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ELECTRIC POWER

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'Electric power' is defined as the amount of work done by an electric current, or the rate at which electrical energy is transferred. The SI unit of power is the watt.
Electrical power is distributed via cables and electricity pylons like these in Brisbane, Australia.

When electric current flows in a circuit with resistance, it does work. Devices convert this work into many useful forms, such as heat (electric heaters), light (light bulbs), motion (electric motors) and sound (loudspeaker).

Contents
Mathematics of electric power
In circuits
In space
See also
Power generation
References
External links

Mathematics of electric power


In circuits

Electric power, like mechanical power, is represented by the letter ''P'' in electrical equations. The term 'wattage' is used colloquially to mean 'electric power in watts'.
In direct current resistive circuits, instantaneous electrical power is calculated using Joule's Law, which is named after the British physicist James Joule, who first showed that electrical and mechanical energy were interchangeable.
:
P = I V ,

where
:P is the power (watt or W)
:I is the current (ampere or A)
:V is the potential difference (volt or V)
For example:
:
2,mbox{A} cdot 12,mbox{V} = 24,mbox{W} ,
.
Joule's law can be combined with Ohm's law to produce two more equations:
:
P = I^2 R, = rac{V^2}{R} ,

where
:R is the resistance (Ohm or Ω).
For example:
:
(2,mbox{A})^2 cdot 6,Omega = 24,mbox{W} ,

and
:
rac{(12,mbox{V)}^2}{6,Omega} = 24,mbox{W} ,

In alternating current circuits, energy storage elements such as inductance and capacitance may result in periodic reversals of the direction of energy flow. The portion of power flow that, averaged over a complete cycle of the AC waveform, results in net transfer of energy in one direction is known as real power (also referred to as active power). That portion of power flow due to stored energy, that returns to the source in each cycle, is known as reactive power.
Power triangle The components of AC power

The relationship between real power, reactive power and apparent power can be expressed by representing the quantities as vectors. Real power is represented as a horizontal vector and reactive power is represented as a vertical vector. The apparent power vector is the hypotenuse of a right triangle formed by connecting the real and reactive power vectors. This representation is often called the ''power triangle''. Using the Pythagorean Theorem, the relationship among real, reactive and apparent power is:
:mbox{(apparent power)}^2 = mbox{(real power)}^2 + mbox{(reactive power)}^2
The ratio of real power to apparent power is called ''power factor'' and is a number always between 0 and 1.
In space

Electrical power flows wherever electric and magnetic fields exist in the same place. The simplest example of this is in electrical circuits, as the preceding section showed. In the general case, however, the simple equation P=IV must be replaced by a more complex calculation, the integral of the vector cross-product of the electrical and magnetic fields over a specified area, thus:
:
mathbf{P} = int_S mathbf{E} imes mathbf{H} cdot mathbf{dA} ,

The result is a scalar since it is the ''Surface integral'' of the ''Poynting vector''.

See also



AC power

World energy resources and consumption
Power generation


Electricity generation

Energy development

Nuclear Power

Fossil fuel power plant

References



Key Facts About the Electric Power Industry, Edison Electric Institute website

Reports on August 2003 Blackout, North American Electric Reliability Council website

American Electricans' Handbook, , Terrell, Croft, McGraw Hill, 1987, ISBN 0-070-13932-6

Standard Handbook for Electrical Engineers, , Donald G., Fink, McGraw Hill, 1978, ISBN 0-070-20974-X

External links



Electric power calculations

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