DaleSpam said:Those metrics are incomplete, please provide the remaining terms.
kev said:I think Starthaus is talking about the derivation in his blog attachment titled "acceleration in rotating frames". It is incomplete, but I completed it for him in https://www.physicsforums.com/showpost.php?p=2693087&postcount=100"and he said my final solution is correct.
I am not 100% sure it is.
The post you linked to has only Gron's metric which you are not using and the "standard" metric which is incomplete.starthaus said:Here.
You DON'T NEED the remaining terms.
DaleSpam said:The post you linked to has only Gron's metric which you are not using and the "standard" metric which is incomplete.
I find your evasiveness very disturbing. It is not as though it is unreasonable to ask for the metric.
If you are using the Gron metric then your result is wrong. The \omega he uses is \omega=d\theta/dt (see eq 5.2). The only way your result can be right is if you are using a different metric where \omega=d\theta/d\tau.starthaus said:Of course I am using the Gron metric.
DaleSpam said:Thanks for posting the "standard" metric.
I am using the metric present in the Gron book, also present in the Rindler book.You need to look at Rindler, chapter 11.If you are using the Gron metric then your result is wrong. The \omega he uses is \omega=d\theta/dt (see eq 5.2). The only way your result can be right is if you are using a different metric where \omega=d\theta/d\tau.
OK, your results using the strong field approximation are correct and agree with the covariant derivative approach.starthaus said:If you use the strong field approximation:
ds^2=e^{2\Phi/c^2} dt^2-...
you get :
\Phi/c^2=\frac{1}{2}ln(1-\frac{r^2\omega^2}{c^2})
\vec{F}=-grad(\Phi)=\frac{r\omega^2}{1-r^2\omega^2}
Now:
\omega=\frac{d\theta}{dt}=\frac{d\theta}{d\tau}\frac{d\tau}{dt}=\omega_{proper}\sqrt{1-r^2\omega^2}
So:
\vec{F}=r\omega_{proper}^2
Same exact result as in chapter 92, expression (97) page 247 in Moller ("The General Theory of Relativity")
DaleSpam said:OK, your results using the strong field approximation are correct and agree with the covariant derivative approach.
Is this the correct full expression for the strong-field approximation metric:
-ds^2=\left(e^{\frac{2\Phi}{c^2 }}\right)^{-1}dr^2+r^2(d \theta^2 +\sin^2 \theta d \phi^2)-c^2 \left(e^{\frac{2\Phi}{c^2}}\right)dt^2
starthaus said:The result is incorrect, a correct application of covariant derivatives (as shown here) gives the result a_0=r\omega^2.
starthaus said:...
Now:
\omega=\frac{d\theta}{dt}=\frac{d\theta}{d\tau}\frac{d\tau}{dt}=\omega_{proper}\sqrt{1-r^2\omega^2}
So:
\vec{F}=r\omega_{proper}^2
kev said:OK, you have effectively defined proper centripetal acceleration as:
a_0=r\omega_{proper}^2
using your definition:
\omega=\frac{d\theta}{dt}=\omega_{proper}\sqrt{1-r^2\omega^2}
This means in your coordinates, the coordinate acceleration is:
a=r\omega_{proper}^2(1-r^2\omega^2) = r\omega^2 = a_0 \gamma^{-2}
and the fundamental relationship
a_0 = a\gamma^2
between proper and coordinate centripetal acceleration, given by myself in #1 and later by Dalespam and others is correct.
starthaus said:The difference is that you did not derive anything (unless we factor in the stuff that I guided you to derive from the rotating frames transforms). Putting in results by hand doesn't count as "derivation".
Besides, post #3 shows that the naive transformation of force you attempted is wrong.
kev said:The transformation of force that you object to in #3 is the perfectly standard Lorentz transformation of force and unless you are claiming the Lorentz transformations are wrong, there is no need for me to derive them.
So all I did was apply the Lorentz transformation (which does not need deriving because it is an accepted standard result) and the clock postulate (which does not need deriving because it is a postulate supported by experimental evidence).
Your main objection seems to be that, even though I get the correct result, the method I used is not complicated enough.
starthaus said:What has been explained to you is that the respective transformation is derived from the Lorentz transforms for translation. As such, it does NOT apply to rotation. Physics is not the process of mindless application of formulas cobbled from the internet.
I did not. If I had I would have got the wrong result, but I did not. Everyone but you in this thread says the results I got in #1 are correct. All you have done is changed the definitions to make your results look different. This is like saying the speed of light is 299792.458 km/s and not 299792458 m/s, when in fact both answers are correct but are using different units. You fail to understand that our results are in agreement and they only differ in that my results are obtained much quicker and more directly.starthaus said:You applied the inappropriate Lorentz transform. I do not expect you to understand that.
kev said:I showed you how the clock hypothesis means that the Lorentz transforms for translation can be applied to rotation.
LOL. You "forgot" the files that I wrote about accelerated motion in SR. You "forgot" the relativistic transforms for rotation that I tried to teach you.You basically have the same misconception as many beginners to relativity, that think Special Relativity can not be applied to cases involving acceleration.
kev said:there is something wrong with rhs of your two equations:
if
\frac{d}{dt}( m_0 v)=q v x b
is true, then by the properties of simultaneous equations, it must follow that:
\frac{d}{dt}(\gamma m_0 v)= (q v x b) \gamma