Dec 1, 2004

Physical constants

Physical constant

From Wikipedia, the free encyclopedia.

In science, a physical constant is a physical quantity whose numerical value does not change. It can be contrasted with a mathematical constant, which is a fixed value that does not directly involve a physical measurement.

There are many physical constants in science, some of the most famous being Planck's constant, the gravitational constant, and Avogadro's number. Constants can take many forms: the Planck length represents a fundamental physical distance; the speed of light in a vacuum signifies a maximum speed limit of the universe; and the fine-structure constant, which characterizes the interaction between electrons and photons, is dimensionless.

Beginning with Paul Dirac in 1937, some scientists have speculated that physical constants may actually decrease in proportion to the age of the universe. Scientific experiments have not yet pinpointed any definite evidence that this is the case, although they have placed upper bounds on the maximum possible relative change per year at very small amounts (roughly 10-5 per year for the fine structure constant \alpha \,\! and 10-11 for the gravitational constant G \,\!).

Some "constants" are really artifacts of the unit system used, such as SI or cgs. In natural units, some of these supposedly physical constants turn out to be conversion factors.

Constants that are independent of systems of units are typically dimensionless numbers, and are known as fundamental physical constants.

Some believe that if the physical constants had slightly different values, our universe would be so different that intelligent life would probably not have emerged, and that our universe seems to be fine-tuned for intelligent life.

See also

Table of physical constants

Table of physical constants
Universal constants
Quantity Symbol Value1 (SI units) Relative Standard Uncertainty Reference
characteristic impedance of vacuum Z_0 = \mu_0 c \, 376.730 313 461... Ω defined a
permittivity of vacuum (electric constant) \epsilon_0 = 1 / ( \mu_0 c^2 )\, 8.854 187 817... × 10-12F·m-1 defined a
permeability of vacuum (magnetic constant) \mu_0 \, 4π × 10-7 N·A-2 = 1.2566 370 614... × 10-6 N·A-2 defined a
Newtonian constant of gravitation G \, 6.6742(10) × 10-11m3·kg-1·s-2 1.5 × 10-4 a
Planck's constant h \, 6.626 0693(11) × 10-34 J·s 1.7 × 10-7 a
Dirac's constant \hbar = h / (2 \pi) 1.054 571 68(18) × 10-34 J·s 1.7 × 10-7 a
Planck length l_p = (\hbar G / c^3)^ \frac{1}{2} \, 1.616 24(12) × 10-35 m 7.5 × 10-5 a
Planck mass m_p = ( \hbar c / G )^  \frac{1}{2} \, 2.176 45(16) × 10-8 kg 7.5 × 10-5 a
Planck temperature T_p = ( \hbar c^5 / G )^ \frac{1}{2} / k 1.416 79(11) × 1032 K 7.5 × 10-5 a
Planck time t_p = (\hbar G / c^5)^ \frac{1}{2} 5.391 21(40) × 10-44 s 7.5 × 10-5 a
speed of light in vacuum c \, 299 792 458 m·s-1 defined a

Electromagnetic constants
Quantity Symbol Value1 (SI units) Relative Standard Uncertainty Reference
Bohr magneton \mu_B = e \hbar / 2 m_e 927.400 949(80) × 10-26 J·T-1 8.6 × 10-8 a
conductance quantum G_0 = 2 e^2 / h \, 7.748 091 733(26) × 10-5 S 3.3 × 10-9 a
elementary charge (electron charge) e \,\! 1.602 176 53(14) × 10-19 C 8.5 × 10-8 a
Josephson constant K_J = 2 e / h \, 483 597.879(41) × 109 Hz· V-1 8.5 × 10-8 a
magnetic flux quantum \phi_0 = h / 2 e \, 2.067 833 72(18) × 10-15 Wb 8.5 × 10-8 a
nuclear magneton \mu_N = e \hbar / 2 m_p 5.050 783 43(43) × 10-27 J·T-1 8.6 × 10-8 a
resistance quantum R_0 = h / 2 e^2 \, 12 906.403 725(43) Ω 3.3 × 10-9 a
von Klitzing constant R_K = h / e^2 \, 25 812.807 449(86) Ω 3.3 × 10-9 a

Atomic and nuclear constants
Quantity Symbol Value1 (SI units) Relative Standard Uncertainty Reference
alpha particle mass2 m_\alpha \, 6.644 6565(11) × 10-27 kg 1.7 × 10-7 a
Bohr radius a_0 = \alpha / 4 \pi R_\infin \, 0.529 177 2108(18) × 10-10 m 3.3 × 10-9 a
deuteron magnetic moment \mu_d \, 0.433 073 482(38) × 10-26 J · T-1 8.7 × 10-8 a
mass2 m_d \, 3.343 583 35(57) × 10-27 kg 1.7 × 10-7 a
rms charge radius R_d \, 2.1394 × 10-15 m 1.3 × 10-3 a
electron classical radius r_e = \alpha^2 a_0 \, 2.817 940 325(28) × 10-15 m 1.0 × 10-8 a
Compton wavelength \lambda_C = h / m_e c \, 2.426 310 238(16) × 10-12 m 6.7 × 10-9 a
g factor (Lande g factor) g_e = 2 \mu_e / \mu_B \, -2.002 319 304 3718(75) 3.8 × 10-12 a
gyromagnetic ratio \gamma_e = 2 |\mu_e| / \hbar 1.760 859 74(15) × 1011 s-1 T-1 8.6 × 10-8 a
magnetic moment \mu_e \, -928.476 412(80) × 10-26 J·T-1 8.6 × 10-8 a
mass2 m_e \, 9.109 3826(16) × 10-31 kg 1.7 × 10-7 a
Fermi coupling constant G_F / (\hbar c)^3 1.166 39(1) × 10-5 GeV-2 8.6 × 10-6 a
fine-structure constant \alpha = \mu_0 e^2 c / (2 h) \, 7.297 352 568(24) × 10-3 3.3 × 10-9 a
\alpha^{-1} \, 137.035 999 11(46) 3.3 × 10-9 a
Hartree energy E_h = 2 R_\infin h c \, 4.359 744 17(75) × 10-18 J 1.7 × 10-7 a
helion mass2 m_h \, 5.006 412 14(86) × 10-27 kg 1.7 × 10-7 a
shielded gyromagnetic ratio \gamma_h^'(\,^3\mbox{He}) = 2 |\mu_h^'(\,^3\mbox{He})| / \hbar 2.037 894 70(18) × 108 s-1 T-1 8.7 × 10-8 a
shielded magnetic moment \mu_h^'(\,^3\mbox{He}) -1.074 553 024(93) × 10-26 J · T-1 8.7 × 10-8 a
muon Compton wavelength \lambda_{C,\mu} = h / m_\mu c \, 11.734 441 05(30) × 10-15 m 2.5 × 10-8 a
g factor g_\mu \, -2.002 331 8396(12) 6.2 × 10-10 a
magnetic moment \mu_\mu \, -4.490 447 99(40) × 10-26 J · T-1 8.9 × 10-8 a
magnetic moment anomaly a_\mu = |\mu_\mu| / (e \hbar / 2 m_\mu) - 1 1.165 919 81(62) × 10-3 5.3 × 10-7 a
mass2 m_\mu \, 1.883 531 40(33) × 10-28 kg 1.7 × 10-7 a
neutron Compton wavelength \lambda_{C,n} = h / m_n c \, 1.319 590 9067(88) × 10-15 m 6.7 × 10-9 a
g factor g_n = 2 \mu_n / \mu_N \, -3.826 085 46(90) 2.4 × 10-7 a
gyromagnetic ratio \gamma_n = 2 |\mu_n| / \hbar 1.832 471 83(46) × 108 s-1 T-1 2.5 × 10-7 a
magnetic moment \mu_n \, -0.966 236 45(24) × 10-26 J · T-1 2.5 × 10-7 a
mass2 m_n \, 1.674 927 28(29) × 10-27 kg 1.7 × 10-7 a
proton Compton wavelength \lambda_{C,p} = h /m_p c \, 1.321 409 8555(88) × 10-15 m 6.7 × 10-9 a
g factor g_p = 2 \mu_p / \mu_N \, 5.585 694 701(56) 1.0 × 10-8 a
gyromagnetic ratio \gamma_p = 2 \mu_P / \hbar 2.675 222 05(23) × 108 s-1·T-1 8.6 × 10-8 a
magnetic moment \mu_p \, 1.410 606 71(12) × 10-26 J·T-1 8.7 × 10-8 a
mass2 m_p \, 1.672 621 71(29) × 10-27 kg 1.7 × 10-7 a
shielded gyromagnetic ratio \gamma_p^' = 2 \mu_p^' / \hbar 2.675 153 33(23) × 108 s-1 T-1 8.6 × 10-8 a
shielded magnetic moment \mu_p^' 1.410 570 47(12) × 10-26 J · T-1 8.7 × 10-8 a
quantum of circulation h / 2 m_e \, 3.636 947 550(24) × 10-4 m2 s-1 6.7 × 10-9 a
Rydberg constant R_\infin = \alpha^2 m_e c / 2 h \, 10 973 731.568 525(73) m-1 6.6 × 10-12 a
tauon Compton wavelength \lambda_{C,\tau} = h / m_\tau c \, 0.697 72(11) × 10-15 m 1.6 × 10-4 a
mass2 m_\tau \, 3.167 77(52) × 10-27 kg 1.6 × 10-4 a
Thomson cross section (8 \pi / 3)r_e^2 0.665 245 873(13) × 10-28 m2 2.0 × 10-8 a
weak mixing angle \sin^2 \theta_W = 1 - (m_W / m_Z)^2 \, 0.222 15(76) 3.4 × 10-3 a

Physico-chemical constants
Quantity Symbol Value1 (SI units) Relative Standard Uncertainty Reference
atomic mass constant (unified atomic mass unit) m_u = 1 u \, 1.660 538 86(28) × 10-27 kg 1.7 × 10-7 a
Avogadro's number N_A, L \, 6.022 1415(10) × 1023 1.7 × 10-7 a
Boltzmann constant k = R / N_A \, 1.380 6505(24) × 10-23 J·K-1 1.8 × 10-6 a
Faraday constant F = N_A e \, 96 485.3383(83)C·mol-1 8.6 × 10-8 a
first radiation constant
c_1 = 2 \pi h c^2 \, 3.741 771 38(64) × 10-16 W·m2 1.7 × 10-7 a
for spectral radiance c_{1L} \, 1.191 042 82(20) × 10-16 W · m2 sr-1 1.7 × 10-7 a
Loschmidt constant at T=273.15 K and p=101.325 kPa n_0 = N_A / V_m \, 2.686 7773(47) × 1025 m-3 1.8 × 10-6 a
molar gas constant R \, 8.314 472(15) J·K-1·mol-1 1.7 × 10-6 a
molar Planck constant N_A h \, 3.990 312 716(27) × 10-10 J · s · mol-1 6.7 × 10-9 a
molar volume of an ideal gas at T=273.15 K and p=100 kPa V_m = R T / p \, 22.710 981(40) × 10-3 m3 ·mol-1 1.7 × 10-6 a
at T=273.15 K and p=101.325 kPa 22.413 996(39) × 10-3 m3 ·mol-1 1.7 × 10-6 a
Sackur-Tetrode constant at T=1 K and p=100 kPa S_0 / R = \frac{5}{2} + \ln\left[ (2\pi m_u k T / h^2)^{3/2} k T / p \right] -1.151 7047(44) 3.8 × 10-6 a
at T=1 K and p=101.325 kPa -1.164 8677(44) 3.8 × 10-6 a
second radiation constant c_2 = h c / k \, 1.438 7752(25) × 10-2 m·K 1.7 × 10-6 a
Stefan-Boltzmann constant \sigma = (\pi^2 / 60) k^4 / \hbar^3 c^2 5.670 400(40) × 10-8 W·m-2·K-4 7.0 × 10-6 a
Wien displacement law constant b = (h c / k) /   \, 4.965 114 231... 2.897 7685(51) × 10-3 m · K 1.7 × 10-6 a

Adopted Values
Quantity Symbol Value (SI units) Relative Standard Uncertainty Reference
conventional value of Josephson constant3 K_{J-90} \, 483 597.9 × 109 Hz · V-1 defined a
conventional value of von Klitzing constant4 R_{K-90} \, 25 812.807 Ω defined a
molar mass constant M_u = M(\,^{12}C) / 12 1 × 10-3 kg · mol-1 defined a
of carbon-12 M(\,^{12}C) = N_A m(\,^{12}C) 12 × 10-3 kg · mol-1 defined a
standard acceleration of gravity (gee, free fall on Earth) g_n \,\! 9.806 65 m·s-2 defined a
standard atmosphere atm \,\! 101 325 Pa defined a

Notes:
1the values are given in the so-called concise form; the number in brackets is the standard uncertainty which is the value multiplied by the relative standard uncertainty.
2the given value is for rest mass.
3This is the value adopted internationally for realizing representations of the volt using the Josephson effect.
4This is the value adopted internationally for realizing representations of the ohm using the quantum Hall effect.

References:
a2002 CODATA Internationally recommended values of the Fundamental Physical Constants (http://physics.nist.gov/cuu/Constants) (at The NIST References on Constants, Units, and Uncertainty (http://physics.nist.gov/cuu))


More Environmental News

Coffee Producers in Costa Rica Reap Rewards of New Solar Technology
Using the latest solar technology, a Canadian-led partnership is helping coffee producers in Costa Rica save energy and help the environment.

California and Chicago Climate Programs Join Forces to Harmonize Emissions Certification Requirements
California's recently adopted rules tracking carbon reductions from forest protection projects have been approved by the Chicago Climate Exchange (CCX).

13 Countries Join U.S. to Launch Methane-to-Markets Partnership

Source: GreenBiz.com
WASHINGTON, Nov. 26, 2004 - The new global initiative serves to advance international cooperation on the recovery and use of methane as a valuable clean energy source.

Biofuels Seen Key to U.K. Farming Future

Source: Reuters via Planet Ark
LONDON, Nov. 24, 2004 - Biofuels could become a major revenue earner for Britain's arable farmers within 5-10 years, but much will depend on government support, a major study into the U.K. cereals sector has concluded.

D.C.-Area Businesses Launch Coalition to Fight Global Warming and Air Pollution

Source: GreenBiz.com
SILVER SPRING, Md., Nov. 23, 2004 - Several businesses in Maryland, Virginia, and the District of Columbia have formally launched the Clean Energy Partnership, a regional coalition working to promote solutions to global warming and air pollution.

United States and China Launch Clean Diesel Retrofit Program

Source: GreenBiz.com
BEIJING, Nov. 22, 2004 - The U.S. Environmental Protection Agency, China's State Environmental Protection Administration (SEPA), the Beijing Environmental Protection Bureau and other organizations have launched a project to retrofit a select fleet of existing buses and trucks in China with clean diesel technology.

Cars, Not Crops, Should Be Chief Targets in Reducing Greenhouse Gases

Source: GreenBiz.com
DURHAM, N.C., Oct. 29, 2004 - Retiring croplands and switching to no-till agriculture can contribute in a modest way to reducing the increase of carbon dioxide in the atmosphere, but doubling fuel efficiencies of cars and light trucks would achieve much greater results, according to two Duke University ecologists.

Computers make you blind: official

By Lester Haines
Published Wednesday 17th November 2004 11:17 GMT
We all know that prolonged computer use can cause RSI, back trouble, high blood pressure and steam to vent from both ears, but it appears that's the least of our worries, because we'll soon all be blind and that will be an end to it.
According to a Japanese study published in the Journal of Epidemiology and Community Health, relentlessly hammering the PC may contribute to the onset of glaucoma - a nasty disease which progressively damages the optic nerve and eventually leads to blindness. The researchers - led by Dr Masayuki Tatemichi of Toho University School of Medicine - tested the eyesight of a total of 10,000 staff at four Japanese companies. They found that 522 of their guinea pigs demonstrated "visual field abnormalities" - aka "sight defects" to the man in the street.

denial-of-service attacks on spammers' websites

Turning the tables on bulk mailers...Lycos is offering its customers a screensaver that helps to launch denial-of-service attacks on spammers' websites - a tactic more commonly associated with hackers or the spammers themselves who abuse networks of compromised machines to send large volumes of data.

The controversial move is designed to use the idle processing power of a computer to slow down the response times from spammers' websites.
Wessel Van Rensburg, product manager of communications for Lycos, said: "Lycos has been trying to position itself in the fight against spam. It launches tonight in the UK. It aims to use our community to fight spam. It uses idle computer power and sends requests to spam sites."
On its website, Lycos, which claims to have an army of more than 66,000 computers, says it has already attacked several websites, slowing one down by 85 per cent of its operating speed. The software is open to Windows and Mac users.

The company said that when the screensaver is active it displays the location and URL of the sites users' PCs are attacking, and that Lycos decides the websites it will attack.

A spokesman for the company said: "This gives internet users the opportunity to hit spammers where it hurts. Sending spam is not a minor misdemeanour, as spam causes billions of pounds of damage to the economy. This is why we are upping the ante in the fight against those responsible for spam."

"It's irresponsible of Lycos to put its name to it because it lends legitimacy to [DDoS] attacks," said Linford. "You can't break into a thief's house just because he breaks into yours. We don't support this or recommend this practice. Directing traffic is part of the degradation of the internet we are trying to stop."

Denial-of-service attacks should all be illegal.
:-(

Eliminate Phishing

Eliminate Phishing at the Server Level According to the Anti-Phishing Working Group
(an industry association focused on eliminating the identity theft and fraud that result from phishing and email spoofing), phishing attacks increased an average of 25% per month from July to October 2004 — with no sign of slowing down. “Phishers disguise themselves as a company you are familiar with and lure you to a familiar-looking Web site where they prompt you to provide certain identifying information,” says Bob Parsons, president of Go Daddy. “Unfortunately, that site is a fake designed to deceive and capture your personal information. Because of the increasing frequency of phishing attacks, Go Daddy developed a system that will materially minimize our users’ exposure to this threat.”For more information on phishing can be found on the Anti-Phishing Working Group's Web site at http://www.anti-phishing.org/.

FET - The ENVIRONMENT '05 conference Milwaukee Hilton

Federation of Environmental Technologists, Inc.

The ENVIRONMENT '05 conference program is being developed.

A final program will be posted after December 1, 2004.

FET will be holding four preconference workshops on Monday, March 7, 2005. They are as follows:

  • 8-Hour HazWoper: This course is designed to meet the requirements of 1910.120(e) Training and Refresher
    Training in the HazWoper regulations.

  • Storm Water Permitting Workshop: Designed to help companies develop and implement a storm water management program.
  • Train the Environmental Trainer: Avoid common training pitfalls and learn more about the best ways to keep your audience tuned in and engaged.
  • Environmental, Health & Safety Primer: Provides a primary level of instruction in the area of environmental regulation and management. Recommended for individuals new to the environmental fields or those desiring a quick review.

Nov 22, 2004

Neutral Cleaning .com

Welcome! Fellow Environmental Advocate

Thank you for your concern for the environment. In addition to the many ways you live your life in an environmentally conscientious way, the cleaners you use can also have a huge impact. Many current household and industrial cleaners are corrosive and hazardous, and people do not realize it.

Many cleaners are organic and biodegradable, but they use a large amount of water to rinse off soap residue. For instance, many brands of eco-dishwashing liquid use up to fifty times as much water to rinse off soap residues. How "environmentally friendly" can a cleaner be if it wastes so much of our most precious resource even if it is derived from earth friendly ingredients?

This website was generated to help educate consumers, students, industry and people in there everyday life about water conservation and environmentally safe cleaners. We hope you find the information on this site useful and enlightening. Please share it with other people who support our concerns for water conservation and waste prevention.

Thanks again for your continued support in helping save the environment
"one solution at a time".

The ESS Website

Nov 8, 2004

Site Disclaimer - I have no money to sue for?

The blog provides information of a general & public nature regarding national or other developments. None of the information contained herein is intended as legal advice or opinions relative to specific matters, facts, situations or issues. Additional facts, information or future developments may affect the subjects addressed in this blog. You should consult with an expert about your particular circumstances before acting on any of this information because it may not be applicable to your situation. This blog contains information and links to sites which are not owned or maintained by myself. I am not responsible for the content, linked sites, and the views expressed on linked sites do not necessarily reflect my views or opinions. The information contained herein is provided for personal, non-commercial, educational, entertainment and informational purposes only and does not constitute a guarantee of information or facts. I makes no claims, expressed, implied, or statutory regarding the accuracy, timeliness, completeness, or correctness of any material contained herein. Since the conditions of use are outside my control, the individual visitor is entirely responsible for determining the appropriateness and applicability of all information contained herein.

Also
I emphatically apologize for using stimulating “media” to make my point…