Units in the changing times – on the occasion of the 2019 redefinition of the SI base units
Abstract
Colloquium of the Study Center Mechanics, Darmstadt University of Technology, Germany 5 August 2019 Ralf Greve, Institute of Low Temperature Science, Hokkaido University, Japan "Units in the changing times – on the occasion of the 2019 redefinition of the SI base units"
Full text
Units in the changing times Ralf Greve Institute of Low Temperature Science, Hokkaido University, Sapporo, Japan Salvador Dalí: The Soft Watches On the occasion of the 2019 redefinition of the SI base units
Ralf Greve: Units in the changing times 2/17 “These Britons are crazy” (~ 50 BCE) Goscinny/Uderzo (1966): Asterix in Britain
Ralf Greve: Units in the changing times 3/17 Mars Climate Orbiter lost in translation (1999) Newspaper cartoon. Source: Slideplayer.com
Ralf Greve: Units in the changing times 4/17 Metric system introduced in Revolutionary France (1790s) Metre, for length 1/10,000,000 of the distance between the North Pole and the Equator through Paris Are (100 m2), for area of land Stère (1 m3), for volume of firewood Litre (1 dm3), for volumes of liquid Gram, for mass Mass of one cubic centimetre of water Franc, for currency Six new decimal units: Decimal multiples by Greek prefixes (kilo-, centi-, milli-, etc.)
Ralf Greve: Units in the changing times 5/17 SI base units Second (s) for time Metre (m) for length Kilogram (kg) for mass Ampere (A) for electric current Kelvin (K) for temperature Mole (mol) for amount of substance (since 1971) Candela (cd) for luminous intensity SI (Système International d’unités): Modern form of the metric system, established in 1960
Ralf Greve: Units in the changing times 6/17 Second Historically defined as 1/86400 of a mean solar day. Ephemeris second (1956): Fraction 1/31,556,925.9747 of the tropical year for 1900 January 0 at 12 hours ephemeris time. Atomic second (1967–today): 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 (at a temperature of 0 K). Can be interpreted as fixing the value of a physical constant: Caesium frequency ∆νCs = 9,192,631,770 s–1.
Ralf Greve: Units in the changing times 7/17 Metre Historically: 1/10,000,000 of the distance ... Wavelength definition (1960): 1,650,763.73 wavelengths of the orange-red emission line in the electromagnetic spectrum of the krypton-86 atom in a vacuum. Fixed value of the speed of light (1983–today): c= 299,792,458 m s–1. International prototype metre (1889, 1927): Distance, at 0°C, between the two lines on the standard bar of platinum–iridium kept at the International Bureau of Weights and Measures (BIPM) in Paris. Credit: BIPM
Ralf Greve: Units in the changing times 8/17 Kilogram Historically: Mass of one litre of distilled water at 0°C. Fixed value of the Planck constant (2019): h= 6.62607015×10−34 J s [kg m2s−1]. International prototype kilogram (1889): Mass of the platinum–iridium cylinder kept at the International Bureau of Weights and Measures in Paris. Credit: AFP/Getty Images Energy and equivalent mass of a photon:
Ralf Greve: Units in the changing times 9/17 Ampere Credit: User:Danmichaelo/ Wikimedia Commons Force between two parallel, current-carrying wires of infinite length 1 metre apart in a vacuum (1946): The constant current that will produce an attractive force of 2×10–7 N per metre of length. Fixed value of the elementary charge (2019): e= 1.602176634×10−19 C [A s].
Ralf Greve: Units in the changing times 16/17 Some more thoughts Using physical constants for defining the base units could set them all to 1! 1 time unit = 1/(caesium frequency ∆νCs)≈ 1.088×10–10 s 1 length unit = c× 1 time unit ≈0.0326 m 1 mass unit = (h∆νCs)/c2≈6.777×10–41 kg etc… Very common in theoretical physics!
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