Synchronized clocks with respect to rest frame

In summary, the conversation discusses the synchronization of clocks in different reference frames. When the train is at rest, the clocks at both ends of the train are synchronized for both the observer on the train (O) and the observer on the platform (R). However, when the train starts moving, the clocks are no longer synchronized for O, but they are for R. This is due to the standard synchronization convention. If O brings all the clocks together, they will not be synchronized and one clock will be ahead of the other. The same applies when the clocks are synchronized in the moving train frame - they will not be synchronized for R, but they will be for O. If O brings them all together, they will not be synchronized and one
  • #71
First let's take another situation, let's just say that the two clocks on the train are in sync in the train's frame of reference. Let's say that the train is moving at .5c in the stations frame of reference. Do you understand why the clocks won't by in sync in the stations frame of reference, if they are in sync in the trains?
 
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  • #72
DaleSpam said:
mananvpanchal said:
I am sorry, but we would get [itex]\tau_d=t'+0.75d[/itex] for primed frame, not [itex]\tau_d=t+0.75d[/itex].
Now, we have two unknown variables [itex]t'[/itex] and [itex]\tau_d[/itex].
Oops, you are correct. I will fix it above.

Ok, so please clarify the confusion. I still don't get what should be the value of [itex]\tau_d[/itex]
 
  • #73
As much as i see this, we have here four dominant terms: time dilation, length contraction, light speed and rest frame.

my question is this:
Lets assume that we all think and believe that the clock aboard the train returns with time dilation on it, also as a result of constant speed (put aside time dilation as a result of acceleration). There is some sort of effect on the clock, while moving at constant speed, and acceleration has nothing to do with it at all, that can't be denied.

Now, say this guy has some sort of machine that has clocks and light detectors and works in a certain way, that is not effected by length contraction. This machine was calibrated to work in a certain way, before the train was moving. We know and agree that light does not change its speed. We agree that time dilation exists at constant speed. Yet, after the train is moving, that machine is still working as it did, it stays calibrated, after it was calibrated while at bay!

Let us see what we have: a calibrated machine, regardless if the train is moving or not moving at constant speed. Light speed is the same regardless if train is moving or not. Length contraction does not effect that machine.

We are left with only time dilation effecting that machine while at constant speed. and with the word : rest frame.

If time dilation is effecting that machine, and yet it stays calibrated, there must be somthing counter effecting it to stay calibrated. What is this thing called?

How can a choice of a rest frame have this effect? my rest frame is always on the train station and all through this experiment i never bother to exchange any signals with the train. Only when it returns do i ask these question. What does a rest frame have to do with it?

Or should we return to acceleration as a source for all this?
 
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  • #74
mananvpanchal said:
Ok, so please clarify the confusion. I still don't get what should be the value of [itex]\tau_d[/itex]
[itex]\tau_d[/itex] is the reading on the clock. The clock doesn't just show one number, it shows a different number at each point in time. The formula relates the coordinate time to the time reading on the clock.
 
  • #75
Hello DaleSpam,

First you had came up with this equation
DaleSpam said:
[tex]r'_d=\left(
t'=\begin{cases}
1.25 \tau - 0.75 d & \mbox{if } \tau \lt 0 \\
\tau - 0.75 d & \mbox{if } \tau \ge 0
\end{cases},
x'=\begin{cases}
1.25 d - 0.75 \tau & \mbox{if } \tau \lt 0 \\
1.25 d & \mbox{if } \tau \ge 0
\end{cases}
,0,0\right)[/tex]

Then, I had created the doubt
mananvpanchal said:
We can see that [itex]t'=\tau - 0.75 d, \mbox{if } \tau \ge 0[/itex]. And we know that d=-1 for A, d=0 for O and d=1 for B then, we can get this

[itex]t'_a=\tau + 0.75,[/itex]
[itex]t'_o=\tau, [/itex]
[itex]t'_b=\tau - 0.75[/itex]

But suppose, train is going to opposite direction, then the equation cannot distinguish both [itex]t'[/itex]

And you had solved this by
DaleSpam said:
v = -0.6 c
So, I had to get [itex]t'_a[/itex], [itex]t'_o[/itex], [itex]t'_b[/itex] using [itex]\tau[/itex] and [itex]d[/itex].

After this I had created another doubt
mananvpanchal said:
Yes, you are right. We will get the answer as you said.

There is another doubt!

This may be the case again of generalization.

[itex]t'=\tau - 0.75 d, \mbox{if } \tau \ge 0[/itex]

As [itex]\tau[/itex] increases, desynchronization between two clocks decreases.

And you had came up with the idea of [itex]\tau_a[/itex], [itex]\tau_o[/itex], [itex]\tau_b[/itex]
DaleSpam said:
This is an incorrect reading of the expression. The desynchronization between two clocks remains constant as the [itex]\tau_d[/itex] increase (for [itex]\tau_d>0[/itex]).

For example, consider the clocks [itex]d=0[/itex] and [itex]d=1[/itex]. At t'=100 we have [itex]\tau_0=100[/itex] and [itex]\tau_1=100.75[/itex] so the desynchronization is [itex]\tau_1 - \tau_0=0.75[/itex]. At t'=200 we have [itex]\tau_0=200[/itex] and [itex]\tau_1=200.75[/itex] so the desynchronization is [itex]\tau_1 - \tau_0=0.75[/itex].

So, I had to get [itex]t'_a[/itex], [itex]t'_o[/itex], [itex]t'_b[/itex] using [itex]\tau[/itex] and [itex]d[/itex]. But you had came up with [itex]\tau_a[/itex], [itex]\tau_o[/itex], [itex]\tau_b[/itex].

When, I had asked you
mananvpanchal said:
As we got [itex]\tau = 0.8t[/itex].

Can you please explain me how can I get [itex]\tau_a[/itex] and [itex]\tau_b[/itex]?

You had came up with the idea
DaleSpam said:
So for [itex]\tau_d \ge 0[/itex] we get [itex]\tau_d=0.8t[/itex] in the unprimed frame and we get [itex]\tau_d=t'+0.75d[/itex] in the primed frame.

Then, I had told you
mananvpanchal said:
Now, we have two unknown variables [itex]t'[/itex] and [itex]\tau_d[/itex].

So, now the problem is we have to derive

[itex]t'_a=\tau + 0.75,[/itex]
[itex]t'_o=\tau, [/itex]
[itex]t'_b=\tau - 0.75[/itex] using [itex]\tau[/itex], and [itex]d[/itex].

We know here [itex]d_a=-1[/itex], [itex]d_o=0[/itex], [itex]d_b=1[/itex] and [itex]\tau = 0.6t[/itex].

But, To solve "decreasing desync as [itex]\tau[/itex] increases" problem you came up with the idea of [itex]\tau_a[/itex], [itex]\tau_o[/itex], [itex]\tau_b[/itex].

Now, we have the equations.

[itex]t'_a=\tau_a - 0.75 d_a,[/itex]
[itex]t'_o=\tau_o - 0.75 d_o, [/itex]
[itex]t'_b=\tau_b - 0.75 d_b[/itex].

And as I said before we have now two unknown variables per eqaution ([itex]t'_a[/itex], [itex]\tau_a[/itex]), ([itex]t'_o[/itex], [itex]\tau_o[/itex]) and ([itex]t'_b[/itex], [itex]\tau_b[/itex]).

So, the question is how can we get values of [itex]t'_a[/itex], [itex]\tau_a[/itex], [itex]t'_o[/itex], [itex]\tau_o[/itex], [itex]t'_b[/itex] and [itex]\tau_b[/itex] using known variables [itex]t[/itex], [itex]d_a[/itex], [itex]d_o[/itex] and [itex]d_b[/itex]?
 
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  • #76
Here is another question:

When the train returns, we can see that somthing happened, e.g. we have time dilation on the clock, and we agree that at least part of that time dilation was produced by constant speed (CS). There is true evidence that somthing happened there.

Now regarding the clocks that are not synchronized, although they are both on the same train (but apart from each other): is there an experiment that can be done, which will show us this difference of de-synchroniztion between them, after the clocks will return to the station, and not by sending signals when the train is on the move? if not, how come one clock can bring back evidence to the station of a phenomenon (CS time dilation on a single clock), while another phenomenon, the de-synchronization of two clocks, is not somthing that can be brought back as evidence? or is such an experiment plausible after all for two clocks? or is this de-synchronization, a result of accelerating and de-accelerating and not of constant speed?
 
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  • #77
mananvpanchal said:
Now, we have the equations.

[itex]t'_a=\tau_a - 0.75 d_a,[/itex]
[itex]t'_o=\tau_o - 0.75 d_o, [/itex]
[itex]t'_b=\tau_b - 0.75 d_b[/itex].

And as I said before we have now two unknown variables per eqaution ([itex]t'_a[/itex], [itex]\tau_a[/itex]), ([itex]t'_o[/itex], [itex]\tau_o[/itex]) and ([itex]t'_b[/itex], [itex]\tau_b[/itex]).

So, the question is how can we get values of [itex]t'_a[/itex], [itex]\tau_a[/itex], [itex]t'_o[/itex], [itex]\tau_o[/itex], [itex]t'_b[/itex] and [itex]\tau_b[/itex] using known variables [itex]t[/itex], [itex]d_a[/itex], [itex]d_o[/itex] and [itex]d_b[/itex]?
I never put in any subscripts for t and t'. You pick a value for t or t' and solve for the various [itex]\tau_d[/itex].
 
  • #78
DaleSpam said:
I never put in any subscripts for t and t'. You pick a value for t or t' and solve for the various [itex]\tau_d[/itex].

Ok, here are you telling this?

[itex]t'=\tau_a - 0.75 d_a[/itex]
[itex]t'=\tau_o - 0.75 d_o[/itex]
[itex]t'=\tau_b - 0.75 d_b[/itex]
Now, please look at this
DaleSpam said:
Certainly, it follows directly from the Lorentz transform. Let's analyze the scenario from the OP where at t=0 in the original frame A, B, and M all accelerate instantaneously up to v = .6c and furthermore let's use units where c=1 and where the distance from M to A and from M to B is 1 in the original frame.

So, in R's frame the worldline of A, O, and B are:
[tex]r_d=\left(t,x=\begin{cases}
d & \mbox{if } t \lt 0 \\
0.6 t+d & \mbox{if } t \ge 0
\end{cases}
,0,0\right)[/tex]
where d=-1 for A, d=0 for O, and d=1 for B.

Here, you simply defined time [itex]t[/itex] in R's clock. So, you can define distance of train clocks from R with [itex]x=0.6t + d[/itex].
DaleSpam said:
As per the OP, the clocks are initially synchronized in R's frame such that at t=0 they all read 0. So, we can calculate the time displayed on each clock, τ, using the spacetime interval. Solving for t we get:
[tex]t=\begin{cases}
\tau & \mbox{if } \tau \lt 0 \\
1.25 \tau & \mbox{if } \tau \ge 0
\end{cases}[/tex]

Here, you took [itex]\gamma = 1.25[/itex], and you define [itex]t = 1.25 \tau[/itex]. Here [itex]\tau[/itex] is train clocks' reading for R. If we want synchronized clocks in R's frame, there must be a single value for [itex]\tau[/itex]. We can easily see that there is same value of all three train's clocks' readings [itex]\tau[/itex] exist for R. So we can say that train' clocks remain synchronized in R's frame. And you proved this by
DaleSpam said:
Substituting into the above we get:
[tex]r_d=\left(
t=\begin{cases}
\tau & \mbox{if } \tau \lt 0 \\
1.25 \tau & \mbox{if } \tau \ge 0
\end{cases},
x=\begin{cases}
d & \mbox{if } \tau \lt 0 \\
0.75 \tau+d & \mbox{if } \tau \ge 0
\end{cases}
,0,0\right)[/tex]

Noting that τ does not depend on d in this frame we see immediately that the clocks remain synchronized in R's frame.

Clocks is only synchronized in R's frame only when there is only one value of [itex]\tau[/itex] exist. If we get different value of each clock reading for R then we cannot say that clocks is synchronized in R's frame.

But, you said that there are three value [itex]\tau_a[/itex], [itex]\tau_o[/itex] and [itex]\tau_b[/itex] exist. So, train clocks cannot be remain synchronized for R.
 
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  • #79
Please, look at this too
DaleSpam said:
mananvpanchal said:
[itex]t'=\tau - 0.75 d, \mbox{if } \tau \ge 0[/itex]

As [itex]\tau[/itex] increases, desynchronization between two clocks decreases.
This is an incorrect reading of the expression. The desynchronization between two clocks remains constant as the [itex]\tau_d[/itex] increase (for [itex]\tau_d>0[/itex]).

For example, consider the clocks [itex]d=0[/itex] and [itex]d=1[/itex]. At t'=100 we have [itex]\tau_0=100[/itex] and [itex]\tau_1=100.75[/itex] so the desynchronization is [itex]\tau_1 - \tau_0=0.75[/itex]. At t'=200 we have [itex]\tau_0=200[/itex] and [itex]\tau_1=200.75[/itex] so the desynchronization is [itex]\tau_1 - \tau_0=0.75[/itex].

Here, I am talking about [itex]t'[/itex]. I have take here [itex]t'_a=\tau - 0.75 d_a[/itex], [itex]t'_o=\tau - 0.75 d_o[/itex] and [itex]t'_b=\tau - 0.75 d_b[/itex]. So as [itex]\tau[/itex] increase deference between [itex]t'_a[/itex], [itex]t'_o[/itex] and [itex]t'_b[/itex] decreases. And that is why I have used subscript with [itex]t'[/itex].

[itex]t[/itex] is R's clock's reading for R.

[itex]\tau[/itex] is train's clocks (A, O, B)'s reading for R (The reading is same, so train's clocks is synchronized for R) ([itex]\tau[/itex] is not train's clocks reading for O, so it cannot have different values as per [itex]d[/itex]).

And [itex]t'[/itex] is trains clock's reading for O (We have boosted here the train clocks reading for R ([itex]\tau[/itex]) to train's clocks reading for O ([itex]t'[/itex])) (Train's clocks is not synchronized for O, so [itex]t'[/itex] should have different values as per [itex]d[/itex]). So actually subscript should be used with [itex]t'[/itex] not with [itex]\tau[/itex].
 
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  • #80
OK, there are so many things incorrect with your previous two posts that I think it will be better to explain the general approach rather than respond point-by-point. If you still have specific questions afterwards then I will be glad to respond point-by-point.

First, when you are doing spacetime diagrams what you are doing is mapping the position of an object as a function of time to the shape of a geometric object. This increases the dimensionality of an object, i.e. a 0D point particle is represented by a 1D worldline (for this analysis we are ignoring the size of the clocks so they are represented by worldlines).

Second, you can always write a 1D worldline in parametric form with a single parameter. So, you can always write it in the form [itex](t(\lambda),x(\lambda),y(\lambda),z(\lambda))[/itex] where [itex]\lambda[/itex] is the parameter.
http://en.wikipedia.org/wiki/Parametric_equation

Third, the parameterization is not unique. So if you have any continuous and invertible function [itex]\lambda(\zeta)[/itex] then [itex](t(\zeta),x(\zeta),y(\zeta),z(\zeta))[/itex] is also a valid parameterization of the same worldline.

Fourth, the parameter need not have any significance, but it can. For example, one common parameterization is to use the time in a given reference frame, t, another common parameterization is to use the proper time displayed on the clock, τ. The latter parameterization is particularly common since it is frame-invariant and physically measurable.

Fifth, if you have multiple worldlines then each worldline will have its own parameterization and thus its own parameter.

Sixth, for each reference frame there are a series of surfaces of constant coordinate time called hyperplanes of simultaneity, or just planes of simultaneity. There is one such plane for each value of coordinate time.

Seventh, two clocks are considered to be synchronized in a specified reference frame at a given coordinate time iff their displayed proper time is the same at their respective intersections with the plane of simultaneity.

Do you understand these concepts? Do you need further explanation of any? I will try to post the application of these principles to this specific problem later today.
 
  • #81
Please, look at this
DaleSpam said:
As per the OP, the clocks are initially synchronized in R's frame such that at t=0 they all read 0. So, we can calculate the time displayed on each clock, τ, using the spacetime interval. Solving for t we get:
[tex]t=\begin{cases}
\tau & \mbox{if } \tau \lt 0 \\
1.25 \tau & \mbox{if } \tau \ge 0
\end{cases}[/tex]

You have defined here [itex]\tau[/itex] is time reading of train's clocks for R.

Suppose, there is only one clock in train. When train is at station the R, O and the clock have same space component in platform co-ordinate system. Now at t=0 train's speed is 0.6c. So we can draw the world line of the clock like this.

syn_clocks_wrf_01.JPG


We can easily see that when 1.25 reading in R's clock for R, O's clock reading is 1 for R. And when 1.25 reading in O's clock for O, R's clock reading is 1 for O. So moving O's clock slow down with respect to R, and moving R's clock slow down with respect to O. Here you have used simple transformation formula [itex]t = \gamma \tau[/itex], because space component is 0 at initial stage. We get one value for [itex]t[/itex] for [itex]\tau = 1[/itex] and [itex]x = 0[/itex].

Now, if we put another two clocks at train's front and train's end. And you have said that the the clocks would be dilated for R at same rate and would remain synchronized for R. So, as per your saying, the world lines of the three clocks would look like this.

syn_clocks_wrf_02.JPG


You can see that lines of simultaneity of R's frame says that clocks is dilated with same rate and clocks is synchronized.

But, do you notice what is wrong with this diagram?

We cannot use the [itex]t = \gamma \tau[/itex] formula to calculate readings of front clock and end clock. Because, now the space component is not same for R, front clock and end clock. We have to consider space component in calculation. Here space component is not 0 of the new two clocks at initial stage. Another thing is you can see in above diagram that difference between space component doesn't change after frame changing. But, if we transform some (t, x)=(0, x) point to another co-ordinate system we will get (t', x')=(0, x'), where x ≠ x' surely. So after transformation space component of clock should be changed.

So, we have to use this equation [itex]t = \gamma (\tau - 0.6x)[/itex]. We get three values for [itex]t[/itex] by putting ([itex]\tau = 1[/itex], [itex]x=-1[/itex]), ([itex]\tau = 1[/itex], [itex]x=0[/itex]) and ([itex]\tau = 1[/itex], [itex]x=1[/itex]) in equation. So R will see [itex]\tau = 1[/itex] at different different time in his frame. The above space component problem will also be solved with this equation. This scenario can be described by below image.

syn_clocks_wrf_03.JPG


We can easily see that lines of simultaneity of O's frame says that train's clocks is synchronized for O, but not for R. So, train's clocks would not be synchronized for R.
 
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  • #82
DaleSpam said:
OK, there are so many things incorrect with your previous two posts that I think it will be better to explain the general approach rather than respond point-by-point. If you still have specific questions afterwards then I will be glad to respond point-by-point.

I would be happy to see my errors.
DaleSpam said:
First, when you are doing spacetime diagrams what you are doing is mapping the position of an object as a function of time to the shape of a geometric object. This increases the dimensionality of an object, i.e. a 0D point particle is represented by a 1D worldline (for this analysis we are ignoring the size of the clocks so they are represented by worldlines).

Second, you can always write a 1D worldline in parametric form with a single parameter. So, you can always write it in the form [itex](t(\lambda),x(\lambda),y(\lambda),z(\lambda))[/itex] where [itex]\lambda[/itex] is the parameter.
http://en.wikipedia.org/wiki/Parametric_equation

Third, the parameterization is not unique. So if you have any continuous and invertible function [itex]\lambda(\zeta)[/itex] then [itex](t(\zeta),x(\zeta),y(\zeta),z(\zeta))[/itex] is also a valid parameterization of the same worldline.

Fourth, the parameter need not have any significance, but it can. For example, one common parameterization is to use the time in a given reference frame, t, another common parameterization is to use the proper time displayed on the clock, τ.

I follow this.
DaleSpam said:
The latter parameterization is particularly common since it is frame-invariant and physically measurable.

I don't follow this.
DaleSpam said:
Fifth, if you have multiple worldlines then each worldline will have its own parameterization and thus its own parameter.

Sixth, for each reference frame there are a series of surfaces of constant coordinate time called hyperplanes of simultaneity, or just planes of simultaneity. There is one such plane for each value of coordinate time.

Seventh, two clocks are considered to be synchronized in a specified reference frame at a given coordinate time iff their displayed proper time is the same at their respective intersections with the plane of simultaneity.

I follow this.
DaleSpam said:
I will try to post the application of these principles to this specific problem later today.

Certainly.
 
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  • #83
mananvpanchal said:
I don't follow this.
The proper time is a frame invariant quantity, meaning that all reference frames agree on what it is. It is the integral of the spacetime interval along the clock's worldline. The proper time is also measurable, specifically, the reading that a clock displays is the measurement of proper time. At any event along the worldline all reference frames must agree on what the clock actually reads.
 
  • #84
OK, so to use the above approach in this problem the first thing that I did was to write the worldline of the clocks in parametric form. Since you first described the situation in R's frame, I used that frame for the description and parameterized it in terms of coordinate time. The result is the first equation of post 42.

Then, since the parameterization is not unique and since proper time has the advantages listed above as well as the direct application for determining synchronization, I decided to re-parameterize in terms of proper time instead of coordinate time. The relationship between the two parameters is the second equation in post 42, and the resulting parametric equation of the worldline is given in the third equation.

Once that is done, then the worldline in the primed frame is found simply by using the Lorentz transform, as shown in post 48.

Now, we have a parameterization for each worldline in terms of proper time in both the primed and the unprimed frame. So at this point we make 3 worldlines, corresponding to A, O, and B, by substituting d=-1,0,1 respectively. As mentioned above, each worldline has its own parameter, hence the subscripts on the proper time. I.e. there are three clocks displaying numbers and so there are three proper time values listed.

Now, in order to determine if a pair of clocks are synchronized in some frame we find the proper time at the intersection of the worldline of each clock with the same plane of simultaneity. This is done by setting t or t' equal to some value and solving for the two values of proper time. If the values are equal then the pair of clocks is synchronized and vice versa.

Does that make sense now?
 
  • #85
mananvpanchal said:
You have defined here [itex]\tau[/itex] is time reading of train's clocks for R.
...
We cannot use the [itex]t = \gamma \tau[/itex] formula to calculate readings of front clock and end clock.
Yes, we can. The proper time displayed on the clock is given by the spacetime interval between the event on the worldline where t=0 and any other event on the worldline.

[itex]\Delta\tau^2 = \Delta t^2 - \Delta x^2 - \Delta y^2 - \Delta z^2[/itex]
For τ>0
[itex](\tau - 0)^2 = (t-0)^2 - ((0.6t+d) - (0 + d))^2[/itex]
[itex]\tau^2 = 0.64 t^2[/itex]
[itex]\tau = 0.8 t[/itex]

The d cancels out.
 
  • #86
DaleSpam said:
OK, so to use the above approach in this problem the first thing that I did was to write the worldline of the clocks in parametric form. Since you first described the situation in R's frame, I used that frame for the description and parameterized it in terms of coordinate time. The result is the first equation of post 42.

This is fine.
DaleSpam said:
Then, since the parameterization is not unique and since proper time has the advantages listed above as well as the direct application for determining synchronization, I decided to re-parameterize in terms of proper time instead of coordinate time. The relationship between the two parameters is the second equation in post 42, and the resulting parametric equation of the worldline is given in the third equation.

This is fine.
DaleSpam said:
Once that is done, then the worldline in the primed frame is found simply by using the Lorentz transform, as shown in post 48.

This is not fine. Because you even don't need to transform at all. [itex]\tau[/itex] is proper time = co-ordinate time in train frame. Because clocks is at rest in train frame. Then why you want to transform it? and to which frame? and for what?
DaleSpam said:
Now, we have a parameterization for each worldline in terms of proper time in both the primed and the unprimed frame. So at this point we make 3 worldlines, corresponding to A, O, and B, by substituting d=-1,0,1 respectively. As mentioned above, each worldline has its own parameter, hence the subscripts on the proper time. I.e. there are three clocks displaying numbers and so there are three proper time values listed.

This is not fine too. How three clocks at rest in train frame can have three different different proper time readings in the same train frame? If the clocks is at rest in some frame then there is only one proper time reading of all clocks. The spatial difference of clocks doesn't make any change in time readings for a frame in which the clocks is at rest. The spatial difference only makes change time readings for a frame in which the clocks are moving. So spatial difference of clocks cannot change [itex]\tau[/itex] value in train frame, because clocks is at rest in train frame and proper time ([itex]\tau[/itex]) = co-ordinate ([itex]\tau[/itex]) time in train frame. But spatial difference of clocks can change [itex]t[/itex] value in R's frame. Because clocks is moving in R's frame and proper time ([itex]\tau[/itex]) ≠ co-ordinate ([itex]t[/itex]) time in R's frame.
DaleSpam said:
Now, in order to determine if a pair of clocks are synchronized in some frame we find the proper time at the intersection of the worldline of each clock with the same plane of simultaneity. This is done by setting t or t' equal to some value and solving for the two values of proper time. If the values are equal then the pair of clocks is synchronized and vice versa.

Above two is not fine, so this is also not fine. Please, first define what is [itex]t'[/itex]?
 
  • #87
DaleSpam said:
Yes, we can. The proper time displayed on the clock is given by the spacetime interval between the event on the worldline where t=0 and any other event on the worldline.

[itex]\Delta\tau^2 = \Delta t^2 - \Delta x^2 - \Delta y^2 - \Delta z^2[/itex]
For t>0
[itex](\tau - 0)^2 = (t-0)^2 - ((0.6t+d) - (0 + d))^2[/itex]
[itex]\tau^2 = 0.64 t^2[/itex]
[itex]\tau = 0.8 t[/itex]

The d cancels out.

This seems right, but this is not right. This is not the equation to find time readings.

Please, look at this.

[itex]\Delta\tau^2 = \Delta t^2 - \Delta x^2 - \Delta y^2 - \Delta z^2[/itex]

[itex](\tau_2 - \tau_1)^2 = (t_2-t_1)^2 - ((0.6t_2+d) - (0.6t_1 + d))^2[/itex]

[itex](\tau_2 - \tau_1)^2 = 0.64 (t_2-t_1)^2[/itex]

[itex](\tau_2 - \tau_1) = 0.8 (t_2-t_1)[/itex]

And this will be converted into simple time dilation equation.

[itex]\Delta \tau = 0.8 \Delta t[/itex]

So, do you notice here the problem?

We are taking here [itex]\tau_1 = 0 = t_1[/itex]. And that's why you able to write down the equation like this [itex]\tau = 0.8 t[/itex]. Here we can take [itex]\tau_1 = 0 = t_1[/itex], because transformation of [itex]\tau_1 = 0[/itex] gives us [itex]t_1 = 0[/itex]. But we cannot find any value of [itex]t_1[/itex] (where [itex]t_1 ? 0[/itex]), so from that we can get [itex]\tau_1[/itex] where [itex]\tau_1 = t_1[/itex].

You are right that in time dilation equation [itex]\Delta \tau = 0.8 \Delta t[/itex] you always get a constant difference [itex]\Delta \tau[/itex] by taking some constant difference [itex]\Delta t[/itex]. But that doesn't mean that [itex]\tau_2 = t_2[/itex] and [itex]\tau_1 = t_1[/itex].

So picking time difference [itex](\tau_2 - \tau_1)[/itex] in train frame we can get time difference [itex](t_2 - t_1)[/itex] in R's frame, and piking again the same time difference [itex](\tau_3 - \tau_2)[/itex] in train frame we get the same before time difference [itex](t_3 - t_2)[/itex] in R's frame. But if we take here [itex]\tau_1 = t_1[/itex] it is guaranteed that we have now [itex]\tau_2 ? t_2[/itex] and [itex]\tau_3 ? t_3[/itex].

To find [itex]t_1[/itex], [itex]t_2[/itex], [itex]t_3[/itex] from [itex]\tau_1[/itex], [itex]\tau_2[/itex], [itex]\tau_3[/itex] we still wants lorentz transformation equation not time dilation equation. Time dilation equation only can be used to find dilated time difference not dilated time reading.

So, from the above time dilation equation we can write [itex]\tau_2 = 0.8 t_2[/itex] where [itex]\tau_1 = 0 = t_1[/itex]. But we cannot write [itex]\tau_3 = 0.8 t_3[/itex] because we never have [itex]\tau_2 = t_2[/itex].

The above description is just to differentiate time difference and time reading.

We have now LT equation [itex]t_n = 1.25 (\tau_n - 0.6d)[/itex].
Now if we want to transform [itex]t_1[/itex], [itex]t_2[/itex], [itex]t_3[/itex] from [itex]\tau_1[/itex], [itex]\tau_2[/itex], [itex]\tau_3[/itex] we have to take [itex]d[/itex] into account.

So, to find time difference we don't need to take [itex]d[/itex] into account [itex](\Delta \tau = 0.8 \Delta t)[/itex], but to find time reading we have consider [itex]d[/itex] in LT equation [itex](t_n = 1.25 (\tau_n - 0.6d))[/itex].

So...
mananvpanchal said:
So, we have to use this equation [itex]t = \gamma (\tau - 0.6x)[/itex]. We get three values for [itex]t[/itex] by putting ([itex]\tau = 1[/itex], [itex]x=-1[/itex]), ([itex]\tau = 1[/itex], [itex]x=0[/itex]) and ([itex]\tau = 1[/itex], [itex]x=1[/itex]) in equation. So R will see [itex]\tau = 1[/itex] at different different time in his frame.
 
  • #88
mananvpanchal said:
This is not fine. Because you even don't need to transform at all. [itex]\tau[/itex] is proper time = co-ordinate time in train frame. Because clocks is at rest in train frame. Then why you want to transform it? and to which frame? and for what?
There are two inertial frames. The unprimed frame which is R's frame, and the primed frame where O is at rest after τ=0.

Of course you need to transform it because you are interested in the synchronization in both frames. You therefore need to be able to determine the planes of simultaneity in both frames.

mananvpanchal said:
This is not fine too. How three clocks at rest in train frame can have three different different proper time readings in the same train frame?

If the clocks is at rest in some frame then there is only one proper time reading of all clocks.
They could easily have different readings if they are not synchronized. My watch and my computer clock are both at rest in my frame, one reads 7:37 and the other reads 7:35. So being at rest in the same frame does not imply that they have the same proper time reading.

Furthermore, since you are interested in whether or not they are synchronized you cannot assume that they are synchronized. That is a logical fallacy called "begging the question". You need to assume that they could be synchronized or they could be desynchronized. You do that by allowing each one to vary. Then you prove that the way they vary is such that they are equal (or unequal) at the intersection with a given plane of simultaneity.

mananvpanchal said:
The spatial difference of clocks doesn't make any change in time readings for a frame in which the clocks is at rest. The spatial difference only makes change time readings for a frame in which the clocks are moving. So spatial difference of clocks cannot change [itex]\tau[/itex] value in train frame, because clocks is at rest in train frame and proper time ([itex]\tau[/itex]) = co-ordinate ([itex]\tau[/itex]) time in train frame. But spatial difference of clocks can change [itex]t[/itex] value in R's frame. Because clocks is moving in R's frame and proper time ([itex]\tau[/itex]) ≠ co-ordinate ([itex]t[/itex]) time in R's frame.
The math disagrees. You are simply assuming the conclusion you think is right, and thereby committing a logical fallacy. If you do not assume the conclusion you find out that it is a false assumption.

mananvpanchal said:
Above two is not fine, so this is also not fine. Please, first define what is [itex]t'[/itex]?
See above, t' is the time coordinate in the inertial frame where O is at rest after τ=0.
 
  • #89
mananvpanchal said:
This seems right, but this is not right. This is not the equation to find time readings.
Do you agree or disagree that, as part of the problem set up, all 3 clocks read τ=0 at t=0? Remember that t is the coordinate time in the unprimed (R) frame where they are initially at rest.

If you disagree, then what is the value of t when [itex]τ_d=0[/itex] for each clock?
 
  • #90
I think I have to again define the whole scenario.

For [itex]t < 0[/itex] there is three clocks A, O's clock and B is on train in rest frame of R. R also has a clock. All clocks is synchronized.
Now at [itex]t = \tau = 0[/itex] train is moving with 0.6c speed in R's frame. The three clocks is at rest in O's frame and moving in R's frame.

You are using [itex]t = 1.25 \tau[/itex] to find co-ordinate time [itex](t)[/itex] from proper time [itex](\tau)[/itex] of train's clocks.

But I not agree with you. Because [itex]t = 1.25 \tau[/itex] is TD eqaution. It is used to find dilated time deference from proper time deference. It is not used to find co-ordinate time reading from proper time reading. To find out co-ordinate time reading from proper time reading we have to use LT equation [itex]t = 1.25 (\tau - 0.6d)[/itex]. In case of O's clock (where [itex]d=0[/itex]) the equation can be simplified to [itex]t = 1.25 \tau[/itex]. But this does not mean that we can use the same simplified equation for A and B clock. We have to use [itex]t = 1.25 (\tau - 0.6d)[/itex] for A and B clocks.
DaleSpam said:
If you disagree, then what is the value of t when [itex]τ_d=0[/itex] for each clock?

When [itex]\tau_a = 0[/itex], value of [itex]t_a=0.75[/itex]
When [itex]\tau_o = 0[/itex], value of [itex]t_o=0[/itex]
When [itex]\tau_b = 0[/itex], value of [itex]t_b=-0.75[/itex]

Now, we have transformed O's frame's clocks readings into R's frame already. We don't need further transformation. Because, [itex]\tau[/itex] is proper time and [itex]t'[/itex] is co-ordinate time in O's frame. The clocks is at rest in O's frame so in this case proper time [itex](\tau)[/itex] = co-ordinate time [itex](t')[/itex]. You cannot transform O's clocks reading into O's clocks reading. Because they both readings are single clock's reading which is at rest in your frame.
DaleSpam said:
See above, t' is the time coordinate in the inertial frame where O is at rest after τ=0.
Here, [itex]\tau = t'[/itex]. Because, clocks is at rest in O's frame. So, we don't need to transform it.

If you want to prove that O's clocks is synchronized for R, and not for O. You would pick [itex](\tau_a = \tau_o = \tau_b)[/itex] for any value of [itex]\tau \ge 0[/itex], you must get single value of [itex]t[/itex]. You have tried to achieve this using TD equation, but we cannot use TD equation to get time reading. And we cannot get single value of [itex]t[/itex] for any [itex](\tau_a = \tau_o = \tau_b)[/itex] using LT equation.

So, train's clocks is synchronized for O [itex](\tau_a = \tau_o = \tau_b)[/itex], but not for R [itex](t_a \ne t_o \ne t_b)[/itex].
 
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  • #91
mananvpanchal said:
All clocks is synchronized.
Now at [itex]t = \tau = 0[/itex]
...
When [itex]\tau_a = 0[/itex], value of [itex]t_a=0.75[/itex]
When [itex]\tau_o = 0[/itex], value of [itex]t_o=0[/itex]
When [itex]\tau_b = 0[/itex], value of [itex]t_b=-0.75[/itex]
Please make up your mind. These are two mutually contradictory scenarios so you have to pick only one.

All of our discussion to date has been using the first condition. Changing the scenario at this late date is rather irritating, but I can certainly re-work everything with this new scenario. But you must recognized that it is different and contradictory to the previously discussed scenario.

mananvpanchal said:
Here, [itex]\tau = t'[/itex]. Because, clocks is at rest in O's frame. So, we don't need to transform it.
I already gave you a concrete example why the simple fact that a clock is at rest is not sufficient to guarantee that it is synchronized. Your logic is wrong.
 
  • #92
mananvpanchal said:
When [itex]\tau_a = 0[/itex], value of [itex]t_a=0.75[/itex]
When [itex]\tau_o = 0[/itex], value of [itex]t_o=0[/itex]
When [itex]\tau_b = 0[/itex], value of [itex]t_b=-0.75[/itex]

I know that this calculation creates gap between world line and overlapping of world line. And I know that is strange to you. So, please see below image in which I have tried to show smooth acceleration of three clocks.

acceleration_02.JPG


We can easily see that for [itex]t < 0[/itex], the clocks is at rest in R's frame and lines of simultaneity says that the three clocks are synchronized in R's frame.

Now at [itex]t = 0[/itex] clocks starts accelerating. And at some time [itex]t = t_1[/itex] the clocks achieves 0.6c speed and after this clocks moving with the constant speed.

Now, you can see lines of simultaneity of O's frame are not parallel during acceleration phase [itex](0 \le t < t1)[/itex]. And lines of simultaneity of O's frame are parallel for [itex]t < 0[/itex] and for [itex]t \ge t_1[/itex].

Space axis and time axis is slowly skewed during acceleration. And after achieving constant speed it will not be skewed more. Lines of simultaneity are always parallel to space axis, so it is also skewed with space axis.

Lines of simultaneity of any frame indicates synchronized clocks in that moving frame.

So, lines of simultaneity of O's frame indicates synchronized clocks in O's frame. But, lines of simultaneity of O's frame are not parallel to lines of simultaneity of R's frame. So, O's clocks which is synchronized in O's frame is not synchronized in R's frame.

Now, please see below image in which I have tried to show what you are saying.

acceleration_03.JPG


You can easily see that it solves the purpose "Clocks of O's frame are synchronized in R's frame".
But, to solve the purpose, the diagram creates some problems.
- Only time axis is skewed. Space axis is not skewed.
- Space axis is not skewed, so space scale of O's frame remains equal to space scale of R's frame. Which should not be.
- Clocks is synchronized in R's frame, but the diagram cannot show how the clocks is not synchronized in O's frame.

Now, please tell me. Do you agree that after finishing acceleration the lines of simultaneity of O's frame are skewed for R's frame?
If you find that I couldn't show your idea in second diagram then please provide me your diagram.
 
  • #93
DaleSpam said:
Please make up your mind. These are two mutually contradictory scenarios so you have to pick only one.

All of our discussion to date has been using the first condition. Changing the scenario at this late date is rather irritating, but I can certainly re-work everything with this new scenario. But you must recognized that it is different and contradictory to the previously discussed scenario.

From my original post I am telling that clocks is synchronized for O, but not for R. But, when you posted your maths, I thought that you were telling right. But, I found some errors in your maths.

You are using [itex]t = 1.25 \tau[/itex] to prove that clocks is synchronized for R. Here, you assuming single value of [itex]\tau[/itex] for all three clocks, so you can prove that clocks is synchronized for R.

But when "decreasing desync with increasing [itex]\tau[/itex]" problem created, you came up with idea of [itex]\tau_a[/itex], [itex]\tau_o[/itex] and [itex]\tau_b[/itex]. So, now you can easily prove that clocks is not synchronized for O with these three values of [itex]\tau[/itex].

So, now how are you going to prove that clocks is still synchronized for R with these three values of [itex]\tau[/itex] using [itex]t = 1.25 \tau[/itex]?
 
  • #94
mananvpanchal said:
But, I found some errors in your maths.
No, you didn't find any errors. You found that my math disproved your assumptions so you went ahead and assumed your conclusion and stated that therefore the math is wrong. That is a logical fallacy known as "begging the question".

mananvpanchal said:
You are using [itex]t = 1.25 \tau[/itex] to prove that clocks is synchronized for R.
I showed you how that was derived. It was derived correctly from the spacetime interval formula. My other results were derived from the Lorentz transform. Those two equations, the spacetime interval and the Lorentz transform, are the fundamental equations of special relativity. If you are not using them then you are not doing special relativity, and in special relativity you can always use them. The fact that they are contradictory to your assumptions proves your assumptions wrong.

mananvpanchal said:
Here, you assuming single value of [itex]\tau[/itex] for all three clocks, so you can prove that clocks is synchronized for R.
I didn't assume it, I proved it. The d cancels out.

mananvpanchal said:
But when "decreasing desync with increasing [itex]\tau[/itex]" problem created, you came up with idea of [itex]\tau_a[/itex], [itex]\tau_o[/itex] and [itex]\tau_b[/itex]. So, now you can easily prove that clocks is not synchronized for O with these three values of [itex]\tau[/itex].
Yes, I made a small mistake in notation, which I quickly corrected immediately upon your pointing it out.

mananvpanchal said:
So, now how are you going to prove that clocks is still synchronized for R with these three values of [itex]\tau[/itex] using [itex]t = 1.25 \tau[/itex]?
I already proved it, by deriving (not assuming) the fact that the proper time doesn't depend on d.
 
  • #95
mananvpanchal said:
I know that this calculation creates gap between world line and overlapping of world line. And I know that is strange to you.
Not just strange, it is wrong. It is the most obvious of physical nonsense and should have immediately clued you in that you were wrong. You cannot have clocks magically appearing and disappearing, with duplicates and missing clocks. It is physical nonsense and violates all sorts of conservation laws.

mananvpanchal said:
Lines of simultaneity of any frame indicates synchronized clocks in that moving frame.
No, the lines of simultaneity indicate lines of constant coordinate time in the frame. What you need to prove is that the clocks display the same proper time at their respective intersections with one of these lines of simultaneity. That you have never done, but simply assumed.

In fact, your very diagram disproves your assumption. I have only added some dots to your diagram, but not changed the lines. I am assuming (according to the original scenario, not your contradictory scenario) that each clock reads τ=0 at the black dots.

We can easily see that the spacetime intervals between the black dots and the corresponding red dots are the same. That means that the clocks read the same time at the red dots. Since the red dots are on a single plane of simultaneity in the unprimed frame that implies that they are synchronized in the unprimed frame.

We can also easily see that the spacetime intervals between the black dots and the corresponding green dots are not the same. That means that the clocks do not read the same time at the green dots. Since the green dots are on a single plane of simultaneity in the primed frame that implies that they are not synchronized in the primed frame.

Your own graphics disprove your assumptions, as does all of the math.
 

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  • #96
DaleSpam said:
We can easily see that the spacetime intervals between the black dots and the corresponding red dots are the same. That means that the clocks read the same time at the red dots. Since the red dots are on a single plane of simultaneity in the unprimed frame that implies that they are synchronized in the unprimed frame.

DaleSpam said:
We can also easily see that the spacetime intervals between the black dots and the corresponding green dots are not the same. That means that the clocks do not read the same time at the green dots. Since the green dots are on a single plane of simultaneity in the primed frame that implies that they are not synchronized in the primed frame.

Is this not contradictory?
 
  • #97
mananvpanchal said:
Is this not contradictory?
No, it is not contradictory.
 
  • #98
Thanks DaleSpam.
 
  • #99
You are welcome. Do you understand why it is not contradictory?
 
  • #100
I want to clear some points here.

- You are using TD equation to find time readings, that is wrong. I agree that time dilation difference between two readings of each three clocks are same for R. But time readings of each three clocks are not same for R. To find time reading you have to use LT equation.

- You are telling [itex]\tau[/itex] is not dependent of [itex]d[/itex], and you have proved forcefully that clocks is synchronized for R using TD equation and using single independent value of [itex]\tau[/itex]. But then you have a goal to prove that clocks is not synchronized for O. So, you came up with three values of [itex]\tau[/itex]. But, how could you not realize that if [itex]\tau[/itex] is not dependent of [itex]d[/itex] then how could you get three values of [itex]\tau[/itex]? And if there are three values of [itex]\tau[/itex] exist then how could you prove that clocks is synchronized for R using the TD equation?

- You said my modified diagram (modified by you) shows that clocks is not synchronized for O. Then how does the modified diagram shows that clocks is synchronized for R?

- I cannot understand that why you don't want to understand this: If a clock is at rest in a frame then its proper time (what time interval it has covered in the frame) is equal to co-ordinate time of the frame (because covered space interval is zero in the frame). If a clocks is moving in a frame then proper time (what time interval it has covered in the frame) is not equal to co-ordinate time of the frame (because covered space interval is not zero in the frame). So, [itex]\tau[/itex] is a proper time of train's clocks, the clocks is at rest in O's frame then co-ordinate time of O's frame is equal to proper time of the clocks. And, [itex]\tau[/itex] is a proper time of train's clocks, the clocks is moving in R's frame then co-ordinate time of R's frame is not equal to proper time of the clocks.

- I cannot understand that why you don't want to understand this: Line of simultaneity is the line on which, two events occurred, called simultaneous events. So short hand and long hand of clocks on the line meets at 12 must be simultaneous events on the line of simultaneity. So clocks on the line can be called synchronized. If clocks on line of simultaneity is not synchronized then what is other method you have to prove that two events occurred on the line of simultaneity is simultaneous events?

- Accelerating scenario can be made up using too many small inertial frames changing. My diagram shows how lines of simultaneity of O's frame becomes unparallel to space axis of R's frame (during acceleration and after acceleration). So, clocks on the lines of simultaneity becomes desynchronized for R. But, lines of simultaneity is always parallel to space axis of whatever small inertial frame in which O exist at that time. So, clocks on the lines of simultaneity remain synchronized for O.

- Using LT equation if I pick single value of [itex]t[/itex], I get three values of [itex]\tau[/itex], and if I pick single value of [itex]\tau[/itex], I get three values of [itex]t[/itex]. So, train's clocks is not synchronized for R. If we set two another observer at A and B. The thee A, O and B confirms that train's clocks is synchronized for them, but they all see different value in R's clock.

- You guys explained me that how clocks becomes desync on frame changing: when train is at rest light pulse take equal time to reach to O from both clocks. But after frame change light pulse take different time to reach to O from both clocks (front clock's light beam traveling in opposite direction of train travel and rear clock's light beam traveling in same direction of train travel). But, light speed is same in all direction, so clocks is actually desync.

We can think a experiment on the basis of this. Suppose, there are two more observers at A and B. Train is at rest in R's frame. Clocks firing a pulse to all observers. O gets A and B's "0" pulse at same time but after some time of his own clock reads "0" because of light propagation time. O confirms that all clocks is synchronized. A gets "0" pulse first from O and then from B after some time of his own clock reads "0". A confirms that all clocks is synchronized. B gets "0" pulse first from O and then from A after some time of his own clock reads "0". B confirms that all clocks is synchronized.

Now, train has changed its frame. O gets A and B's "0" pulse at different time but after some time of his own clock reads "0". O confirms that clocks is not synchronized. O confirms that B (front) is ahead of A (rear) (O > B > A). A gets "0" pulse first from O and then from B after some time of his own clock reads "0". Time duration in receiving two pulse is obviously less than what was in rest frame. But A cannot confirms that clocks is not synchronized. A can say that O and B is behind of his own clock (A > O = B). B gets "0" pulse first from O and then from A after some time of his own clock reads "0". Time duration in receiving two pulse is obviously more than what was in rest frame. But B cannot confirms that clocks is not synchronized. B can say that O and A is behind of his own clock (B > O = A).

Can you see the problem here? Three observers in inertial frame is not agree with each other. They are not agree on sequence of desync (which is ahead and which is behind). They are not agree even on the clocks is synchronized or not.

- Earth's motion is accelerating motion around Sun, but we know that Earth's clocks remain synchronized for us. But Earth's clocks would not remain synchronized for Sun.

- I have proved that train's clocks is synchronized for O and not synchronized for R using diagram and maths (LT equation).
 
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  • #101
These diagrams might help. They are essentially the same as the one posted by Dalespam in post #95 but show the events from both sets of observers POV.

In the first diagram the stationary frame is the comoving observers A,B,C. The primed observers begin moving away simultaneously in the unprimed observers frame.

The second diagram is the rest frame of the primed observers, and it is clear that their clocks are no longer synchronised because they did not begin their motion simultaneously in their frame.

The diagrams are completely clear and show what is happening. There are no contradictions or paradoxes.

The mistake in your original diagram in post #1 is that you tried to make the moment of departure simultaneous in both frames, which it is not.
 

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  • #102
@Mentz114

Ok, so A, B, C and A', B', C' is synchronized in ABC's frame (before frame change).
So [itex]t_{abc}=t_{a'b'c'}[/itex] (before frame change).

Now, clocks is changed its frame at [itex]t_{abc}=0[/itex] simultaneously in ABC's frame and clocks moving with 0.6c speed.

Now, can you calculate for me what is the value of [itex]t_{a'}[/itex], [itex]t_{b'}[/itex] and [itex]t_{c'}[/itex] at [itex]t_{abc}=0[/itex]? (please, take origin on B's world line)
 
  • #103
mananvpanchal said:
@Mentz114

Ok, so A, B, C and A', B', C' is synchronized in ABC's frame (before frame change).
So [itex]t_{abc}=t_{a'b'c'}[/itex] (before frame change).

Now, clocks is changed its frame at [itex]t_{abc}=0[/itex] simultaneously in ABC's frame and clocks moving with 0.6c speed.
OK. The speed is 0.52c in the diagram below which has the lines of simultaneity. You can read off the answers from this.

Now, can you calculate for me what is the value of [itex]t_{a'}[/itex], [itex]t_{b'}[/itex] and [itex]t_{c'}[/itex] at [itex]t_{abc}=0[/itex]? (please, take origin on B's world line)

Can you rephrase this in terms of proper times ? [itex]t_{abc}=0[/itex] is only true in the unprimed frame.

I've run out of time. Try calculating proper times by triangulation from the diagrams using dtau^2 = dt^2-dx^2.
 

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  • #104
mananvpanchal said:
- You are using TD equation to find time readings, that is wrong. I agree that time dilation difference between two readings of each three clocks are same for R. But time readings of each three clocks are not same for R. To find time reading you have to use LT equation.
Not only is my use of the equation correct, I proved that it is correct from first principles, the spacetime interval equation.

The Lorentz transform is used to transform from the unprimed frame to the primed frame, it is not useful within a single frame. It is always used, once you have completely specified the problem in one frame, to determine how the problem appears in any other frame.

The LT cannot be used to specify the problem within a single frame. You should have realized that you were making a mistake when your use of the LT contradicted your initial scenario.

mananvpanchal said:
- You are telling [itex]\tau[/itex] is not dependent of [itex]d[/itex], and you have proved forcefully that clocks is synchronized for R using TD equation and using single independent value of [itex]\tau[/itex]. But then you have a goal to prove that clocks is not synchronized for O. So, you came up with three values of [itex]\tau[/itex]. But, how could you not realize that if [itex]\tau[/itex] is not dependent of [itex]d[/itex] then how could you get three values of [itex]\tau[/itex]? And if there are three values of [itex]\tau[/itex] exist then how could you prove that clocks is synchronized for R using the TD equation?
This is a valid point. My apologies for the confusion. There are always 3 values of τ in both frames. So I should have written:
for [itex]\tau_d>0[/itex]
[itex](\tau_d - 0)^2 = (t-0)^2 - ((0.6t+d) - (0 + d))^2[/itex]
[itex]\tau_d = 1.25 t[/itex]
Where [itex]\tau_a, \tau_o, \tau_b[/itex] are found by substituting the appropriate values of d into the equation.

Is that more clear?

mananvpanchal said:
- You said my modified diagram (modified by you) shows that clocks is not synchronized for O. Then how does the modified diagram shows that clocks is synchronized for R?
First, do you agree that the clocks each read 0 at the black dots in your scenario?

If so, then along each worldline simply find points of equal spacetime interval from the black dots and note that they occur simultaneously for R.

If not, then please mark where each clock reads 0 clearly on your diagram.

mananvpanchal said:
- I cannot understand that why you don't want to understand this: If a clock is at rest in a frame then its proper time (what time interval it has covered in the frame) is equal to co-ordinate time of the frame (because covered space interval is zero in the frame).
Again, my watch and my desk clock are both at rest in my frame, and they have different readings of proper time. One says 1:19 and the other says 1:21. So it is not possible for them to both be equal to the co-ordinate time. They are not synchronized. This disproves your claim by counterexample.

You are focusing on the fact that they are running at the same rate as coordinate time in my frame. However, that is not relevant to determining synchronization. Two clocks may be running fast or slow and yet be synchronized. They may be running at the correct rate and yet not be synchronized. You are mixing two separate concepts.

mananvpanchal said:
- I cannot understand that why you don't want to understand this: Line of simultaneity is the line on which, two events occurred, called simultaneous events. So short hand and long hand of clocks on the line meets at 12 must be simultaneous events on the line of simultaneity. So clocks on the line can be called synchronized. If clocks on line of simultaneity is not synchronized then what is other method you have to prove that two events occurred on the line of simultaneity is simultaneous events?
You are again confusing simultaneity with synchronization. Simply because you can draw a line of simultaneity on a spacetime diagram does not imply that all clocks will read the same on that line of simultaneity unless the clocks are synchronized.

The procedure for synchronization was given by Einstein. In your problem setup you stated that the clocks were initially synchronized in the unprimed frame. Meaning that Einstein's procedure synchronization procedure was carried out initially.

Because the clocks were synchronized in the unprimed frame, and because their velocity profile is the same in the unprimed frame at all times, they remain synchronized in the unprimed frame, as I proved. Because they are synchronized in the unprimed frame, they are not synchronized in the primed frame frame, as I proved.

mananvpanchal said:
- Accelerating scenario can be made up using too many small inertial frames changing. My diagram shows how lines of simultaneity of O's frame becomes unparallel to space axis of R's frame (during acceleration and after acceleration). So, clocks on the lines of simultaneity becomes desynchronized for R. But, lines of simultaneity is always parallel to space axis of whatever small inertial frame in which O exist at that time. So, clocks on the lines of simultaneity remain synchronized for O.
No they don't. Look at the gaps between your "sweeping" lines of simultaneity. Do those gaps look like they are marking equal spacetime intervals for each clock? Please answer this question in bold directly.

mananvpanchal said:
- I have proved that train's clocks is synchronized for O and not synchronized for R using diagram and maths (LT equation).
No you haven't. You first drew physically impossible diagrams, then you misinterpreted your own diagrams. Your math is incorrect because you tried to use a transform to specify a problem rather than to transform it into a new reference frame.
 
Last edited:
  • #105
Mentz114 said:
Can you rephrase this in terms of proper times ? [itex]t_{abc}=0[/itex] is only true in the unprimed frame.

I've run out of time. Try calculating proper times by triangulation from the diagrams using dtau^2 = dt^2-dx^2.

Suppose, that at some [itex]t_a=t_b=t_c=-0.001[/itex], value of [itex]t'_a=t'_b=t'_c=-0.001[/itex] too. But, at [itex]t_a=t_b=t_c=0[/itex], what should be the value of [itex]t_a=?, t_b=?, t_c=?[/itex]

I think I don't need difference of proper time [itex]d\tau[/itex] and difference of co-ordinate time [itex]dt[/itex]. Please, clarify your point if I have misunderstood this.
 
<h2>1. What is the concept of synchronized clocks with respect to rest frame?</h2><p>The concept of synchronized clocks with respect to rest frame refers to the idea that in a given reference frame, all clocks are synchronized and show the same time. This means that if two clocks are at rest relative to each other, they will show the same time at any given moment.</p><h2>2. How do synchronized clocks work in different reference frames?</h2><p>In different reference frames, synchronized clocks may not show the same time due to the effects of time dilation and length contraction. This means that the passage of time and the measurement of distances will be different in different reference frames, leading to desynchronization of clocks.</p><h2>3. What is the significance of synchronized clocks in relativity?</h2><p>Synchronized clocks play a crucial role in the theory of relativity. They help us understand how time and space are relative and how they can be affected by motion and gravity. The concept of synchronized clocks is essential in the understanding of the theory of special and general relativity.</p><h2>4. Can synchronized clocks be used for accurate timekeeping?</h2><p>In theory, synchronized clocks can be used for accurate timekeeping. However, in practice, it is challenging to achieve perfect synchronization due to the effects of time dilation and length contraction. Additionally, external factors such as gravitational fields and motion can also affect the accuracy of synchronized clocks.</p><h2>5. How are synchronized clocks used in modern technology?</h2><p>Synchronized clocks are used in various modern technologies, such as GPS systems, telecommunications, and computer networks. These technologies rely on precise timekeeping for their proper functioning, and synchronized clocks help ensure accurate time measurements across different reference frames.</p>

1. What is the concept of synchronized clocks with respect to rest frame?

The concept of synchronized clocks with respect to rest frame refers to the idea that in a given reference frame, all clocks are synchronized and show the same time. This means that if two clocks are at rest relative to each other, they will show the same time at any given moment.

2. How do synchronized clocks work in different reference frames?

In different reference frames, synchronized clocks may not show the same time due to the effects of time dilation and length contraction. This means that the passage of time and the measurement of distances will be different in different reference frames, leading to desynchronization of clocks.

3. What is the significance of synchronized clocks in relativity?

Synchronized clocks play a crucial role in the theory of relativity. They help us understand how time and space are relative and how they can be affected by motion and gravity. The concept of synchronized clocks is essential in the understanding of the theory of special and general relativity.

4. Can synchronized clocks be used for accurate timekeeping?

In theory, synchronized clocks can be used for accurate timekeeping. However, in practice, it is challenging to achieve perfect synchronization due to the effects of time dilation and length contraction. Additionally, external factors such as gravitational fields and motion can also affect the accuracy of synchronized clocks.

5. How are synchronized clocks used in modern technology?

Synchronized clocks are used in various modern technologies, such as GPS systems, telecommunications, and computer networks. These technologies rely on precise timekeeping for their proper functioning, and synchronized clocks help ensure accurate time measurements across different reference frames.

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