Signal-to-noise ratio: Difference between revisions

From formulasearchengine
Jump to navigation Jump to search
en>Kvng
Reverted 1 edit by 134.71.110.94 (talk): Unexplined technical change by anon. (TW)
 
en>BG19bot
m WP:CHECKWIKI error fix for #61. Punctuation goes before References. Do general fixes if a problem exists. - using AWB (9793)
Line 1: Line 1:
{{technical|date=August 2012}}
[[Image:Singlemode fibre structure.svg|thumb|right|The structure of a typical [[single-mode fiber]].<br />
1. Core 8 µm diameter<br />
2. Cladding 125 µm dia.<br />
3. Buffer 250 µm dia.<br />
4. Jacket 400 µm dia.]]
In [[fiber-optic communication]], a '''single-mode optical fiber''' ('''SMF''') is an [[optical fiber]] designed to carry only a single [[ray (optics)|ray of light]] (mode). Modes are the possible solutions of the [[Helmholtz equation]] for waves, which is obtained by combining [[Maxwell's equations]] and the boundary conditions. These modes define the way the wave travels through space, i.e. how the wave is distributed in space. Waves can have the same mode but have different frequencies. This is the case in single-mode fibers, where we can have waves with different frequencies, but of the same mode, which means that they are distributed in space in the same way, and that gives us a single ray of light. Although the ray travels parallel to the length of the fiber, it is often called [[transverse mode]] since its [[Electromagnetic radiation|electromagnetic]] vibrations occur perpendicular (transverse) to the length of the fiber. The 2009 [[Nobel Prize in Physics]] was awarded to [[Charles K. Kao]] for his theoretical work on the single-mode optical fiber.<ref>Nobel Prize Citation http://www.nobelprize.org/nobel_prizes/physics/laureates/2009/kao-facts.html</ref>


==Characteristics==
Like [[multi-mode optical fiber]]s, single mode fibers do exhibit [[modal dispersion]] resulting from multiple spatial modes but with narrower modal dispersion.  Single mode fibers are therefore better at retaining the fidelity of each light pulse over longer distances than multi-mode fibers.  For these reasons, single-mode fibers can have a higher [[Bandwidth (computing)|bandwidth]] than multi-mode fibers. Equipment for single mode fiber is more expensive than equipment for multi-mode optical fiber, but the single mode fiber itself is usually cheaper in bulk. {{Citation needed|date=June 2013}}


[http://www.xn--80aeerfhjjg1bv8c.xn--p1ai/%D0%A1%D0%BE%D0%B4%D0%B5%D1%80%D0%B6%D0%B0%D0%BD%D0%B8%D0%B5/what-shakespeare-can-teach-you-about-try-minecraft-hunger-games-free xn--80aeerfhjjg1bv8c.xn--p1ai]You can stick to the [http://Dallaskoreans.com/?document_srl=161203 lag fixing] guide which will help you easily fix Minecraft lags. More TU14 patch details are actually posted for 'Minecraft Xbox 360 Edition.<br><br>You can stick to the lag fixing guide which will help you easily fix Minecraft lags. More TU14 patch details are actually posted for 'Minecraft Xbox 360 Edition.<br><br>The step to writing a good  minecraft wiki brewing paper is organization and making clear points. How could I ever believe in his people should they had moveable birthdays. [https://glipads.zendesk.com/entries/45047319-3-Easy-Steps-To-More-Try-Minecraft-Hunger-Games-Sales try minecraft for free online] minecraft free try out no download You might start with big events, but since the weeks unfold you may equally reveal less official occasions if you just had a try minecraft for free 1.8 excellent time. Both writers and athletes are skilled in several areas, however are able to use their discipline and stick-to-it nature to become a success in the world they be employed in.
A typical single mode optical fiber has a core diameter between 8 and 10.5 [[µm]]<ref name="arcelect">{{cite web | title = Fiber Optic Cable Tutorial | url = http://www.arcelect.com/fibercable.htm | author = ARC Electronics | date=2007-10-01 }}</ref> and a cladding diameter of 125&nbsp;µm. There are a number of special types of single-mode optical fiber which have been chemically or physically altered to give special properties, such as [[dispersion-shifted fiber]] and [[nonzero dispersion-shifted fiber]]. Data rates are limited by [[polarization mode dispersion]] and [[chromatic dispersion]].  {{asof|2005}} data rates of up to 10 gigabits per second were possible at distances of over {{convert|80|km|0|abbr=on}} with commercially available transceivers ([[Xenpak]]). By using [[optical amplifier]]s and dispersion-compensating devices, state-of-the-art [[DWDM]] optical systems can span thousands of kilometers at 10 Gbit/s, and several hundred kilometers at 40 Gbit/s.{{cn|date=November 2013}}
 
The lowest-order bounds mode is ascertained for the wavelength of interest by solving [[Maxwell's equations]] for the boundary conditions imposed by the fiber, which are determined by the [[Fiber_optics#Principle_of_operation|core]] diameter and the refractive indices of the core and [[Cladding (fiber optics)|cladding]].  The solution of Maxwell's equations for the lowest order bound mode will permit a pair of orthogonally polarized fields in the fiber, and this is the usual case in a [[telecommunications|communication]] fiber.  
 
In step-index guides, single-mode operation occurs when the [[Normalized frequency (fiber optics)|normalized frequency]], ''V'', is less than or equal to 2.405. For [[Power law|power-law]] profiles, single-mode operation occurs for a normalized frequency, ''V'', less than approximately
:<math>2.405 \sqrt{\frac{g+2}{g}}</math>,
where ''g'' is the profile parameter.
 
In practice, the orthogonal polarizations may not be associated with degenerate modes.
 
Optical fiber connectors are used to join optical fibers where a connect/disconnect capability is required. The basic connector unit is a connector assembly. A connector assembly consists of an adapter and two connector plugs.
Due to the sophisticated polishing and tuning procedures that may be incorporated into optical connector manufacturing, connectors are generally assembled onto optical fiber in a supplier’s manufacturing facility. However, the assembly and
polishing operations involved can be performed in the field, for example to make cross-connect jumpers to size.
 
Optical fiber connectors are used in telephone company central offices, at installations on customer premises, and in outside plant applications. Their uses include:
* Making the connection between equipment and the telephone plant in the central office
* Connecting fibers to remote and outside plant electronics such as Optical Network Units (ONUs) and Digital Loop Carrier (DLC) systems
* Optical cross connects in the central office
* Patching panels in the outside plant to provide architectural flexibility and to interconnect fibers belonging to different service providers
* Connecting couplers, splitters, and Wavelength Division Multiplexers (WDMs) to optical fibers
* Connecting optical test equipment to fibers for testing and maintenance.
 
Outside plant applications may involve locating connectors underground in subsurface enclosures that may be subject to flooding, on outdoor walls, or on utility poles. The closures that enclose them may be hermetic, or may be “free-breathing.” Hermetic closures will prevent subjection of the connectors within to temperature swings unless they are breached. Free-breathing enclosures will subject them to temperature and humidity swings, and possibly to condensation and biological action from airborne bacteria, insects, etc. Connectors in the underground plant may be subjected to groundwater immersion if the closures containing them are breached or improperly assembled.
 
The latest industry requirements for optical fiber connectors are in [http://telecom-info.telcordia.com/site-cgi/ido/docs.cgi?ID=SEARCH&DOCUMENT=GR-326& Telcordia GR-326, ''Generic Requirements for Singlemode Optical Connectors and Jumper Assemblies''.]
 
A ''multi-fiber'' optical connector is designed to simultaneously join multiple optical fibers together, with each optical fiber being joined to only one other optical fiber.
 
The last part of the definition is included so as not to confuse multi-fiber connectors with a branching component, such as a coupler. The latter joins one optical fiber to two or more other optical fibers.
 
Multi-fiber optical connectors are designed to be used wherever quick and/or repetitive connects and disconnects of a group of fibers are needed. Applications include telecommunications companies’ Central Offices (COs), installations on customer premises, and Outside Plant (OSP) applications.
 
The multi-fiber optical connector can be used in the creation of a low-cost switch for use in fiber optical testing. Another application is in cables delivered to a user with pre-terminated multi-fiber jumpers. This would reduce the need for field splicing, which could greatly reduce the amount of hours necessary for placing an optical fiber cable in a telecommunications network. This, in turn, would result in savings for the installer of such cable.
 
Industry requirements for multi-fiber optical connectors are covered in [http://telecom-info.telcordia.com/site-cgi/ido/docs.cgi?ID=SEARCH&DOCUMENT=GR-1435& GR-1435, ''Generic Requirements for Multi-Fiber Optical Connectors''.]
 
OS1 and OS2 are standard single-mode optical fiber used with wavelengths 1310&nbsp;nm and 1550&nbsp;nm (size 9/125&nbsp;µm). OS1 is defined in [[ISO/IEC 11801]], OS2 in [[ISO/IEC 24702]].
 
==See also==
* [[Optical waveguide]]
* [[Multi-mode optical fiber]]
* [[Graded-index fiber]]
 
==Notes==
<references />
 
==References==
*{{FS1037C}}
*{{cite web | url = http://www.fiber-optics.info/articles/types_of_optical_fiber | title = Types of Optical Fiber | date=2005-14-14}}
 
==External links==
*[http://www.arcelect.com/fibercable.htm The Basics of Fiber Optic Cable]
 
[[Category:Optical fiber]]

Revision as of 08:39, 20 December 2013

My name is Winnie and I am studying Anthropology and Sociology and Modern Languages and Classics at Rillieux-La-Pape / France.

Also visit my web site ... hostgator1centcoupon.info

The structure of a typical single-mode fiber.
1. Core 8 µm diameter
2. Cladding 125 µm dia.
3. Buffer 250 µm dia.
4. Jacket 400 µm dia.

In fiber-optic communication, a single-mode optical fiber (SMF) is an optical fiber designed to carry only a single ray of light (mode). Modes are the possible solutions of the Helmholtz equation for waves, which is obtained by combining Maxwell's equations and the boundary conditions. These modes define the way the wave travels through space, i.e. how the wave is distributed in space. Waves can have the same mode but have different frequencies. This is the case in single-mode fibers, where we can have waves with different frequencies, but of the same mode, which means that they are distributed in space in the same way, and that gives us a single ray of light. Although the ray travels parallel to the length of the fiber, it is often called transverse mode since its electromagnetic vibrations occur perpendicular (transverse) to the length of the fiber. The 2009 Nobel Prize in Physics was awarded to Charles K. Kao for his theoretical work on the single-mode optical fiber.[1]

Characteristics

Like multi-mode optical fibers, single mode fibers do exhibit modal dispersion resulting from multiple spatial modes but with narrower modal dispersion. Single mode fibers are therefore better at retaining the fidelity of each light pulse over longer distances than multi-mode fibers. For these reasons, single-mode fibers can have a higher bandwidth than multi-mode fibers. Equipment for single mode fiber is more expensive than equipment for multi-mode optical fiber, but the single mode fiber itself is usually cheaper in bulk. Potter or Ceramic Artist Truman Bedell from Rexton, has interests which include ceramics, best property developers in singapore developers in singapore and scrabble. Was especially enthused after visiting Alejandro de Humboldt National Park.

A typical single mode optical fiber has a core diameter between 8 and 10.5 µm[2] and a cladding diameter of 125 µm. There are a number of special types of single-mode optical fiber which have been chemically or physically altered to give special properties, such as dispersion-shifted fiber and nonzero dispersion-shifted fiber. Data rates are limited by polarization mode dispersion and chromatic dispersion. Template:Asof data rates of up to 10 gigabits per second were possible at distances of over Template:Convert with commercially available transceivers (Xenpak). By using optical amplifiers and dispersion-compensating devices, state-of-the-art DWDM optical systems can span thousands of kilometers at 10 Gbit/s, and several hundred kilometers at 40 Gbit/s.Template:Cn

The lowest-order bounds mode is ascertained for the wavelength of interest by solving Maxwell's equations for the boundary conditions imposed by the fiber, which are determined by the core diameter and the refractive indices of the core and cladding. The solution of Maxwell's equations for the lowest order bound mode will permit a pair of orthogonally polarized fields in the fiber, and this is the usual case in a communication fiber.

In step-index guides, single-mode operation occurs when the normalized frequency, V, is less than or equal to 2.405. For power-law profiles, single-mode operation occurs for a normalized frequency, V, less than approximately

,

where g is the profile parameter.

In practice, the orthogonal polarizations may not be associated with degenerate modes.

Optical fiber connectors are used to join optical fibers where a connect/disconnect capability is required. The basic connector unit is a connector assembly. A connector assembly consists of an adapter and two connector plugs. Due to the sophisticated polishing and tuning procedures that may be incorporated into optical connector manufacturing, connectors are generally assembled onto optical fiber in a supplier’s manufacturing facility. However, the assembly and polishing operations involved can be performed in the field, for example to make cross-connect jumpers to size.

Optical fiber connectors are used in telephone company central offices, at installations on customer premises, and in outside plant applications. Their uses include:

  • Making the connection between equipment and the telephone plant in the central office
  • Connecting fibers to remote and outside plant electronics such as Optical Network Units (ONUs) and Digital Loop Carrier (DLC) systems
  • Optical cross connects in the central office
  • Patching panels in the outside plant to provide architectural flexibility and to interconnect fibers belonging to different service providers
  • Connecting couplers, splitters, and Wavelength Division Multiplexers (WDMs) to optical fibers
  • Connecting optical test equipment to fibers for testing and maintenance.

Outside plant applications may involve locating connectors underground in subsurface enclosures that may be subject to flooding, on outdoor walls, or on utility poles. The closures that enclose them may be hermetic, or may be “free-breathing.” Hermetic closures will prevent subjection of the connectors within to temperature swings unless they are breached. Free-breathing enclosures will subject them to temperature and humidity swings, and possibly to condensation and biological action from airborne bacteria, insects, etc. Connectors in the underground plant may be subjected to groundwater immersion if the closures containing them are breached or improperly assembled.

The latest industry requirements for optical fiber connectors are in Telcordia GR-326, Generic Requirements for Singlemode Optical Connectors and Jumper Assemblies.

A multi-fiber optical connector is designed to simultaneously join multiple optical fibers together, with each optical fiber being joined to only one other optical fiber.

The last part of the definition is included so as not to confuse multi-fiber connectors with a branching component, such as a coupler. The latter joins one optical fiber to two or more other optical fibers.

Multi-fiber optical connectors are designed to be used wherever quick and/or repetitive connects and disconnects of a group of fibers are needed. Applications include telecommunications companies’ Central Offices (COs), installations on customer premises, and Outside Plant (OSP) applications.

The multi-fiber optical connector can be used in the creation of a low-cost switch for use in fiber optical testing. Another application is in cables delivered to a user with pre-terminated multi-fiber jumpers. This would reduce the need for field splicing, which could greatly reduce the amount of hours necessary for placing an optical fiber cable in a telecommunications network. This, in turn, would result in savings for the installer of such cable.

Industry requirements for multi-fiber optical connectors are covered in GR-1435, Generic Requirements for Multi-Fiber Optical Connectors.

OS1 and OS2 are standard single-mode optical fiber used with wavelengths 1310 nm and 1550 nm (size 9/125 µm). OS1 is defined in ISO/IEC 11801, OS2 in ISO/IEC 24702.

See also

Notes

References

External links