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Mannaia per fibra ottica di grande diametro LDC-100 * Applicabile a fibre di diametro 80μm~600μm *Scanalatura a V della pompa del vuoto comoda per mettere la fibra *Lama durevole, durata più di 20000 volte *Archiviazione dati 4000 gruppi * Menu GUI intuitivo, facile da usare Di Più
Giuntatrice a fusione in fibra multi-core S-22 La prima giuntatrice a fusione di fibra multi - core completamente automatica in Cina Di Più
Polarizzazione di Mantenimento (PM) in Fibra di Fusion Splicer S-12 * Core a core di allineamento, bassa perdita di splicing * Endview e il Profilo di osservazione e di allineamento * Arco di calibrazione automatica e splicing * PM fibra di 45 e 90 gradi di allineamento Di Più
S-37 LDF Speialty Fiber Fusion Splicer SHINHO S-37 è l'ultimo modello che abbiamo sviluppato, potrebbe unire il diametro del rivestimento in fibra da 125 a 400 μm con una bassa perdita di giunzione. Abbiamo dotato la macchina di 3 diversi portafibra e 2 paia di elettrodi di ricambio. Di Più
splicer di fusione fibra core allineamento core x900 sei splicer di fusione per motori, vera tecnologia di allineamento core-core. 6 s splicing, 16s riscaldamento, identificare automaticamente i tipi di fibra. utilizzato per progetti wan / uomo / telecomunicazione. Di Più
robusta giuntatrice per fusione ad arco multifunzione s16 design industriale robusto, anti-shock, a prova di polvere e impermeabile. supporto multifunzione per fibra nuda, patch cord, cavo di derivazione, ecc. splicing e riscaldamento rapidi, calibrazione automatica dell'arco. Di Più
SHINHO X-18 Stripper termico in fibra di nastro Shinho X-18 Thermal Stripper è uno stripper termico manuale di nuova concezione, appositamente progettato per lo stripping termico non distruttivo della guaina di cavi a nastro fino a 12 fibre. Uno strumento buono e affidabile per il lavoro di giunzione della fibra del nastro. Di Più
Mannaia per fibre ottiche ad alta precisione X-50D Di piccole dimensioni e leggero, facile da usare. Alta precisione e prestazioni stabili. Più di 48000 volte la durata della lama, lunghezza tagliata in fibra 5 ~ 20 mm. Materiale di alta qualità Di Più
Fiber Optic Recoating Machine: A Key Process Equipment for High-Reliability Fiber Systems
A fiber optic recoating machine is a specialized device used to restore the protective coating of optical fibers. It is mainly applied after fiber stripping, splicing, or repair processes. By using UV-curable materials, it re-applies a protective layer to bare fiber, restoring its mechanical strength and environmental resistance close to the original level.
In modern fiber optic communication, fiber laser systems, and fiber sensing applications, stripped fiber becomes extremely fragile. Without proper protection, it is highly susceptible to breakage, micro-bending loss, and long-term reliability issues. Therefore, the recoating process has become an essential step in high-reliability fiber systems.
During fiber splicing or repair, the original coating must be removed to allow precise alignment and fusion splicing. However, once the coating is removed, the bare fiber has several critical weaknesses:
· Significantly reduced mechanical strength
· Extremely sensitive to bending and tension
· Poor long-term reliability
· Vulnerable to moisture and contamination
A fiber recoating machine solves this problem by using a mold-forming process combined with UV curing to recreate the protective coating, restoring a stable and durable fiber structure.
In high-power fiber laser systems (especially kilowatt-level and above), optical fibers operate under extremely high energy density for long periods. Without proper recoating protection, splice points or repaired sections may suffer from:
· Thermal damage
· Fiber breakage
· Reduced long-term stability
Therefore, recoating machines are widely used in fiber laser manufacturing and repair, serving as a critical process to ensure system reliability.
In distributed acoustic sensing (DAS), fiber optic gyroscopes (FOG), and fiber Bragg grating (FBG) systems, the optical fiber itself acts as the sensing medium.
Since signal accuracy depends heavily on fiber integrity, even minor mechanical damage or stress changes can affect measurement performance. Recoating ensures long-term stability and consistency of sensing systems.
In military, aerospace, and anti-interference communication systems, optical fibers often operate in harsh environments such as vibration, temperature extremes, and strong electromagnetic interference.
These applications demand extremely high reliability, and fiber recoating significantly improves mechanical robustness and environmental resistance, making it an essential process for mission-critical communication links.
In practical engineering, heat shrink tubes are sometimes used as a low-cost alternative. However, the two methods are fundamentally different:
In simple terms: heat shrink provides protection, while recoating restores the fiber structure.
With the continuous development of fiber optic technology toward higher power, higher precision, and more specialized applications, the importance of recoating technology is increasing. Key trends include:
Higher laser power requires stronger and more reliable fiber structures, making recoating quality critical to system lifetime and safety.
Technologies such as DAS are being widely adopted in energy, transportation, and security sectors, requiring long-term stable operation.
Emerging fibers such as polarization-maintaining (PM) fiber and hollow-core fiber require more precise repair and protection processes.
Although a fiber optic recoating machine does not directly participate in signal transmission or laser output, it plays a critical role in restoring and protecting optical fibers within high-performance systems.
Its value can be summarized as follows:
In high-end fiber systems, long-term reliability is not determined only by the fiber itself, but by how well it is restored and protected after splicing.
As fiber laser, fiber sensing, and specialty fiber technologies continue to evolve, fiber recoating machines will play an increasingly important role in ensuring system stability and reliability across advanced applications.
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