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Orders of magnitude (time)

From Wikipedia, the free encyclopedia
(Redirected from Exasecond)

An order of magnitude of time is usually a decimal prefix or decimal order-of-magnitude quantity together with a base unit of time, like a microsecond or a million years. In some cases, the order of magnitude may be implied (usually 1), like a "second" or "year." In other cases, the quantity name implies the base unit, like "century." In most cases, the base unit is seconds or years.

Base-10 logarithms of ten conventional units of time plotted against a linear scale.

Prefixes are not usually used with a base unit of years. Therefore, it is said "a million years" instead of "a megayear." Clock time and calendar time have duodecimal or sexagesimal orders of magnitude rather than decimal, e.g., a year is 12 months, and a minute is 60 seconds.

The smallest measurable increment of time is Planck time the time light takes to traverse the Planck distance, many decimal orders of magnitude smaller than a second.[1] However, the Planck time is not a quantum of time, as both general relativity and quantum mechanics treat time as continuous.[2]

The largest realized amount of time, based on known scientific data, is the age of the universe, about 13.8 billion years — the time since the Big Bang as measured in the cosmic microwave background rest frame.[3] Those amounts of time together span 60 decimal orders of magnitude. Metric prefixes are defined spanning 10−30 to 1030, 60 decimal orders of magnitude which may be used in conjunction with the metric base unit of second.

Metric units of time larger than the second are most commonly seen only in a few scientific contexts such as observational astronomy and materials science, although this depends on the author. For everyday use and most other scientific contexts, the common units of minutes, hours (3 600 s or 3.6 ks), days (86 400 s), weeks, months, and years (of which there are a number of variations) are commonly used. Weeks, months, and years are significantly variable units whose lengths depend on the choice of calendar and are often not regular even with a calendar, e.g., leap years versus regular years in the Gregorian calendar. This makes them problematic for use against a linear and regular time scale such as that defined by the SI, since it is not clear which version is being used.

Because of this, the table below does not include weeks, months, and years. Instead, the table uses the annum or astronomical Julian year (365.25 days of 86 400 seconds), denoted with the symbol a. Its definition is based on the average length of a year according to the Julian calendar, which has one leap year every four years. According to the geological science convention, this is used to form larger units of time by the application of SI prefixes to it; at least up to giga-annum or Ga, equal to 1 000 000 000 a (short scale: one billion years, long scale: one milliard years).

Less than one second

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Units of measure less than a second
Multiple
of a
second
Unit Symbol Definition Comparative examples & common units
10−44 Planck time tP Presumed to be the shortest theoretically measurable time interval
(but not necessarily the shortest increment of time—see quantum gravity)
10−14 qs: The length of one Planck time (tP = 5.39×10−44 s)[4] is the briefest physically meaningful span of time. It is the unit of time in the natural units system known as Planck units.
10−30 quectosecond qs Quectosecond, (quecto- + second), is one nonillionth of a second
10−27 rontosecond rs Rontosecond, (ronto- + second), is one octillionth of a second 300 rs: The mean lifetime of W and Z bosons
10−24 yoctosecond ys[5] Yoctosecond, (yocto- + second), is one septillionth of a second 86 ys: The estimated value on the half-life of isotope 5 of hydrogen (hydrogen-5)
143 ys: The half-life of the nitrogen-10 isotope of nitrogen
156 ys: The mean lifetime of a Higgs boson
10−21 zeptosecond zs Zeptosecond, (zepto- + second), is one sextillionth of one second 1.3 zs: Smallest experimentally controlled time delay in a photon field.[6]
2 zs: The representative cycle time of gamma ray radiation released in the decay of a radioactive atomic nucleus (here as 2 MeV per emitted photon)
4 zs: The cycle time of the zitterbewegung of an electron ()

247 zs: The experimentally measured travel time of a photon across a hydrogen molecule, "for the average bond length of molecular hydrogen" [7]

10−18 attosecond as One quintillionth of one second 12 as: The best timing control of laser pulses.[8]
43 as: The shortest X-ray laser pulse[9]
53 as: The shortest electron laser pulse[10][11]
10−15 femtosecond fs One quadrillionth of one second 1 fs: The cycle time for ultraviolet light with a wavelength of 300 nanometres; the time it takes light to travel a distance of 0.3 micrometres (μm).
7.58 fs: The period of vibration of a hydrogen molecule.
140 fs: The time needed for electrons to have localized onto individual bromine atoms 6 Ångstrom apart after laser dissociation of Br2.[12]
290 fs: The lifetime of a tauon
10−12 picosecond ps One trillionth of one second 1 ps: The mean lifetime of a bottom quark; the time needed for light to travel 0.3 millimetres (mm)
1 ps: The typical lifetime of a transition state one machine cycle by an IBM silicon-germanium transistor
109 ps: The period of the photon corresponding to the hyperfine transition of the ground state of caesium-133, and one 9,192,631,770th of one second by definition
114.6 ps: The time for the fastest overclocked processor as of 2014 to execute one machine cycle.[13]
696 ps: How much more a second lasts far away from Earth's gravity due to the effects of general relativity
10−9 nanosecond ns One billionth of one second 1 ns: The time needed to execute one machine cycle by a 1 GHz microprocessor
1 ns: The time light takes to travel 30 cm (11.811 in)
10−6 microsecond μs One millionth of one second 1 μs: The time needed to execute one machine cycle by an Intel 80186 microprocessor
2.2 μs: The lifetime of a muon
4–16 μs: The time needed to execute one machine cycle by a 1960s minicomputer
10−3 millisecond ms One thousandth of one second 1 ms: The time for a neuron in the human brain to fire one impulse and return to rest[14]
4–8 ms: The typical seek time for a computer hard disk
10−2 centisecond cs One hundredth of one second 1.6667 cs: The period of a frame at a frame rate of 60 Hz.
2 cs: The cycle time for European 50 Hz AC electricity

10–20 cs (0.1–0.2 s): The human reflex response to visual stimuli

10−1 decisecond ds One tenth of a second 1–4 ds (0.1–0.4 s): The length of a single blink of an eye[15]

More than one second

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In this table, large intervals of time surpassing one second are catalogued in order of the SI multiples of the second as well as their equivalent in common time units of minutes, hours, days, and Julian years.

Other
Multiples Unit Symbol
6×101 seconds 1 minute min
6×101 minutes 1 hour h (hr)
2.4×101 hours 1 day d

See also

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References

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  1. "Planck Time | COSMOS". astronomy.swin.edu.au. Retrieved 12 October 2021.
  2. Siegel, Ethan. "Even In A Quantum Universe, Space And Time Might Be Continuous, Not Discrete". Forbes.
  3. "WMAP- Age of the n Universe". wmap.gsfc.nasa.gov. Retrieved 12 October 2021.
  4. "CODATA Value: Planck time". The NIST Reference on Constants, Units, and Uncertainty. NIST. Retrieved 1 October 2011.
  5. The American Heritage Dictionary of the English Language: Fourth Edition. 2000. Available at: http://www.bartleby.com/61/21/Y0022100.html Archived 10 March 2008 at the Wayback Machine. Accessed 19 December 2007. note: abbr. ys or ysec
  6. Bocklage, Lars; et al. (29 January 2021). "Coherent control of collective nuclear quantum states via transient magnons". Science Advances. 7 (5) eabc3991. Bibcode:2021SciA....7.3991B. doi:10.1126/sciadv.abc3991. PMC 7846183. PMID 33514541.
  7. Grundmann, Sven; Trabert, Daniel; et al. (16 October 2020). "Zeptosecond birth time delay in molecular photoionization". Science. 370 (6514): 339–341. arXiv:2010.08298. Bibcode:2020Sci...370..339G. doi:10.1126/science.abb9318. PMID 33060359. S2CID 222412229. Retrieved 17 October 2020.
  8. "12 attoseconds is the world record for shortest controllable time". phys.org.
  9. Gaumnitz, Thomas; Jain, Arohi; Pertot, Yoann; Huppert, Martin; Jordan, Inga; Ardana-Lamas, Fernando; Wörner, Hans Jakob (2017). "Streaking of 43-attosecond soft-X-ray pulses generated by a passively CEP-stable mid-infrared driver". Optics Express. 25 (22): 27506–27518. Bibcode:2017OExpr..2527506G. doi:10.1364/OE.25.027506. hdl:20.500.11850/211882. PMID 29092222.
  10. Kim, H. Y.; Garg, M.; Mandal, S.; Seiffert, L.; Fennel, T.; Goulielmakis, E. (January 2023). "Attosecond field emission". Nature. 613 (7945): 662–666. arXiv:2206.08895. Bibcode:2023Natur.613..662K. doi:10.1038/s41586-022-05577-1. ISSN 1476-4687. PMC 9876796. PMID 36697865.
  11. "Attosecond electron pulses are claimed as shortest ever". Physics World. 17 February 2023. Retrieved 17 February 2023.
  12. Li, Wen; et al. (23 November 2010). "Visualizing electron rearrangement in space and time during the transition from a molecule to atoms". PNAS. 107 (47): 20219–20222. Bibcode:2010PNAS..10720219L. doi:10.1073/pnas.1014723107. PMC 2996685. PMID 21059945.
  13. Chiappetta, Marco (23 September 2011). "AMD Breaks 8 GHz Overclock with Upcoming FX Processor, Sets World Record. The record has been surpassed with 8794 MHz of overclocking with AMD FX 8350". HotHardware. Archived from the original on 10 March 2015. Retrieved 28 April 2012.
  14. "Notebook". www.noteaccess.com.
  15. Eric H. Chudler. "Brain Facts and Figures: Sensory Apparatus: Vision". Retrieved 10 October 2011.
  16. "YouTube Statistics and Your Best Video Length for Different Videos". Video Production Washington DC - MiniMatters. 11 March 2014.
  17. Alpha Collaboration; Andresen, G. B.; Ashkezari, M. D.; Baquero-Ruiz, M.; Bertsche, W.; Bowe, P. D.; Butler, E.; Cesar, C. L.; Charlton, M.; Deller, A.; Eriksson, S.; Fajans, J.; Friesen, T.; Fujiwara, M. C.; Gill, D. R.; Gutierrez, A.; Hangst, J. S.; Hardy, W. N.; Hayano, R. S.; Hayden, M. E.; Humphries, A. J.; Hydomako, R.; Jonsell, S.; Kemp, S. L.; Kurchaninov, L.; Madsen, N.; Menary, S.; Nolan, P.; Olchanski, K.; et al. (5 June 2011). "Confinement of antihydrogen for 1,000 seconds". Nature Physics. 7 (7): 558–564. arXiv:1104.4982. Bibcode:2011NatPh...7..558A. doi:10.1038/nphys2025. S2CID 17151882.
  18. Falk, Dan (2013). In search of time the science of a curious dimension. New York: St. Martin's Press. ISBN 978-1-4299-8786-8.
  19. G. Jeffrey MacDonald "Does Maya calendar predict 2012 apocalypse?" USA Today 27 March 2007.
  20. Nishino, H. et al. (Super-K Collaboration) (2009). "Search for Proton Decay via p+
    e+
    π0
    and p+
    μ+
    π0
    in a Large Water Cherenkov Detector". Physical Review Letters. 102 (14) 141801. arXiv:0903.0676. Bibcode:2009PhRvL.102n1801N. doi:10.1103/PhysRevLett.102.141801. PMID 19392425. S2CID 32385768.
  21. Adams, Fred C.; Laughlin, Gregory (1 April 1997). "A dying universe: the long-term fate and evolution of astrophysical objects". Reviews of Modern Physics. 69 (2): 337–372. arXiv:astro-ph/9701131. Bibcode:1997RvMP...69..337A. doi:10.1103/revmodphys.69.337. ISSN 0034-6861. S2CID 12173790.
  22. 1 2 3 Page, Don N. (15 January 1976). "Particle emission rates from a black hole: Massless particles from an uncharged, nonrotating hole". Physical Review D. 13 (2). American Physical Society (APS): 198–206. Bibcode:1976PhRvD..13..198P. doi:10.1103/physrevd.13.198. ISSN 0556-2821. See in particular equation (27).
  23. Dyson, Freeman J. (1979). "Time without end: Physics and biology in an open universe". Reviews of Modern Physics. 51 (3): 447–460. Bibcode:1979RvMP...51..447D. doi:10.1103/RevModPhys.51.447.
  24. 1 2 3 Page, Don N. (25 November 1994). "Information Loss in Black Holes and/or Conscious Beings?". In Fulling, S.A. (ed.). Heat Kernel Techniques and Quantum Gravity. Discourses in Mathematics and its Applications. Texas A&M University. p. 461. arXiv:hep-th/9411193. Bibcode:1994hep.th...11193P. ISBN 978-0-9630728-3-2. S2CID 18633007.
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