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Armored Loose Tube Single Jacket/ Single Armore Cable
Temprature Range
Operating: -40℃ to +70℃
Storage:-50℃ to +70℃
Installation: -50℃ to +70℃
Bending Radius:
Static: 10D
Dynamic: 20D
Description:
Armored fiber optic cable with fibers placed in loose buffer tube stranded around central strength member. The cable core is protected with jelly to prevent water intrusion and migration. With a corrugated steel tape armor which provides rigid protection, rodent resistance and cover with a black Polyethylene outer jacket.
Features:
Loose tube gel-filled construction for superior fiber protection.
Corrugated PSP steel tabe armor to protect cable from mechanical damage and rodant protection.
UV and moisture-resistant design.
Crush resistance and flexiblility.
Water-blocking material.
Applications:
Backbones and Access.
Installed in ducts, underground conduits and direct burial.
Structure and Technical Specifications GYXTW(2-24F)
Fiber Count | Nominal Diameter(mm) | Nominal Weight(kg.km) | Allowable Tensile Load(N) | Allowable Crush Resiatance(N/100mm) | ||
Short Term | Long Term | Short Term | Long Term | |||
2~12 | 7.8 | 60 | 1500 | 600 | 1500 | 600 |
14~24 | 8.5 | 85 | 1500 | 600 | 1500 | 600 |
Note: This datesheet can only be a reference, but not a supplement to the contract. Please contact us for more detailed information.
TR No:GY2017-12-3757
Model&type | GYXTW-6B1 (9/125) | Standards | YD/T769-2010 | |||||||||||||||||||||||
Testing item | Color | Wave length(nm) | Color & attentuations(α 1310nm≤0.35dB/km, α 1550nm≤0.21dB/km) | |||||||||||||||||||||||
blue | orange | green | brown | grey | natural | |||||||||||||||||||||
natural | 1310 | 0.326 | 0.328 | 0.327 | 0.329 | 0.321 | 0.337 | |||||||||||||||||||
1550 | 0.181 | 0.199 | 0.197 | 0.188 | 0.186 | 0.191 | ||||||||||||||||||||
Testing item (2) | Mode field diameter(um) | 9.3±0.6 | Dispersion | Zero dispersion wave length(nm) | 1300-1324 | |||||||||||||||||||||
Cladding diameter(um) | 125±1 | Zero dispersion slope ( Ps/nm2.km ) | ≤0.092 | |||||||||||||||||||||||
Mode field concentricity error(um) | <0.6 | 1288-1339 Dispersion ( Ps/nm.km ) | ≤3.5 | |||||||||||||||||||||||
Cladding non-circularity( % ) | <1 | 1271-1360 Dispersion ( Ps/nm.km ) | ≤5.3 | |||||||||||||||||||||||
Cut-off wave length (nm) | <1260 | 1550nm Dispersion ( Ps/nm.km ) | ≤18 | |||||||||||||||||||||||
Testing item (三) | Outlooking | Good, no hole, clean,smooth | ||||||||||||||||||||||||
Cable length(m) | 3000 | Immersion performance | Pass | |||||||||||||||||||||||
Diameter(mm) | 7.9 | Completation of outer sheath | Yes | |||||||||||||||||||||||
Outer sheath thickness(mm) | 2.0 | Conductor performance | Pass | |||||||||||||||||||||||
tester | 208 | Date | Temperature | 20℃ | Humidity | 65% | ||||||||||||||||||||
stampe | approver | 01 | Result | Pass |
Note: 1. Cable can be supplied with a range of single mode or multimode fibers.
2. The dimensions and raw materials can be designed according to the demand of the customers.
3. Strandard Reel length: 2000m/reel; other lengths are available.
Better depends upon your perspective. Since no electricity is involved, fiber optic internet is less likely to shut down during a power outage than other types of high-speed internet. Along with being more reliable, fiber optic internet is also faster—and more expensive—than traditional internet cables.
Fiber optic cable has three essential components: the core, the cladding, and the coating.
Fiber cables offer several advantages over long-distance copper cabling.
· Fiber optics support a higher capacity. The amount of network bandwidth a fiber cable can carry easily exceeds that of a copper cable with similar thickness. Fiber cables rated at 10 Gbps, 40 Gbps, and 100 Gbps are standard.
· Because light can travel for much longer distances over a fiber cable without losing its strength, the need for signal boosters is lessened.
· A fiber optic cable is less susceptible to interference. A copper network cable requires shielding to protect it from electromagnetic interference. While this shielding helps, it is not sufficient to prevent interference when many cables are strung together in proximity to one another. The physical properties of fiber optic cables avoid most of these problems.
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