| Customization: | Available |
|---|---|
| Application: | Communication |
| Type: | Single-mode Fiber |
| Shipping Cost: | Contact the supplier about freight and estimated delivery time. |
|---|
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Discover the cutting-edge technology of Micro Air Blown Cable, a pivotal innovation in the telecommunications industry that Fibconet proudly offers to the market.| Type | O.D.
(mm) |
Weight
(Kg/km) |
Tensile strength
Long/short term (N) |
Crush
Long/short term (N/100mm) |
Number of tubes/fibre
count per tube |
|---|---|---|---|---|---|
| GCYFY-12B1.3 | 4.5 | 16 | 0.3G/1.0G | 150/500 | 2/6 |
| GCYFY-24B1.3 | 4.5 | 16 | 0.3G/1.0G | 150/500 | 4/6 |
| GCYFY-36B1.3 | 4.5 | 16 | 0.3G/1.0G | 150/500 | 6/6 |
| GCYFY-24B1.3 | 5.4 | 26 | 0.3G/1.0G | 150/500 | 2/12 |
| GCYFY-48B1.3 | 5.4 | 26 | 0.3G/1.0G | 150/500 | 4/12 |
| GCYFY-72B1.3 | 5.4 | 26 | 0.3G/1.0G | 150/500 | 6/12 |
| GCYFY-96B1.3 | 6.1 | 33 | 0.3G/1.0G | 150/500 | 8/12 |
| GCYFY-144B1.3 | 7.9 | 52 | 0.3G/1.0G | 150/500 | 12/12 |
| GCYFY-192B1.3 | 7.9 | 52 | 0.3G/1.0G | 150/500 | 16/12 |
| GCYFY-216B1.3 | 7.9 | 52 | 0.3G/1.0G | 150/500 | 18/12 |
| GCYFY-288B1.3 | 9.3 | 80 | 0.3G/1.0G | 150/500 | 24/12 |
| GCYFY-144B1.3 | 7.3 | 42 | 0.3G/1.0G | 150/500 | 6/24 |
| GCYFY-192B1.3 | 8.8 | 76 | 0.3G/1.0G | 150/500 | 8/24 |
| GCYFY-288B1.3 | 11.4 | 110 | 0.3G/1.0G | 150/500 | 12/24 |
| GCYFY-432B1.3 | 11.4 | 105 | 0.3G/1.0G | 150/500 | 18/24 |
| GCYFY-576B1.3 | 13.4 | 140 | 0.3G/1.0G | 150/500 | 24/24 |
Environmental Characteristics
Transport/storage temperature: -40ºC to +70ºC
Advantages of Micro Air Blown Cable Technology
Efficient Installation
Air blown fiber technology leverages compressed air to install optical cables into microducts with remarkable speed, significantly reducing the labor and costs associated with traditional cable deployment methods.
With its compact design, the micro air blown cable boasts a high fiber count in a small diameter, allowing installation into smaller microducts, enhancing the utilization of existing duct space.
Our micro air blown cables facilitate phased network expansion. Providers can initially deploy cables with adequate capacity. And incrementally add more fibers based on evolving service demands without over-investing upfront, optimizing cost-effectiveness.
By allowing additional cables to be blown into subducts within existing infrastructure as required. This technology prevents the redundancy of unused fibers, ensuring every strand put to use.
The system supports on-demand fiber branching, using Y-type connectors to reduce the number of splices. It benefits signal integrity and enhances transmission performance.
Installation is less susceptible to external climatic conditions and confined space challenges. Thanks to the swift and long-distance blowing capabilities that significantly shorten construction periods.

The cable can be used as the drop cable of distribution segments in FTTH networks and can be laid by air blowing to connect the branch point with the access point for subscribers. The cable is also applicable in backbone networks , metropolitan area networks and access networks
This technology is a new way to make significant improvements in traditional fiber optic systems, facilitating the rapid adoption of fiber optic networks and providing users with a flexible, secure, cost-effective cabling system.
The blowing system consists of micro-tubes (single micro-tubes and micro-tubes), micro-cables, fittings and air blowing equipment.
Fibre optic cable is an advanced type of network cable, offering significantly improved performance in terms of bandwidth and data carrying than traditional metal conductor versions.
Fibre optic cables are commonly found today in higher-end internet, phone and TV applications. They're also used in many other areas of the home and workplace use, including in decor applications - fibre optic Christmas trees, for example, are not at all uncommon now.
The ability of optical fibre cable to save a great deal of space over bulkier types of traditional cabling has also made them a popular choice for numerous lighting and safety features in modern cars. They're widely used in many other demanding professional fields too, including in a great many medical applications, for detailed mechanical inspections, and as sensors for monitoring and controlling the flow of various sorts of electrical currents, sounds and chemicals.