The second (symbol: s) is a
unit of time derived from the division of the
day
A day is the time period of a full rotation of the Earth with respect to the Sun. On average, this is 24 hours (86,400 seconds). As a day passes at a given location it experiences morning, afternoon, evening, and night. This daily cycle ...
, first into
hour
An hour (symbol: h; also abbreviated hr) is a unit of time historically reckoned as of a day and defined contemporarily as exactly 3,600 seconds. There are 60 minutes in an hour, and 24 hours in a day.
The hour was initially established in t ...
s, then into
minute
A minute (symbol: min) is a unit of time defined as equal to 60 seconds. The prime symbol is also sometimes used informally to denote minutes.
In the Coordinated Universal Time, UTC time standard, a minute on rare occasions has 61 seconds, a co ...
s, and lastly into seconds, for a total of 24 × 60 × 60 = seconds per day. That definition, based on of a
rotation of the Earth, is still used by the
Universal Time 1 (UT1) system.
The current and formal definition in the
International System of Units (SI) is more precise:
The second ..is defined by taking the fixed numerical value of the caesium
Caesium (IUPAC spelling; also spelled cesium in American English) is a chemical element; it has Symbol (chemistry), symbol Cs and atomic number 55. It is a soft, silvery-golden alkali metal with a melting point of , which makes it one of only f ...
(Cs) frequency, Δ''ν''Cs, the unperturbed ground-state hyperfine transition frequency of the Cs-133 atom, to be when expressed in the unit hertz, which is equal to s−1.
This current definition was adopted in 1967 when it became feasible to define the second based on fundamental properties of nature with
caesium clocks. As the speed of Earth's rotation varies and is
slowing ever so slightly, a
leap second is added at irregular intervals to
civil time to keep clocks in sync with Earth's rotation.
Etymology
"Minute" comes from , meaning 'first small part', i.e. first division of the hourdividing it into sixty, and "second" comes from , 'second small part', dividing again into sixty.
Uses
Analog clocks and
watch
A watch is a timepiece carried or worn by a person. It is designed to maintain a consistent movement despite the motions caused by the person's activities. A wristwatch is worn around the wrist, attached by a watch strap or another type of ...
es often have sixty tick marks on their faces, representing seconds (and minutes), and a "second hand" to mark the passage of time in seconds. Digital clocks and watches often have a two-digit seconds counter.
SI prefixes are frequently combined with the word ''second'' to denote subdivisions of the second: milliseconds (thousandths), microseconds (millionths), nanoseconds (billionths), and sometimes smaller units of a second. Multiples of seconds are usually counted in hours and minutes. Though SI prefixes may also be used to form multiples of the second such as kiloseconds (thousands of seconds), such units are rarely used in practice. An everyday experience with small fractions of a second is a 1-gigahertz microprocessor that has a cycle time of 1 nanosecond. Camera
shutter speeds are often expressed in fractions of a second, such as second or second.
Sexagesimal
Sexagesimal, also known as base 60, is a numeral system with sixty as its base. It originated with the ancient Sumerians in the 3rd millennium BC, was passed down to the ancient Babylonians, and is still used—in a modified form—for measuri ...
divisions of the day from a calendar based on astronomical observation have existed since the third millennium BC, though they were not seconds as we know them today. Small divisions of time could not be measured back then, so such divisions were mathematically derived. The first timekeepers that could count seconds accurately were pendulum clocks invented in the 17th century. Starting in the 1950s,
atomic clocks became better timekeepers than Earth's rotation, and they continue to set the standard today.
Clocks and solar time
A mechanical clock, which does not depend on measuring the relative rotational position of the Earth, keeps uniform time called ''mean time'', within whatever accuracy is intrinsic to it. That means that every second, minute and every other division of time counted by the clock has the same duration as any other identical division of time. A
sundial
A sundial is a horological device that tells the time of day (referred to as civil time in modern usage) when direct sunlight shines by the apparent position of the Sun in the sky. In the narrowest sense of the word, it consists of a fla ...
, which measures the relative position of the Sun in the sky called ''apparent time'', does not keep uniform time. The time kept by a sundial varies by time of year, meaning that seconds, minutes and every other division of time is a different duration at different times of the year. The time of day measured with mean time versus apparent time may differ by as much as 15 minutes, but a single day differs from the next by only a small amount; 15 minutes is a cumulative difference over a part of the year. The effect is due chiefly to the obliqueness of Earth's axis with respect to its
orbit
In celestial mechanics, an orbit is the curved trajectory of an object under the influence of an attracting force. Alternatively, it is known as an orbital revolution, because it is a rotation around an axis external to the moving body. Ex ...
around the Sun.
The difference between apparent solar time and mean time was recognized by astronomers since antiquity, but prior to the invention of accurate mechanical clocks in the mid-17th century, sundials were the only reliable timepieces, and apparent solar time was the only generally accepted standard.
Events and units of time in seconds
Fractions of a second are usually denoted in decimal notation, for example 2.01 seconds, or two and one hundredth seconds. Multiples of seconds are usually expressed as minutes and seconds, or hours, minutes and seconds of clock time, separated by colons, such as 11:23:24, or 45:23 (the latter notation can give rise to ambiguity, because the same notation is used to denote hours and minutes). It rarely makes sense to express longer periods of time like hours or days in seconds, because they are awkwardly large numbers. For the metric unit of second, there are
decimal prefixes representing 10 to 10 seconds.
Some common units of time in seconds are: a minute is 60 seconds; an hour is 3,600 seconds; a day is 86,400 seconds; a week is 604,800 seconds; a year (other than
leap years) is 31,536,000 seconds; and a (
Gregorian
Gregorian may refer to:
*The thought or ideology of Pope Gregory I or Pope Gregory VII (also called ''Gregorianism'')
*Things named for Pope Gregory I:
** Gregorian chant, the central tradition of Western plainchant, a form of monophonic, unacc ...
) century averages 3,155,695,200 seconds; with all of the above excluding any possible
leap seconds. In astronomy, a
Julian year is precisely 31,557,600 seconds.
Some common events in seconds are: a stone falls about 4.9 meters from rest in one second; a pendulum of length about one meter has a swing of one second, so pendulum clocks have pendulums about a meter long; the fastest human sprinters run 10 meters in a second; an ocean wave in deep water travels about 23 meters in one second; sound travels about 343 meters in one second in air; light takes 1.3 seconds to reach Earth from the surface of the Moon, a distance of 384,400 kilometers.
Other units incorporating seconds
A second is directly part of other units, such as
frequency
Frequency is the number of occurrences of a repeating event per unit of time. Frequency is an important parameter used in science and engineering to specify the rate of oscillatory and vibratory phenomena, such as mechanical vibrations, aud ...
measured in
hertz (
inverse seconds or s
−1),
speed
In kinematics, the speed (commonly referred to as ''v'') of an object is the magnitude of the change of its position over time or the magnitude of the change of its position per unit of time, it is thus a non-negative scalar quantity. Intr ...
in meters per second, and
acceleration
In physics, acceleration is a measure of how fast and in what direction an object's speed and direction of motion are changing. It is defined as the rate of change of the velocity. Like velocity, acceleration has a magnitude and a direct ...
in meters per second squared. The metric system unit
becquerel, a measure of radioactive decay, is measured in inverse seconds and higher powers of second are involved in
derivatives of acceleration such as
jerk. Though many derivative units for everyday things are reported in terms of larger units of time, not seconds, they are ultimately defined in terms of the SI second; this includes time expressed in hours and minutes, velocity of a car in kilometers per hour or miles per hour, kilowatt hours of electricity usage, and speed of a turntable in rotations per minute.
Moreover, most other
SI base units are defined by their relationship to the second: the
meter is defined by setting the
speed of light (in vacuum) to be 299 792 458 m/s, exactly; definitions of the SI base units
kilogram,
ampere
The ampere (symbol: A), often shortened to amp,SI supports only the use of symbols and deprecates the use of abbreviations for units. is the unit of electric current in the International System of Units (SI). One ampere is equal to 1 cou ...
,
kelvin, and
candela also depend on the second. The only base unit whose definition does not depend on the second is the
mole, and only two of the 22 named derived units,
radian and
steradian, do not depend on the second either.
Timekeeping standards
A set of atomic clocks throughout the world keeps time by consensus: the clocks "vote" on the correct time, and all voting clocks are steered to agree with the consensus, which is called
International Atomic Time (TAI). TAI "ticks" atomic seconds.
Civil time is defined to agree with the rotation of the Earth. The international standard for timekeeping is
Coordinated Universal Time (UTC). This time scale "ticks" the same atomic seconds as TAI, but inserts or omits
leap seconds as necessary to correct for variations in the rate of rotation of the Earth.
A time scale in which the seconds are not exactly equal to atomic seconds is UT1, a form of
universal time. UT1 is defined by the rotation of the Earth with respect to the Sun, and does not contain any leap seconds.
UT1 always differs from UTC by less than a second.
Optical lattice clock
While they are not yet part of any timekeeping standard, optical lattice clocks with frequencies in the visible light spectrum now exist and are the most accurate timekeepers of all. A
strontium clock with frequency 430
THz, in the red range of visible light, during the 2010s held the accuracy record: it gains or loses less than a second in 15 billion years, which is longer than the estimated age of the universe. Such a clock can measure a change in its elevation of as little as 2 cm by the change in its rate due to
gravitational time dilation.
History of definition
There have only ever been three definitions of the second: as a fraction of the day, as a fraction of an extrapolated year, and as the microwave frequency of a
caesium
Caesium (IUPAC spelling; also spelled cesium in American English) is a chemical element; it has Symbol (chemistry), symbol Cs and atomic number 55. It is a soft, silvery-golden alkali metal with a melting point of , which makes it one of only f ...
atomic clock, which have each realized a sexagesimal division of the day.
Sexagesimal divisions of calendar time and day
Civilizations in the classic period and earlier created divisions of the calendar as well as arcs using a sexagesimal system of counting, so at that time the second was a sexagesimal subdivision of the day (ancient second=), not of the hour like the modern second (=). Sundials and water clocks were among the earliest timekeeping devices, and units of time were measured in degrees of arc. Conceptual units of time smaller than realisable on sundials were also used.
There are references to "second" as part of a lunar month in the writings of natural philosophers of the Middle Ages, which were mathematical subdivisions that could not be measured mechanically.
Fraction of solar day
The earliest mechanical clocks, which appeared starting in the 14th century, had displays that divided the hour into halves, thirds, quarters and sometimes even 12 parts, but never by 60. In fact, the hour was not commonly divided in 60 minutes as it was not uniform in duration. It was not practical for timekeepers to consider minutes until the first mechanical clocks that displayed minutes appeared near the end of the 16th century. Mechanical clocks kept the ''mean time'', as opposed to the ''apparent time'' displayed by
sundial
A sundial is a horological device that tells the time of day (referred to as civil time in modern usage) when direct sunlight shines by the apparent position of the Sun in the sky. In the narrowest sense of the word, it consists of a fla ...
s.
By that time, sexagesimal divisions of time were well established in Europe.
The earliest clocks to display seconds appeared during the last half of the 16th century. The second became accurately measurable with the development of mechanical clocks. The earliest spring-driven timepiece with a second hand that marked seconds is an unsigned clock depicting
Orpheus in the Fremersdorf collection, dated between 1560 and During the third quarter of the 16th century,
Taqi al-Din built a clock with marks every minute.
In 1579,
Jost Bürgi built a clock for
William of Hesse that marked seconds.
In 1581,
Tycho Brahe redesigned clocks that had displayed only minutes at his observatory so they also displayed seconds, even though those seconds were not accurate. In 1587, Tycho complained that his four clocks disagreed by plus or minus four seconds.
In 1656, Dutch scientist
Christiaan Huygens
Christiaan is a Dutch, Flemish, and Afrikaans male given name. An archaic spelling of the name was Christiaen with "ae" to indicate the long sound "a".
People with the name include:
*Christiaan van Adrichem (1533–1585), Dutch Catholic priest a ...
invented the first pendulum clock. It had a pendulum length of just under a meter, giving it a swing of one second, and an escapement that ticked every second. It was the first clock that could accurately keep time in seconds. By the 1730s, 80 years later,
John Harrison
John is a common English name and surname:
* John (given name)
* John (surname)
John may also refer to:
New Testament
Works
* Gospel of John, a title often shortened to John
* First Epistle of John, often shortened to 1 John
* Second Epis ...
's maritime chronometers could keep time accurate to within one second in 100 days.
In 1832,
Gauss proposed using the second as the base unit of time in his millimeter–milligram–second
system of units. The
British Association for the Advancement of Science (BAAS) in 1862 stated that "All men of science are agreed to use the second of mean solar time as the unit of time." BAAS formally proposed the
CGS system in 1874, although this system was gradually replaced over the next 70 years by
MKS units. Both the CGS and MKS systems used the same second as their base unit of time. MKS was adopted internationally during the 1940s, defining the second as of a mean solar day.
Fraction of an ephemeris year
Sometime in the late 1940s, quartz crystal oscillator clocks with an operating frequency of ~100 kHz advanced to keep time with accuracy better than 1 part in 10
8 over an operating period of a day. It became apparent that a consensus of such clocks kept better time than the rotation of the Earth.
Metrologists also knew that Earth's orbit around the Sun (a year) was much more stable than Earth's rotation. This led to proposals as early as 1950 to define the second as a fraction of a year.
The Earth's motion was described in
Newcomb's ''Tables of the Sun'' (1895), which provided a formula for estimating the motion of the Sun relative to the epoch 1900 based on astronomical observations made between 1750 and 1892.
This resulted in adoption of an
ephemeris time scale expressed in units of the
sidereal year at that epoch by the
IAU in 1952. This extrapolated timescale brings the observed positions of the celestial bodies into accord with Newtonian dynamical theories of their motion.
In 1955, the
tropical year, considered more fundamental than the sidereal year, was chosen by the IAU as the unit of time. The tropical year in the definition was not measured but calculated from a formula describing a mean tropical year that decreased linearly over time.
In 1956, the second was redefined in terms of a year relative to that
epoch. The second was thus defined as "the fraction of the tropical year for 1900
January 0 at 12 hours ephemeris time".
This definition was adopted as part of the
International System of Units in 1960.
Atomic definition
Even the best mechanical, electric motorized and quartz crystal-based clocks develop discrepancies from environmental conditions; far better for timekeeping is the natural and exact "vibration" in an energized atom. The frequency of vibration (i.e., radiation) is very specific depending on the type of atom and how it is excited. Since 1967, the second has been defined as exactly "the duration of 9,192,631,770
periods of the radiation corresponding to the transition between the two
hyperfine levels of the ground state of the
caesium-133 atom". This length of a second was selected to correspond exactly to the length of the ephemeris second previously defined. Atomic clocks use such a frequency to measure seconds by counting cycles per second at that frequency. Radiation of this kind is one of the most stable and reproducible phenomena of nature. The current generation of atomic clocks is accurate to within one second in a few hundred million years. Since 1967, atomic clocks based on atoms other than caesium-133 have been developed with increased precision by a factor of 100. Therefore a new definition of the second is planned.
[Draft resolutions](_blank)
of the 27. General Conference on Weights and Measures in November 2022, Section E, p. 25
Atomic clocks now set the length of a second and the
time standard for the world.
Table
Future redefinition
In 2022, the best realisation of the second is done with caesium primary standard clocks such as IT-CsF2, NIST-F2, NPL-CsF2, PTB-CSF2, SU–CsFO2 or SYRTE-FO2. These clocks work by laser-cooling a cloud of caesium atoms to one microkelvin (10
−6 K) in a magneto-optic trap. These cold atoms are then launched vertically by laser light. The atoms then undergo Ramsey excitation in a microwave cavity. The fraction of excited atoms is then detected by laser beams. These clocks have systematic uncertainty, which is equivalent to 50 picoseconds per day. A system of several fountains worldwide contribute to International Atomic Time. These caesium clocks also underpin optical frequency measurements.
Optical clocks are based on forbidden optical transitions in ions or atoms. They have frequencies around , with a natural linewidth
of typically 1 Hz, so the
Q-factor is about , or even higher. They have better stabilities than microwave clocks, which means that they can facilitate evaluation of lower uncertainties. They also have better time resolution, which means the clock "ticks" faster.
Optical clocks use either a single ion, or an
optical lattice with – atoms.
Rydberg constant
A definition based on the
Rydberg constant Rydberg may refer to:
People
*Gerda Rydberg (1858–1928), Swedish artist better known as Gerda Tirén
*Jan Rydberg, (1923-2015), Swedish chemist who worked on nuclear chemistry and recycling at Chalmers University of Technology
*Johannes Rydberg (1 ...
would involve fixing the value to a certain value:
. The Rydberg constant describes the energy levels in a hydrogen atom with the nonrelativistic approximation
.
The only viable way to fix the Rydberg constant involves trapping and cooling hydrogen. This is difficult because it is very light and the atoms move very fast, causing Doppler shifts. The radiation needed to cool the hydrogen – – is also difficult. Another hurdle involves improving the uncertainty in QED calculations, specifically the
Lamb shift in the 1s-2s transition of the hydrogen atom.
Requirements
A redefinition must include improved optical clock reliability. TAI must be contributed to by optical clocks before the BIPM affirms a redefinition. A consistent method of sending signals must be developed before the second is redefined, such as
fiber-optics.
SI multiples
SI prefixes are commonly used for times shorter than one second, but rarely for multiples of a second. Instead, certain
non-SI units are permitted for use with SI:
minute
A minute (symbol: min) is a unit of time defined as equal to 60 seconds. The prime symbol is also sometimes used informally to denote minutes.
In the Coordinated Universal Time, UTC time standard, a minute on rare occasions has 61 seconds, a co ...
s,
hour
An hour (symbol: h; also abbreviated hr) is a unit of time historically reckoned as of a day and defined contemporarily as exactly 3,600 seconds. There are 60 minutes in an hour, and 24 hours in a day.
The hour was initially established in t ...
s,
day
A day is the time period of a full rotation of the Earth with respect to the Sun. On average, this is 24 hours (86,400 seconds). As a day passes at a given location it experiences morning, afternoon, evening, and night. This daily cycle ...
s, and in astronomy
Julian years.
[ Reprinted from the "IAU Style Manual" by G.A. Wilkinson, Comm. 5, in IAU Transactions XXB (1987).]
See also
*
Caesium standard
Caesium (IUPAC spelling; also spelled cesium in American English) is a chemical element; it has Symbol (chemistry), symbol Cs and atomic number 55. It is a soft, silvery-golden alkali metal with a melting point of , which makes it one of only f ...
*
Orders of magnitude (time)
*
Seconds pendulum
*
Time standard
Notes
References
External links
National Physical Laboratory: ''Trapped ion optical frequency standards'' ''High-accuracy strontium ion optical clock''; National Physical Laboratory (2005)*
ttp://physics.nist.gov/cuu/Units/second.html NIST: ''Definition of the second''; notice the cesium atom must be in its ground state at 0 KOfficial BIPM definition of the secondThe leap second: its history and possible future
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*