[a}u_{b]}+\dot{u}_{[a}u_{b]}
[/tex]
where [itex]\dot{u}_{a} = \nabla_b u_a u^b[/itex]. The axis of rotation and the angular velocity can be found from the vorticity vector [itex](1/2)\epsilon^{abmi}u_b\omega_{mi}[/itex].
 
Last edited:

What is the concept of gravitational forces represented by Christoffel symbols?

The concept of gravitational forces represented by Christoffel symbols is a mathematical framework used in the theory of general relativity to describe the effects of gravity on the curvature of spacetime. It is based on the idea that gravity is not a force between masses, but rather a curvature of spacetime caused by the presence of mass and energy.

How are Christoffel symbols related to the curvature of spacetime?

Christoffel symbols are related to the curvature of spacetime through the Einstein field equations, which describe the relationship between the curvature of spacetime and the distribution of matter and energy. The Christoffel symbols are used to calculate the curvature tensor, which is a measure of the curvature of spacetime at a given point.

What is the significance of the Christoffel symbols in general relativity?

The Christoffel symbols are significant in general relativity because they allow us to describe the effects of gravity on the curvature of spacetime. They are an essential tool in understanding the behavior of massive objects in the universe, such as planets, stars, and galaxies.

How are Christoffel symbols calculated?

Christoffel symbols are calculated using the metric tensor, which describes the relationship between space and time in a given coordinate system. The Christoffel symbols are derived from the metric tensor and are used to calculate the curvature tensor and other important quantities in general relativity.

What are some applications of Christoffel symbols?

Christoffel symbols have many applications in physics, including in the study of black holes, gravitational waves, and the expansion of the universe. They are also used in the development of new theories of gravity and in the analysis of cosmological data. Additionally, they have practical applications in fields such as geodesy and navigation.

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