Movatterモバイル変換


[0]ホーム

URL:


 


Time is defined so that
motion looks simple.

 Misner, Thorne and Wheeler
(Gravitation, 1973)
 
The only reason for time is so that 
everything doesn't happen at once.

Albert Einstein (1879-1955)
 Michon
 

 J. Henri Poincare   (1854-1912)Related articles on this site:

Related Links (Outside this Site)

Mahabharata Time-Travel (c. 400 BC).  |  Urashima Taro  (c. 1720).
Rip Van Winkle (1819) by Washington Irving (1783-1859).
 
Novus  |  MicroclocksatNIST
Chaos, Entropy and the Arrow of Time by Peter Coveney  (1990-09-29).

 Ludwig Boltzmann (1844-1906): The genius of disorder  (2007).
Stopping Time (55:54) by Eric Mazur  (Perimeter Institute,2007-12-01).
Quantum Origins of Space and Time (2010-05-05) by Renate Loll  (b. 1962).
How to Build a Time Machine (1:07:05) by Paul Davies  (SETI Talks, 2012).
Does Time Exist? (54:15) by Julian Barbour  (PI, 2012).
The B-Theory of Time (32:42) by Brian Greene  (2014).
Why is Time a One-way Street? (1:13:38) by Lenny Susskind  (2013-06-26).
Parler du temps de manière formelle (1:42:46) by Gérard Berry  (2013-11-26).
Entropy and the Arrow of Time (21:09) by Alan Guth  (FQXi, 2014).
La gravité quantique tue le temps (1:05:57 French) by Carlo Rovelli  (2014-04).
 
Peut on renverser le temps (1:65:42 French)
by Roger Maynard. 1928-2015  (Rennes, 2015-04-22).
 
Solution to the Grandfather Paradox (2:47) by Henry Reich  (2016-03-13).
 
This Particle Breaks Time Symmetry (8:59) by Derek Muller  (2017-12-12).
Superluminal Time Travel  by Matt O'Dowd  (PBS Space Time, 2017-03-22).
How the Quantum Eraser Rewrites the Past  by Matt O'Dowd  (2016-08-10).
Quantum Eraser Challenge  (2016-08-17)  |   5th force +Answer  (2016-09-07)
Delayed-Choice Quantum Eraser  (10:28) by Arvin Ash  (2019-04-12)
 
Origin of the Universe & the Arrow of Time (55:34) Sean Carroll  (2010-12-13).
Quantum Emergence of Time (58:37)  by Alain Connes  (IHES, 2015-04-09).
Events and the Nature of Time (7:47) Seth Lloyd  (Closer to Truth, 2017-10-09).
Physics and Philosophy of Time (54:53)  by Carlo Rovelli (RI, 2018-04-11).
Metatemps (42:22)  by Anatole Khélif  (2017-12).
Le Quantique, les Maths et le Temps (1:05:57)  by Alain Connes  (2018-04-30).
Did Time Start at the Big Bang? (13:33)  by Matt O'Dowd  (2019-07-18).
Le temps peut-il émerger d'un monde sans temps?(1:05:57)  by Anatole Khélif  (Ideas in Science, 2019-12-23).
 
How to zero-beat WWV to adjust afrequency counter  by  W2AEW.
I need 10MHz - how hard can it be! by  Gerry Sweeney.
Enclosure for the FE-5680A :  Signal distribution  |  Cooling & PPS display.
FE-5680A Rubidium Frequency Standard(RFS)  byDavid L. Jones.
Rubidium Frequency Standardvs. GPS Disciplined Oscillator  by  Stephen Ong.
Trimble Thunderbolt GPSDO  (K4DEN & Adam Maurer = VK4GHZ)  1 |2 |3 |4
Gravity Detection Using a Frequency Counter! by David L. Jones.
 
Temps & distance  (1:31:21,1:05:30Marc Lachièze-Rey  (Feb. 2015)
Biggest Idea #5:  Time (54:30) by Sean M. Carroll  (2020-04-21).
Full Discrete Geometry (1:33:53) by Tim Maudlin  (Sean Carroll's Landscape #241, 2023-06-26).

 
border
border

The Arrow of Time

It seems that there is a  "Chronology Protection Agency"
which preventsthe appearance of closed timelike curves
and so makes the Universe safe for historians.

Stephen Hawking  (1942-2018)  in 1992

Tom H  (Yahoo!2007-05-15

Here's one of my favorite quotes It's a translation by John A. Wheeler of a provocative statement made by J. Henri Poincaré:

Time is defined so that motion looks simple.

In other words,"time" is defined as the independent variable which makes the equations of mechanics take on a simple form. This is an operational definition which was designed in a simpler era of "classical" physics. It still holds for nonrelativistic quantum theory, where time remains an old-fashioned "independent variable".

However, at a deeper level of understanding, time cannot be simply such an "independent" parameteragainst which events are recorded. Instead, it's a component of spacetime (to a degree, time and space can be traded for each other). This has profound implications for our modern descriptions of the physical world. Especially in the quantum realm.


Tom H  (Yahoo!2007-07-08
What was there before  the Big Bang took place?

Time is just another coordinate of spacetime, so it has to unfold together with the other dimensions. Time is created with the rest of space; there was simply no "before". There was no "instant" of creation and there was no "location" for the primordial explosion either. The center was everywhere.  It still is.

A geometrical analogy might help: Think of the surface of a sphere and imagine latitude is "time". There's nothing north of the North Pole, is there?

This analogy with a sphere has other nice features. In particular, the North Pole is not very different from nearby points; it's just an artifact created from the way we measure things. So too, the "instant" of creation is not well defined; it depends on the speed and locationof the vantage point from which the (theoretical) mesurement is made. All of this is without even considering the quantum aspectswhich nobody really understands (yet?). Does this blow you mind?  Well, it should. It blows everybody's mind.

Concerning, the "stuff" the Universe was made from, the answer is also weird... The key remark is that gravitation has more negative energy when everything is packed tight. Think about everyday experience: energy is released when an object is dropped, so there's less energy (more "negative energy") when the Earth and the object are closer together. At the scale of the entire Universe, the numbers are mind-boggling: The positive energy in the Universe today (the energy of radiation and matter according to E=mc) seems to balance exactly the negative energy of gravitation. Therefore, it looks like the Universe could have been created from zero energy,from absolutely nothing!

Come to think of it, it MUST have been so,or else how would you explain the "manufacture" of the original stuff itself? This framework makes the Universe explainable (in principle, at least) without violating physical laws. Ultimately, we can hope to be left with only one question: "Why?" or "What caused it?" That last question, however, is not a scientific one (no matter how interesting it might be).


blue22op (Yahoo!2007-05-15
Is there a time machine in the process of being made?

I grieved to think how brief the dream of the human intellect had been.
H.G. Wells (1866-1946)  The Time Machine  (1895)

Like perpetual motion, time travel is both unavoidable and impossible.

Microscopically, time-travel is unavoidable. Elementary particles routinely go backward in time;there's no difference  between a particlemoving forward in time and its antiparticle  moving backward in time. A particle-antiparticle creation or anihilation may also be described as a particle reversing its direction in time.

Now, can we harness this basic mechanism to make coherent systemsconsisting of many particles (and carrying definite information with them) go back in time?

The answer is as much of a "no" as what applies to the related question ofwhether it's possible to transform brownian motion into coherent motion (that would be called perpetual motion "of the second kind"). If you don't believe in one, you don't believe in the other...

Of course, science is not supposed to be about beliefs, but it is (to some degree). It's a much more productive belief (from a scientific standpoint) to assume that perpetual motion can't exist than the opposite... In one case, you'll refine the basic laws of thermodynamics. In the other case, you may waste your life on doomed tinkering. Similarly, the impossibility of time-travel imposes useful constraintson the very laws of fundamental physics we are aiming to formulate. It's almost certainly the more useful of two possible beliefs,to put it in provocative terms.

This does not mean you can't have fun thinking about the paradoxes of time-travel. However, those very paradoxes should be an indication that attempts at buildingan actual time-machine are as doomed as attempts to build a perpetual motion machine. Or vice-versa.


(2003-11-03)  
In a predictable Universe, the past and the future are alike.

[For an intellect which would know all positions and velocities]
nothingcould be uncertain and the future,
just like the past, would be present before its eyes.

Pierre Simonde Laplace  (1749-1827)

The "intellect" so introduced by the Marquis de Laplace  (Essai Philosophique sur les probabilités, 1814) is now dubbed Laplace's Demon. Its existence, within this world or outside of it, would make the Universefrozen in spacetime, like a movie already filmed.

What Laplace envisioned was a God who could compute the past and the futurefrom a snapshot of the present  (according to Newtonian mechanics,perfect knowledge of all positions and velocities at one instant makes thefuture entirely predictable and allows the deduction of what the past was exactly like).

Modern quantum mechanics precludes that. Perfect knowledge of everything that ever was and everwill be, simply cannot be deduced from anything but prior knowledge of the same. Not even the past is certain because of the unavoidable existenceof a minute influence of the future on the past. Laplace's Demon is a deep fallacy.


(2014-08-11)  

Le temps est un phénomène émergent qui
qui vient de notre méconnaissance des détails.

Alain Connes,  1947-  (interview,2014-02-05)

Alain Connes  considers that the compact operators  on theHilbert spacesused in quantum mechanics may play a rôle similar to the infinitesimals used in a bygone era to embody the continuity or space or time. In the noncommutative case, Connes found the emergence of a single-parameter concept which couldbe construed as the passage of thermodynamical time when the notion isn't postulated a priori  as a fundamental parameter.

Replacing Infinitesimals with Compact Operators :

 Come back later, we're still working on this one...


(2014-06-13)  
Very low phase noise can be achieved.


(2014-06-12)  
Ultra-precise real-time clock  (RTC)  and frequency standard  (10 MHz).

The Global Positioning System  (GPS)  is based on a networkof at least 24 active satellites with cesium atomic clocks onboard. Each satellite keeps broadcasting its own time and space coordinates. If a receiver gets at least 3 such signals simultaneously, it can work out its ownlocation in space and also synchronize its clock with the broadcasted time. This last function is our main concern here...

Since 1972, all time systems are synchronized  to a whole number of seconds
SystemZeroLeap secondsDefinition
GPS1980-01-06 00:00 UTCNoTAI 19 s
UTC1972-01-01 00:00 UTCYes(TAI37 s)
Loran-C1958-01-01 00:00 UTCNoTAI 60 s

As time goes on, the above table will always remain correct, except for the number of seconds separating UTC and TAI (see link provided for the latest update)  because of the so-called leap seconds  which are inserted into UTC at certain dates to best fitthe tropical seasons on Earth, deduced from astronomical observations.

Universal Time, Coordinated  (UTC)differs from International Atomic Time ( TAI =Temps Atomique International ) by a whole number of seconds adjusted to avoid drifting away from solar time. Mean solar time is based on astronomical observations only. Our best estimate of that is UT1, published by the BIPM to a resolution of 100 ms as the current difference (DUT1) between UT1 and UTC (it's actually known to a precision of 2 ms or so).

Since 1972, UTC has been kept within  900 ms  of UT1  ("solar time") by the insertion of leap seconds  at the end of certain predetermined days (published at least 6 months in advance). In the UTC system, the last minute of December 31 or June 30 may last 61 seconds.

The decision to insert a leap second or not at those dates is based on astronomical observationsand it's the official duty of the International Earth Rotation Service (IERS)  to do so.  So far, leap seconds have been inserted at the end of the following UTC months:

UTC months ending with a  61-second  minute   (J = June,  D = December)
 0123456789Total
1970-1979 DJDDDDDDDD10
1980-1989 JJJ J D D6
1990-1999D JJJD JD 7
2000-2009     D  D 2
2010-2019  J  JD   3
2020-2029  

One great unsung feature of some satellite positioning receivers is an ultra-precise pulse per second  (PPS) outpout  (10% duty cycle). It's available, in particular, onversion 3 of Adafruit's breakout boardfeaturing MediaTek's  MT3339 satellite positioning receiver on a chip. The long-term stability of this signal matches that of the GPS itself, which isnow synchronized with the network of atomic clocks that provides mankind's official time.

For metrological purposes, we can't rely directly on the pulses in that signal,because of the jitter described below. Instead, we'll use it to train a good oven controlled crystal oscillator (OCXO)monitored over long periods of time  (minutes, hours, days, months or even years) to cancel all known sources of frequency drift. This setup is known as a GPS Disciplined Oscillator  (GPSDO). One advantage of using a microcontroller for this task is the ability to loglong-term data to monitor the aging of the ovenized crystal itself,via the long-term evolution of the control voltage necessaryto maintain the OCXO synchronized with GPS time.

To take full advantage of the PPS signal from this receiver, we must first understandwhat it really is.  If all you want is to blink an LED with it, all you needto know is that it's a  1 Hz  digital signal  (3.3 V logic) with a  10 %  duty cycle (i.e.,  100 ms  positive pulses one second apart). For metrological applications, we examine the timing much more precisely:

 Synchronizing a 10MHz oscillator (OCXO)  to the PPS signal from a GPS receiver  The yellow trace at left is the rising edge of the PPS signal,which is used to trigger the scope  (whose screen is thus updated once per second).
 
The blue trace is a 10 MHz local oven-controlled crystal oscillator (OCXO)  trimmed to be GPS-synchronized in the long run. Here, we may regard this OCXO as a rock-stable time reference.

What's observed is that the blue trace wanders about slowly across the screenbut never for long...  It jumps back and forth in either direction as needed to keep itsorigin within an interval of about half a division  (that's 10 ns).

Therefore, the yellow trace has a jitter of about10 ns.  (which is observed as a jitter of the blue trace only becausewe had to trigger on the yellow one). This jitter is clearly due to the fact that the PPS signal is produced by a digitalsystem with a clock rate of 100 MHz or so  (or a multiple thereof). Triggering on the falling edge causes exactly the same jitter,possibly [??] because the pulse width is a whole number of cycles.

10 MHz  [ 1 + (200 ns) / (290 s) ]   =  10000000.0069 Hz

From a design standpoint, I find it particularly appealing to use the 10 MHz signalfrom the OCXO to generate the system clock of the microcontroller whichkeeps the OCXO synchronized with GPS. This way, the frequency of the OCXO itself can be measured with calibratedsoftware that counts the number of clock cycles between PPS pulses. For best accuracy, we don't actually count clock cycles but determine what type of erroris made by sampling the signal at intervals of 10000000 clock cycles.

That information can then be used to control a digital-to-analog converter (DAC)  whose output will adjust the frequency of the OCXO until the period ofthe PPS signal doesn't drift away from 10 million clock cycles for a long time.

This way, the frequency of the OCXO can be readily estimated with a precision equal to 55 ns  (half the sum of the jitter and the clock period)  divided bythe duration of measurement.  The precision is thus 1 ppb after just one minuteand could potentially be 1440 times less in a whole day (at which point the slight unstabilities of the OCXO come into play).

A common low-precision DAC  (10-bit wide)  can be used in this high-precision application,by making digital trimming a mere correction to good manual trimming. To do so, do your manual trimming with a potentiometer whose wiper isconnected via some fairly large resistor to the output of the DAC when it's in thecenter of its range  (or else temporarily connect the resistor towhatever voltage that corresponds to). The larger the resistor  (compared to the value of the trimming potentiometer) the smaller the adjustement per step will be.

The microcontroller should be able to determine, by trial and error,whether an increase in voltage increases frequency or decreases it. It should also be able to request manual trimming when the controlvoltage needed is out the DAC's range. When that condition occurs because of aging, the microntroller will know in whatdirection the crystal ages and can set the DAC near the opposite endbefore requesting a manual trim  (that will make future trim requests less frequent).

 Come back later, we're still working on this one...


(2019-06-11)  
The time kept by a clock in free fall,  at rest in its own local CMB.

 Come back later, we're still working on this one...

border
border
visits since April 4, 2010
 (c) Copyright 2000-2023, Gerard P. Michon, Ph.D.

[8]ページ先頭

©2009-2025 Movatter.jp