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Hehe.atyy said:I like Stephani's definition: time is what makes the laws of physics true.
Hehe.atyy said:I like Stephani's definition: time is what makes the laws of physics true.
ghwellsjr said:No, the geometric symmetry of spacetime emerges from Einstein's first postulate, the PoR, and his second postulate, the propagation of light at c independent of its source.
No, spacetime is a model and it had no existence prior to Einstein's two postulates. There are other models just as viable that have existed.nitsuj said:wasn't spacetime there before it was modeled?
What do you mean by this?ghwellsjr said:There are other models just as viable that have existed.
The same thing I presume you were referring to in post #78:DaleSpam said:What do you mean by this?
DaleSpam said:The term "proper time" is standard terminology. The term "local time" was used by LET to denote coordinate time in the non-aether frames, so I think that a different term is preferable. However, it is a purely semantic preference with no physical content whatsoever.
George: I think that the literature of SR is not clear, as I gather you do. With respect to Einsteins 1905 SR, these ideas make sense to me:ghwellsjr said:You don't understand--I am a beginner and most of what I've learned is from experts like these:
So I think you will have to agree, I'm not just sending beginners down the wrong track, I've been sent down there with them.
Since Einstein never used the term "proper clock" in his 1905 SR paper, I'm not sure why you referenced his paper with regard to your comments. And I'm sure most people don't know what the term "proper clock" means. This subject came up in your thread entitled Special Relativity Clocks at post #104 where the definition is of an inertial clock that passes through two events and so measures a time-like spacetime interval. So if you're still following that definition in your comments, a clock can only be proper if it is inertial during the interval under consideration so if a clock is inertial for some period of time and non-inertial during other periods, then, yes, "a given clock can be proper or not proper depending on the particular events chosen for study."JM said:George: I think that the literature of SR is not clear, as I gather you do. With respect to Einsteins 1905 SR, these ideas make sense to me:
1 All clocks are ideal, in that they step off time in equal steps, i.e. the interval between 'ticks' is the same as time moves ahead.
2 Clocks that are at rest wrt each other are synched so that when one clock reads t = 10 e.g. all clocks read 10.
3 Clocks of two inertial frames in relative inertial motion start at zero and advance at the same rate. See Feynman's light clock analysis in Not so easy Pieces.
4 The Lorentz Transforms define the relation between the coordinates of the two frames, but leave room for many different ways to use the LTs.
5 Starting with x' = 0 and viewing the ticks of this clock as the events of interest, leads to the slow clock formula t' = t √( 1-v2/c2. Since this clock is present at all the events ( the ticks ) it can be regarded as a proper clock reading proper time.
Note that this formula demands that t and t' be measured in the same units, and if there are clocks measuting the time , they must proceed at the same rate.
6 But there are other events that can be chosen; the relation x = f(t) can be chosen so that t' is zero, equal to t, or larger than t. And since the clocks are in synch all the clocks of K' read the same value, including the one at x' = 0. Its possible that none of the clocks are proper.
7 So a given clock can be proper or not proper depending on the particular events chosen for study.
Regards, JM
xinhangshen said:I am pretty confused in the following situation:
Two identical clocks moving at a constant speed v from each other in x-direction. If each clock is made up of a ball moving at a constant speed of 1 on a ruler in y-direction, then the position of the ball of a clock is the time of the clock. According to special relativity, y' = y no matter at what speed the two inertial reference frames move away from each other. Thus, the two clocks will always have the same time in both reference frames if they start from the same time at the same position, which contradicts the time conversion formula in the Lorentz Transformation.
Can anybody give me an explanation how to resolve the contradiction?
George- What definition of proper time and proper clock are you using? Moore says 'the time between two events measured by any clock present at both events is called a proper time between those events.' According to Taylor and Wheeler 'the special clock that records the proper time directly has the name proper clock for this pair of events.'ghwellsjr said:But this has nothing to do with the issue linked to in your quote of mine where the discussion was about Proper Time, not Proper Clocks. All clocks measure Proper Time all the time, even when they are non-inertial and can't be regarded as Proper Clocks.
Those are both incomplete quotes and if you read the entire definitions in context, you will see why they are different, the first being general and the second being "special".JM said:George- What definition of proper time and proper clock are you using? Moore says 'the time between two events measured by any clock present at both events is called a proper time between those events.' According to Taylor and Wheeler 'the special clock that records the proper time directly has the name proper clock for this pair of events.'
Do you use other definitions?
JM
In relativity, proper time is the elapsed time between two events as measured by a clock that passes through both events. The proper time depends not only on the events but also on the motion of the clock between the events. An accelerated clock will measure a smaller elapsed time between two events than that measured by a non-accelerated (inertial) clock between the same two events. The twin paradox is an example of this effect.
We carry our wristwatch at constant velocity from one event to the other one.
ghwellsjr said:So, no, I don't use other definitions except that to make it easier to understand for novices, I just say, "Proper Time is what any clock measures".
True.JM said:George- Thanks, that clarifies the definitions. So, now consider:ghwellsjr said:So, no, I don't use other definitions except that to make it easier to understand for novices, I just say, "Proper Time is what any clock measures".
Given: Einsteins 1905 theory, and the Lorentz transforms.
Two events, (y,z = 00, v/c =0.8) first occurs at x,ct = 0,0 and the second at x = 5, ct = 10. The LT shows that ct' = 10. Since this time applies to all clocks of K', the time also applies to the clock at x' = 0. This clock is inertial, but not proper,because it is not present at both events,
Not true. You just quoted me as saying that "Proper Time is what any clock measures" so why would you say the time for this clock is not a proper time?JM said:so its time is not a proper time.
True.JM said:But if ct = 10 and x = 8 then x' = 0 and this clock is present at both events so it is a proper clock and it reads proper time. Even if Einstein didn't use those terms.
True.JM said:So a given clock, such as the one at x' = 0, can be proper or not proper depending on the particular events chosen.
Do you still think there is any difference besides the insignificant terminology difference using the word "Proper" after fixing your earlier mistake?JM said:This suggests that there are significant differences between '1905' and the theory that you are using, wouldn't you say?
JM
No, it doesn't. Why would it?JM said:This suggests that there are significant differences between '1905' and the theory that you are using, wouldn't you say?
ghwellsjr said:True.
Not true. You just quoted me as saying that "Proper Time is what any clock measures" so why would you say the time for this clock is not a proper time?
Yes, it is also measuring proper time, but along a different worldline. All clocks measure the proper time along their own worldline.JM said:George: In post 102 you agreed, I think, with the definition that 'proper time is the elapsed time between two events as measured by a clock that passes through both events.' Are you now saying that a clock that does not pass through both events is also measuring proper time? JM
Yes, it's measuring the Proper Time between any two other events that it passes through. Clocks can only measure the time where they are, not somewhere else. It's kind of like saying that rulers can only measure lengths where they are, not somewhere else.JM said:George: In post 102 you agreed, I think, with the definition that 'proper time is the elapsed time between two events as measured by a clock that passes through both events.' Are you now saying that a clock that does not pass through both events is also measuring proper time? JM
ghwellsjr said:Clocks can only measure the time where they are, not somewhere else.
ghwellsjr said:Clocks can only measure the time where they are, not somewhere else.
JM said:Ah, but they do. Consider Einsteins watch, 1905,Part I,section1. In order to be useful a watch must be in synch with clocks at other locations. We synch with GMT in everyday life. So when the arrival of the train at the station (where Einstein is located) coincides with the hand of his watch pointing to 7, all the other watches/clocks also point to 7. So a person across town, who knows the schedule, and sees his clock point to 7 can conclude that the train has arrived.
No, I can use my watch to measure how long I should brush my teeth, even if I'm on a fast moving train.JM said:Ah, but they do. Consider Einsteins watch, 1905,Part I,section1. In order to be useful a watch must be in synch with clocks at other locations.
No, not my watch on a fast moving train (where I'm brushing my teeth).JM said:We synch with GMT in everyday life. So when the arrival of the train at the station (where Einstein is located) coincides with the hand of his watch pointing to 7, all the other watches/clocks also point to 7.
But if that person is on another high speed train across town approaching the first train to make a transfer, he might be late by looking at his own watch.JM said:So a person across town, who knows the schedule, and sees his clock point to 7 can conclude that the train has arrived.
I think your problem is that you are equating Proper Time with a Proper Clock. If you had said, "the clock at x' = 0 is not present at both, and is therefore not a Proper Clock", then you'd be correct but as it stands, you are incorrect.JM said:In Einsteins theory the clocks of a given frame are synched by the exchange of light signals. So in my first example Post 103, when the clock at x' = -5 reads ct' = 10 then all the clocks of K' also read ct' = 10, including the one at x' = 0. For this specific example with these two events the clock at x' = 0 is not present at both, and is therefore not measuring Proper time, according to our agreed definition.
True, but I'm not aware of anyone proposing a theory that doesn't allow for synch'ing of clocks so I don't know why you would bring this up.JM said:Other events can be specified as you suggest and as I did in my second example, but those other events don't change the analysis of my first example.
If there is a theory that doesn't allow for synch'ing of clocks then that theory is different from Einsteins 1905 theory.
JM
JM said:Ah, but they do. Consider Einsteins watch, 1905,Part I,section1. In order to be useful a watch must be in synch with clocks at other locations. We synch with GMT in everyday life. So when the arrival of the train at the station (where Einstein is located) coincides with the hand of his watch pointing to 7, all the other watches/clocks also point to 7. So a person across town, who knows the schedule, and sees his clock point to 7 can conclude that the train has arrived.
Only if you adopt a synchronization convention, as you point out here. If you have to use a synchronization convention then the measurement is no longer a measurement of proper time. Furthermore, the standard synchronization convention is frame variant, but measurements of proper time are frame invariant. Therefore it is clear that they are not the same.JM said:Ah, but they do. Consider Einsteins watch, 1905,Part I,section1. In order to be useful a watch must be in synch with clocks at other locations. We synch with GMT in everyday life.
I don't understand what you are saying here. Just because Einstein didn't use the terms Proper Time and Coordinate Time, he still talked about those two types of time as distinct from each other in section 4 of his 1905 paper with regard to the time on a moving clock compared to the time on the stationary clocks and he derived the formula for Proper Time, ?, as a function of the speed of the clock, v, and the Coordinate Time, t, (assuming that the clocks started out synchronized). He then proceeded to give an example of a constantly accelerating clock taking a circular path so it could not be construed as exhibiting Coordinate Time but rather Proper Time. I don't think Einstein saw the need to coin a special phrase like Proper Time for the time on a moving clock because it also applies to every clock, so why have a special name for it? But we do need the special name Coordinate Time because it applies where there are no clocks.Nugatory said:When Einstein was writing in 1905 there was no distinction between coordinate and proper time as we understand the terms, so Einstein couldn't use them in his writing.
ghwellsjr said:I don't understand what you are saying here. Just because Einstein didn't use the terms Proper Time and Coordinate Time, he still talked about those two types of time
Maybe, but I think his problem is the misuse of the term Proper Clock (thinking it is directly related to Proper Time).Nugatory said:I'm saying that Einstein didn't use those terms, we do, and this may be contributing to JM's confusion.
ghwellsjr said:Yes, it's measuring the Proper Time between any two other events that it passes through.
No, I don't disagree but for a different reason.JM said:George; Of course, when the events occur at the position of a clock, it measures proper time for those events, according to the definitions stated earlier, and the clock doesn't have to be a proper clock.
But post 103 identified two specific events, one occurring at x,ct = 0,0 and the other at x,ct = 5,10. And the question is 'does the clock at x' = 0 measure proper time for those two events.' My answer is no, because the clock at x' = 0 is not present at both of those events. Note that the idea of proper clocks isn't involved here.
Do you disagree?
JM
ghwellsjr said:No, I don't disagree but for a different reason.
Events don't have Proper Times. Clocks have Proper Times. Events have Coordinate Times. When you talk about two events, you can't just ask what is the Proper Time between them without specifying the path through spacetime of the clock that you have in mind which will be present at those two events.
Here is a spacetime diagram for K' as you specified it in post #103 (I'm using the speed of light to be one foot per nanosecond) along with a black Proper Clock:
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Note the green clock at x'=0. Note the first green event at x',t'=0,0. Note the blue event at x',t'=-5,10.
Note that the Coordinate Time interval between those two events is 10 which is identical to the Proper Time interval on the green clock at x'=0 between the Coordinate Times of 0 and 10 (because this clock is stationary in this frame).
If you specify a Proper Clock (an inertial clock as I show in the diagram) to go between those two events, which is identical to specifying the Spacetime Interval between those two events, then the time interval is 8.66 which you can either calculate using the formula for the Spacetime Interval, √(Δt2-Δx2) = √(102-52) = √(100-25) = √75 = 8.66 (and you can do this from any frame), or you could actually have an inertial clock go between the two events and measure its Proper Time interval as depicted in the spacetime diagram.
There are not two different definitions nor are there two different theories. You are asserting differences that simply don't exist. There is just one definition and one theory applied more generally than you are used to. Instead of asserting non-existent differences you would be better served to actually learn from the good material that has been presented.JM said:I note that there are two different meanings of 'Proper Time' used.
...
So your theory must be something different from his, mustn't it?