Fiber-optic cable

A fiber-optic cable, also known as an optical-fiber cable, is an assembly similar to an
Design

Optical fiber consists of a

Right: SC/PC connectors
All four connectors have white caps covering the ferrules.
For indoor applications, the jacketed fiber is generally enclosed, together with a bundle of flexible fibrous polymer strength members like aramid (e.g. Twaron or Kevlar), in a lightweight plastic cover to form a simple cable. Each end of the cable may be terminated with a specialized optical fiber connector to allow it to be easily connected and disconnected from transmitting and receiving equipment.



For use in more strenuous environments, a much more robust cable construction is required. In loose-tube construction the fiber is laid
A critical concern in outdoor cabling is to protect the fiber from damage by water. This is accomplished by use of solid barriers such as copper tubes, and water-repellent jelly or water-absorbing powder surrounding the fiber.
Finally, the cable may be armored to protect it from environmental hazards, such as construction work or gnawing animals. Undersea cables are more heavily armored in their near-shore portions to protect them from boat anchors, fishing gear, and even sharks, which may be attracted to the electrical power that is carried to power amplifiers or repeaters in the cable.
Modern cables come in a wide variety of sheathings and armor, designed for applications such as direct burial in trenches, dual use as power lines, installation in conduit, lashing to aerial telephone poles, submarine installation, and insertion in paved streets.
Capacity and market
In September 2012, NTT Japan demonstrated a single fiber cable that was able to transfer 1
Although larger cables are available,[5] the highest strand-count single-mode fiber cable commonly manufactured is the 864-count, consisting of 36 ribbons each containing 24 strands of fiber.[6] These high fiber count cables are used in data centers,[5] and as distribution cables in HFC and PON networks.[7][8][9]
In some cases, only a small fraction of the fibers in a cable may actually be in use. Companies can lease or sell the unused fiber to other providers who are looking for service in or through an area. Depending on specific local regulations, companies may overbuild their networks for the specific purpose of having a large network of
Reliability and quality
Optical fibers are very strong, but the strength is drastically reduced by unavoidable microscopic surface flaws inherent in the manufacturing process. The initial fiber strength, as well as its change with time, must be considered relative to the stress imposed on the fiber during handling, cabling, and installation for a given set of environmental conditions. There are three basic scenarios that can lead to strength degradation and failure by inducing flaw growth: dynamic fatigue, static fatigues, and zero-stress aging.
Telcordia GR-20, Generic Requirements for Optical Fiber and Optical Fiber Cable, contains reliability and quality criteria to protect optical fiber in all operating conditions.[10] The criteria concentrate on conditions in an outside plant (OSP) environment. For the indoor plant, similar criteria are in Telcordia GR-409, Generic Requirements for Indoor Fiber Optic Cable.[11]
Cable types
![]() | This section needs expansion. You can help by adding to it. (June 2008) |
- OFC: Optical fiber, conductive
- OFN: Optical fiber, nonconductive
- OFCG: Optical fiber, conductive, general use
- OFNG: Optical fiber, nonconductive, general use
- OFCP: Optical fiber, conductive, plenum
- OFNP: Optical fiber, nonconductive, plenum
- OFCR: Optical fiber, conductive, riser
- OFNR: Optical fiber, nonconductive, riser
- OPAC: Optical attached cable
- OPGW: Optical fiber composite overhead ground wire
- ADSS: All-dielectric self-supporting
- OSP: Fiber optic cable, outside plant
- MDU: Fiber optics cable, multiple dwelling unit
Jacket material
The jacket material is application-specific. The material determines the mechanical robustness, chemical and UV radiation resistance, and so on. Some common jacket materials are LSZH, polyvinyl chloride, polyethylene, polyurethane, polybutylene terephthalate, and polyamide.
Fiber material
There are two main types of material used for optical fibers: glass and plastic. They offer widely different characteristics and find uses in very different applications. Generally, plastic fiber is used for very short-range and consumer applications, whereas glass fiber is used for short/medium-range (multi-mode) and long-range (single-mode) telecommunications.[12]
Color coding
Patch cords
The buffer or jacket on
Color | Meaning | |
---|---|---|
Orange | Multi-mode optical fiber | |
Aqua | OM3 or OM4 10 G laser-optimized 50/125 μm multi-mode optical fiber | |
Erika violet[13] | OM4 multi-mode optical fiber (some vendors)[14] | |
Lime green[15] | OM5 10 G + wideband 50/125 μm multi-mode optical fiber | |
Grey | Outdated color code for multi-mode optical fiber | |
Yellow | Single-mode optical fiber | |
Blue | Sometimes used to designate polarization-maintaining optical fiber |
Color | Meaning | Comment | |
---|---|---|---|
Blue | Physical contact (PC), 0° | Mostly used for single mode fibers; some manufacturers use this for polarization-maintaining optical fiber. | |
Green | Angle polished (APC), 8° | ||
Black | Physical contact (PC), 0° | ||
Grey | Physical contact (PC), 0° | Multimode fiber connectors | |
Beige | |||
White | Physical contact (PC), 0° | ||
Red | High optical power. Sometimes used to connect external pump lasers or Raman pumps. |
Remark: It is also possible that a small part of a connector is additionally color-coded, e.g. the lever of an E-2000 connector or a frame of an fiber-optic adapter. This additional color coding indicates the correct port for a patch cord, if many patch cords are installed at one point.
Multi-fiber cables
Individual fibers in a multi-fiber cable are often distinguished from one another by color-coded jackets or buffers on each fiber. The identification scheme used by
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The color code used above resembles PE copper cables used in standard telephone wiring.
In the UK a different color code is followed. Each 12-fiber bundle or element within a Cable Optical Fibre 200/201 cable is colored as follows:
Position | Jacket color | Position | Jacket color |
---|---|---|---|
1 | ![]() blue |
7 | ![]() brown |
2 | ![]() orange |
8 | ![]() violet |
3 | ![]() green |
9 | ![]() black |
4 | ![]() red |
10 | ![]() white |
5 | ![]() grey |
11 | ![]() pink |
6 | ![]() yellow |
12 | ![]() turquoise |
Each element is in a tube within the cable (not a blown fiber tube) The cable elements start with the red tube and are counted around the cable to the green tube. Active elements are in white tubes and yellow fillers or dummies are laid in the cable to fill it out depending on how many fibers and units exists – can be up to 276 fibers or 23 elements for external cable and 144 fibers or 12 elements for internal. The cable has a central strength member normally made from fiberglass or plastic. There is also a copper conductor in external cables.
Propagation speed and delay
Optical cables transfer data at the speed of light in glass. This is the speed of light in vacuum divided by the refractive index of the glass used, typically around 180,000 to 200,000 km/s, resulting in 5.0 to 5.5 microseconds of latency per km. Thus the round-trip delay time for 1000 km is around 11 milliseconds.[17]
Losses
Signal loss in optic fiber is measured in
Typical modern multimode graded-index fibers have 3 dB per kilometre of attenuation (signal loss) at a wavelength of 850 nm, and 1 dB/km at 1300 nm. Singlemode loses 0.35 dB/km at 1310 nm and 0.25 dB/km at 1550 nm. Very high quality singlemode fiber intended for long-distance applications is specified at a loss of 0.19 dB/km at 1550 nm.[18] Plastic optical fiber (POF) loses much more: 1 dB/m at 650 nm. POF is large core (about 1 mm) fiber suitable only for short, low-speed networks such as TOSLINK optical audio or for use within cars.[19]
Each connection between cables adds about 0.6 dB of average loss, and each joint (splice) adds about 0.1 dB.
Invisible infrared light (750 nm and larger) is used in commercial glass fiber communications because it has lower attenuation in such materials than visible light. However, the glass fibers will transmit visible light somewhat, which is convenient for simple testing of the fibers without requiring expensive equipment. Splices can be inspected visually, and adjusted for minimal light leakage at the joint, which maximizes light transmission between the ends of the fibers being joined.
The charts Understanding wavelengths in fiber optics[22] and Optical power loss (attenuation) in fiber[23] illustrate the relationship of visible light to the infrared frequencies used, and show the absorption water bands between 850, 1300 and 1550 nm.
Safety
The infrared light used in telecommunications cannot be seen, so there is a potential
Small glass fragments can also be a problem if they get under someone's skin, so care is needed to ensure that fragments produced when cleaving fiber are properly collected and disposed of appropriately.
Hybrid cables
There are hybrid optical and electrical cables that are used in wireless outdoor Fiber To The Antenna (FTTA) applications. In these cables, the optical fibers carry information, and the electrical conductors are used to transmit power. These cables can be placed in several environments to serve antennas mounted on poles, towers, and other structures.
According to
These types of hybrid cables may also be useful in other environments such as Distributed Antenna System (DAS) plants where they will serve antennas in indoor, outdoor, and roof-top locations. Considerations such as fire resistance, Nationally Recognized Testing Laboratory (NRTL) Listings, placement in vertical shafts, and other performance-related issues need to be fully addressed for these environments.
Since the voltage levels and power levels used within these hybrid cables vary, electrical safety codes consider the hybrid cable to be a power cable, which needs to comply with rules on clearance, separation, etc.
Innerducts

Innerducts are installed in existing underground conduit systems to provide clean, continuous, low-friction paths for placing optical cables that have relatively low pulling tension limits. They provide a means for subdividing conventional conduit that was originally designed for single, large-diameter metallic conductor cables into multiple channels for smaller optical cables.
Types
Innerducts are typically small-diameter, semi-flexible subducts. According to
These various designs are based on the profile of the inside and outside diameters of the innerduct. The need for a specific characteristic or combination of characteristics, such as pulling strength, flexibility, or the lowest coefficient of friction, dictates the type of innerduct required.Beyond the basic profiles or contours (smoothwall, corrugated, or ribbed), innerduct is also available in an increasing variety of multiduct designs. Multiduct may be either a composite unit consisting of up to four or six individual innerducts that are held together by some mechanical means, or a single extruded product having multiple channels through which to pull several cables. In either case, the multiduct is coilable, and can be pulled into existing conduit in a manner similar to that of conventional innerduct.
Placement
Innerducts are primarily installed in underground conduit systems that provide connecting paths between manhole locations. In addition to placement in conduit, innerduct can be directly buried, or aerially installed by lashing the innerduct to a steel suspension strand.
As stated in GR-356, cable is typically placed into innerduct in one of three ways. It may be
- Pre-installed by the innerduct manufacturer during the extrusion process,
- Pulled into the innerduct using a mechanically assisted pull line, or
- Blown into the innerduct using a high air volume cable blowing apparatus.
See also
- ANSI/TIA-568, color coding for electrical cable
- Free-space optical communication
- Fusion splicing
- ISO/IEC 11801, structured cabling standard
- Optical power meter
- Optical time-domain reflectometer
- Parallel optical interface
- Power-over-fiber
- Tactical fiber-optic cable assembly
References
- ^ Posinna, Mariddetta (April 1, 2014). "different types of fiber optic cables". HFCL. Archived from the original on April 20, 2016. Retrieved April 11, 2016.
- ^ "Light collection and propagation". National Instruments' Developer Zone. Archived from the original on December 22, 2015. Retrieved October 8, 2015.
Hecht, Jeff (2002). Understanding Fiber Optics (4th ed.). Prentice Hall.ISBN 0-13-027828-9. - ^ "Definition: rip cord". Its.bldrdoc.gov. Archived from the original on January 20, 2012. Retrieved December 10, 2011.
- ^ Chirgwin, Richard (September 23, 2012). "NTT demos petabit transmission on single fibre". The Register. Archived from the original on February 21, 2014. Retrieved February 16, 2014.
- ^ a b Ultra-high-fiber-count cables require care during installation and termination, July 2019, retrieved May 22, 2023
- ^ "OFS 864-strand singlemode fiber cable datasheet" (PDF). Archived (PDF) from the original on April 25, 2016.
- ISBN 978-1-107-02616-2.
- ISBN 978-0-08-051193-1.
- ISBN 978-1-78923-742-9.
- ^ "GR-20, Generic Requirements for Optical Fiber and Optical Fiber Cable". Telcordia. Archived from the original on January 20, 2016.
- ^ "GR-409, Generic Requirements for Indoor Fiber Optic Cable". Telcordia. Archived from the original on September 30, 2011.
- ^ "Single-Mode VS. Multimode Fiber Cable". Archived from the original on September 29, 2013. Retrieved September 24, 2013.
- ^ "Erika violet" is RAL 4003, according to rgb.to Archived 2016-10-18 at the Wayback Machine. Similar to Pantone 675U or RGB (196,97,140)
- ^ Crawford, Dwayne (September 11, 2013). "Who is Erika Violet and what is she doing in my data center?". Tech Topics. Belden. Archived from the original on February 22, 2014. Retrieved February 12, 2014.
- ^ "TIA approves lime green as identifying color for OM5 fiber-optic cable". Cabling Installation and Maintenance. May 14, 2017. Archived from the original on August 6, 2019. Retrieved August 6, 2019.
- ^ a b c Leroy Davis (February 21, 2007). "Fiber wire color coding". Archived from the original on December 12, 2007. Retrieved December 1, 2007.
- ^ Latency and Jitter Archived 2016-04-27 at the Wayback Machine Retrieved 2016-04-09.
- ^ "Corning LEAF G.655 type singlemode fiber datasheet" (PDF). Archived (PDF) from the original on December 3, 2015.
- ^ Optical Fiber Archived 2010-08-12 at the Wayback Machine (tutorial at lanshack.com) Retrieved 2010-08-20.
- ^ "Cisco: Calculating the Maximum Attenuation for Optical Fiber Links".
- ^ "Guidelines on What Loss to Expect when Testing Fiber Optic Cables".
- ^ Hayes, Jim. "Understanding Wavelengths In Fiber Optics". The Fiber Optic Association. Archived from the original on December 2, 2013. Retrieved January 13, 2014.
- ^ "Optical power loss (attenuation) in fiber". Ad-net.com.tw. December 28, 2008. Archived from the original on December 2, 2013. Retrieved January 13, 2014.
- ^ "Laser Eye Safety for Telecommunications Systems" (PDF). Senko.com. p. 2. Archived from the original (PDF) on October 1, 2021. Retrieved December 25, 2021.
- ^ GR-3173, Generic Requirements for Hybrid Optical and Electrical Cables for Use in Wireless Outdoor Fiber To The Antenna (FTTA) Applications Archived 2016-01-20 at the Wayback Machine. Telcordia.
- ^ GR-356, Generic Requirements for Optical Cable Innerduct, Associated Conduit, and Accessories Archived 2016-01-20 at the Wayback Machine. Telcordia.
External links
- Fiber Optic Association The FOA Reference Guide To Fiber Optics
- Accurately Testing Fiber Optic Cables