Showing posts with label or. Show all posts
Showing posts with label or. Show all posts

Friday, June 4, 2010

Electric power


Electric power



Electric power is defined as the rate at which electrical energy is transferred by an electric circuit. The SI unit of power is the watt.
Electrical power is transmitted with overhead lines on pylons like these in Brisbane, Australia.
For underground transmission see high voltage cables.

When electric current flows in a circuit, it can transfer energy to do mechanical or thermodynamic work. Devices convert electrical energy into many useful forms, such as heat (electric heaters), light (light bulbs), motion (electric motors), sound (loudspeaker) or chemical changes. Electricity can be produced mechanically by generation, or chemically, or by direct conversion from light in photovoltaic cells, also it can be stored chemically in batteries.
Contents
[hide]

* 1 Mathematics of electric power
o 1.1 Circuits
+ 1.1.1 Direct current
+ 1.1.2 Alternating current
o 1.2 In space
* 2 See also
o 2.1 Power generation
* 3 References

[edit] Mathematics of electric power
[edit] 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."
[edit] Direct current

In direct current resistive circuits, electrical power is calculated using Joule's law:

P = VI \,

where P is the electric power, V the potential difference, and I the electric current.

In the case of resistive (Ohmic, or linear) loads, Joule's law can be combined with Ohm's law (I = V/R) to produce alternative expressions for the dissipated power:

P = I^2 R = \frac{V^2}{R},

where R is the electrical resistance.
[edit] Alternating current
Main article: AC power

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:

(apparent power)2 = (real power)2 + (reactive power)2

Real and reactive powers can also be calculated directly from the apparent power, when the current and voltage are both sinusoids with a known phase angle between them:

(real power) = (apparent power)cos(θ)

(reactive power) = (apparent power)sin(θ)

The ratio of real power to apparent power is called power factor and is a number always between 0 and 1.

The above theory of reactive power and the power triangle is true only when both the voltage and current is strictly sinusoidal. Therefore is more or less abandoned for low voltage distribution applications where the current normally is rather distorted. It can still be used for high voltage tranmission applications and, with some care, for medium voltage applications where the current normally is less distorted.
[edit] In space

Electrical power flows wherever electric and magnetic fields exist together and fluctuate 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 cross-product of the electrical and magnetic field vectors over a specified area, thus:

P = \int_S (\mathbf{E} \times \mathbf{H}) \cdot \mathbf{dA}. \,

The result is a scalar since it is the surface integral of the Poynting vector.
[edit] See also
Crystal energy.svg Energy portal

* High voltage cable
* AC power
* EGRID
* World energy resources and consumption
* Rural electricity

[edit] Power generation

* Electricity generation
* Energy development
* Nuclear Power
* Fossil fuel power plant
* Geothermal Power

[edit] References

* Reports on August 2003 Blackout, North American Electric Reliability Council website
* Croft, Terrell; Summers, Wilford I. (1987). American Electricans' Handbook (Eleventh Edition ed.). New York: McGraw Hill. ISBN 0-070-13932-6. http://books.mcgraw-hill.com/getbook.php?isbn=0071377352.
* Fink, Donald G.; Beaty, H. Wayne (1978). Standard Handbook for Electrical Engineers (Eleventh Edition ed.). New York: McGraw Hill. ISBN 0-070-20974-X. http://books.mcgraw-hill.com/getbook.php?isbn=0070220050.

Thursday, June 3, 2010

Upright Cleaners Vax U91P2


Upright Cleaners
Product information for Vax U91P2

* Product Features
* Reviews

Features for Vax U91P2

* Maximum Wattage: 1800
* HEPA Filter: Yes
* Cable Rewind: Yes
* Type / Shape: Upright (Beat & Brush)
* Bagless Technology: Others
* Multifunctional: No
* Type of Dust Container: Bagless
* Power Supply: Mains
* Variable Power: Yes
* Controls in Handle: No

* Additional Power Socket: Not Applicable
* Tube Material: Plastic Fixed
* Integrated Tools: Yes
* Turbine Brush: No
* Power Brush: No
* Hardfloor Brush: No
* Animal Brush: No
* Fragrance Diffusor: No
* Maximum Volume of Dust Collector in Litres: 3

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Wednesday, June 2, 2010

Foot Switches

Foot Switches


Foot switches are different types of switches that can be operated by feet. These foot switches are foot actuated with the help of a pedal or air bulb. These switches are manufactured and are available in different configurations, including multi-pedal, snap action switch, slow action switch, potentiometer, variable speed control, waterproof. Operating temperature is another important parameter that must be considered.

Foot switches Specifications
There are certain general, physical and electrical specifications that must be considered when selecting foot switches. These are:

* General specifications
o Actuation method: This can be either snap action, slow action, air switch, and potentiometer.

o Function: This can be maintained contact, momentary contact, single stage, two stage, three stage, mechanical interlock, and variable.

o Pedals: These switches can have one, two or three pedals.

* Electrical specifications
o Configuration: This can be normally open or normally closed.

o Contact style: This can be single break, double break, shorting, or non-shorting.

o Maximum current: This is the nameplate current capacity of the switch.

o Maximum AC voltage:

o Maximum DC voltage:

o Pole and throw specifications: This includes single pole, single throw (SPST), single pole, double throw (SPDT), double pole, single throw (DPST), and double pole, double throw (DPDT).

* Physical specifications
o Switch base material: The materials can be plastic, thermoplastic, metal or PVC.
o Actuator or pedal material: The materials can be plastic or thermoplastic, metal or PVC.
o Terminal type: These can be wire leads or cords without plugs, wire leads or cords with plugs, solder terminals, quick connects or blades and screw terminals.

Foot Switches Features
There are certain protective features offered by the foot switches manufacturers. These are:

* Anti-trip mechanism
* Dustproof
* Explosion proof
* Full guard
* No guard
* Weather resistant
* Waterproof

Approvals and Certifications
Foot switches manufacturers need the following certifications:

* CE certification
* CSA certification
* UL listing or registration The operating temperature is an important environmental parameter to consider.

Armoured Cables


Armoured Cables



Armored cables, as the name suggest are the type of cables covered with a lot of protection. These armored cables are covered with strong steel strands wrapped round the cable. They are usually used for transferring power either underground or overhead. Armored cables are mostly used for burial wiring because the ordinary mains cable may be damaged by the hit of a spade or other sharp tools.

Armoured Cable

Structure of Armoured Cable
The armoured cable is constructed of three layers of protection. The innermost core is generally multi strand and each one is individually sheathed from each other. There may be two, three, or four strands depending upon the application. Then an overall plastic sheath covers these individual strands altogether in a single unit. Further it is covered by a protective wire armour. Finally there is a outer sheath to hold it. The three core cable - live, neutral and earth - is mostly used in domestic installations while the four core cable is used when there is a three phase supply is in use.

Applications of Armored Cables

* Armored cables are used for power networks, underground, outdoors, indoors and in cable ducting.

* Armored cables are used particularly where fire, smoke emission and toxic fumes create a major threat.

Installation
Installation of armor cables shouldn't be done on your own level. It should always be done by professional electricians or contractors. Though it is not so much difficult to install armoured cables but due to the safety implications it isn't advised to do it on your own.

Steel Wired Armoured (SWA) cable
Armouring wires are designed for use in mains electricity supply. For underground installation, steel wired armoured cable is widely accepted as the standard one. It makes the underground and underwater wiring easy and safe. The chances of accidents or any harming situation is minimized because mechanical protection is provided with them for external or burial use.

Features of SWA cables

* They are either PVC insulated or XLPE (Cross Linked Polyethylene) insulated.

* The armour used in these cables is Galvanized Steel Wire Armour.

* The conductor used is stranded or solid plain annealed copper.

Saturday, May 29, 2010

fiber optic cable


fiber optic cable


A fiber optic cable is composed of one or more transparent fibers that are enclosed in protective coverings and strength members. There are different types of fiber optic cables available in the market including:
Simplex: These cables have a single optical fiber.
Duplex: These cables have two optical fibers.
Multifiber: These cables have several optical fibers.
Patch cord: These short length cables also have connectors.
Bare fiber: This is a fiber optic core with cladding only.
All of These cables can can have single mode or multimode fibers.





Important Considerations
Listed below are some of the important parameters that must be considered while purchasing fiber optic cable:
Fiber core size
Cable diameter
Cable weight
Specifications to be Considered
There are certain features and specifications that one must consider while purchasing fiber optic cables. These specifications are as follows:
Features of Optic Fiber Cables
Polarization maintaining
Graded index
Metallized
Performance specifications include:
Wavelength
Numerical aperture
Maximum attenuation
Bending radius


Buyers Guide
Fiber optic cable buyers must check the below mentioned information while buying these cables. The section also contains classification of fiber optic cables that are used in different areas.

Fiber optic cables are manufactured based on their end use. These cables have standard set of markings for indicating their primary use, the name of the manufacturer, a National Electrical Code Rating and a UL approval code. The information also contains the number of fibers contained within the cable, the outside diameter of the cable, and the manufacturer's product nomenclature. All the above points should be checked while purchasing cables.



Fiber Optic Cable Classification

Fiber Cable
Classification General Purpose
Inside Plant Used for device to device wiring.
Horizontal, or Intra-office Used for running on a single floor and between rooms.
Riser or intra-building Used for running between floors in a building, usually in an elevator shaft or conduit.
Plenum Used for meeting fire codes for cable run within an air space.
Inside-Outside Used for transition between outside plant and inside plant.



Manufacturers also provide a metallic armored sheath to the cable for providing added strength and protection against rodents.

Optical fiber cable manufacturers provide a standard color coding for ensuring effective management of cables because of the normally high strand counts contained within a cable. The manufacturers make use of 24 color combinations. Below is the optical fiber cable color identification chart for the use of buyers:


Types of Fiber Optic Cable

Loose Buffered Cable Tight Buffered Cable
Individual fibers can move freely within a buffer tube. Fibers are tightly bound into a bundle.
Large cable diameter for accommodating buffer tubes. Small cable diameter.
Fibers get protection from cable pulling forces. Used for running between floors in a building, usually in an elevator shaft or conduit.
Primarily used for outside plant. Primarily used for inside plant and distribution.


Optical Fiber Cable Color Identification Chart:

Buffer Tube / Fiber Strand Number Color
1 Blue
2 Orange
3 Green
4 Brown
5 Slate
6 White
7 Red
8 Black
9 Yellow
10 Violet
11 Rose
12 Aqua
13 Blue/Black Tracer
14 Orange/Black Tracer
15 Green/Black Tracer
16 Brown/Black Tracer
17 Slate/Black Tracer
18 White/Black Tracer
19 Red/Black Tracer
20 Black/Yellow Tracer
21 Yellow/Black Tracer
22 Violet/Black Tracer
23 Rose/Black Tracer
24 Aqua/Black Tracer