CCV extruded MV cable

Feltoflex® LED Self-Luminous Single Core Cable addresses this application niche with revolutionary integration of electromagnetic induction self-powered LED illumination into a premium single-core cable architecture. Unlike three-phase mining cables designed for kilometre-long trunk distribution, Feltoflex LED cables serve the critical short-distance interconnection role—where visibility, flexibility, durability, and compact form factor are paramount. Switchgear rooms and transformer chambers are typically underground or in poorly lit industrial areas. When technicians need to work on cable terminations, identify connection points, or troubleshoot equipment, they currently rely on portable lamps, headlamps, or external lighting. The Feltoflex LED cable illuminates itself as it carries power, providing integrated visibility that enhances safety, accelerates maintenance procedures, and requires zero external infrastructure.

Feltoflex® LED Self-Luminous Single Core Cable

Feltoflex® LED Self-Luminous Single Core Cable addresses this application niche with revolutionary integration of electromagnetic induction self-powered LED illumination into a premium single-core cable architecture. Unlike three-phase mining cables designed for kilometre-long trunk distribution, Feltoflex LED cables serve the critical short-distance interconnection role—where visibility, flexibility, durability, and compact form factor are paramount. Switchgear rooms and transformer chambers are typically underground or in poorly lit industrial areas. When technicians need to work on cable terminations, identify connection points, or troubleshoot equipment, they currently rely on portable lamps, headlamps, or external lighting. The Feltoflex LED cable illuminates itself as it carries power, providing integrated visibility that enhances safety, accelerates maintenance procedures, and requires zero external infrastructure.
ShoreLink® LED-illuminated shore power cable represents a fundamental shift in maritime electrification architecture. Modern vessels—from 200,000+ TEU container ships to 10,000+ passenger cruise ships—increasingly require high-capacity onshore electrical power supply while docked, replacing onboard diesel generators and reducing port emissions. This transition demands specialized cables engineered around maritime-specific operational features that differ fundamentally from industrial power cables.

ShoreLink® LED-Illuminated Shore Power Cable

ShoreLink® LED-illuminated shore power cable represents a fundamental shift in maritime electrification architecture. Modern vessels—from 200,000+ TEU container ships to 10,000+ passenger cruise ships—increasingly require high-capacity onshore electrical power supply while docked, replacing onboard diesel generators and reducing port emissions. This transition demands specialized cables engineered around maritime-specific operational features that differ fundamentally from industrial power cables.
AquaGlow® LED-illuminated trailing cable is engineered specifically for the practical realities of dredging operations, floating platform power systems, and submersible pump installation. Unlike theoretical self-powered LED solutions, AquaGlow is designed around real-world operational features: cables are dragged across gravel and rocky bottoms, bent repeatedly around pulleys and drums, exposed to saltwater spray and corrosive sewage chemicals, and must remain functional after years of intense mechanical stress.

AquaGlow® LED-Illuminated Trailing Cable

AquaGlow® LED-illuminated trailing cable is engineered specifically for the practical realities of dredging operations, floating platform power systems, and submersible pump installation. Unlike theoretical self-powered LED solutions, AquaGlow is designed around real-world operational features: cables are dragged across gravel and rocky bottoms, bent repeatedly around pulleys and drums, exposed to saltwater spray and corrosive sewage chemicals, and must remain functional after years of intense mechanical stress.
EL-Min® self-luminous mining cable represents a breakthrough in industrial safety engineering. Unlike conventional industrial cables that require separate lighting infrastructure or external power systems to mark their locations and identify operational status, the EL-Min cable generates its own illumination continuously while transmitting electrical power. This dual-function capability—power transmission combined with self-powered luminescence—is achieved through advanced electromagnetic induction technology embedded directly into the cable's construction.

EL-Min® Self-Luminous Mining Cable

Revolutionary Self-Powered Cable Safety Innovation: Advanced Electromagnetic Induction Converts Transmitted Power into Real-Time LED Illumination Without External Power Supply, Integrated Multi-Fiber Optic Monitoring for Remote Diagnostics, Tinned Copper Corrosion-Resistant Conductors, Class 5 Very Flexible Stranding for Underground Installation, DIN VDE 0250-813 Compliance, Comprehensive Cable Route Visibility, Emergency Location Detection, Personnel Safety Enhancement in Darkness, and Universal Compatibility with Modern Mining Infrastructure and Hazardous Zone Applications
FABER® (N)3GHSSYCY cable solves the pit equipment power distribution challenge through two integrated innovations: Galvanized Steel Wire Braid Armor (75% minimum coverage): Resists puncture from sharp rocks, crushing from equipment treads (500+ tonne axle loads), and abrasion from rocky terrain. Service life extended 3–5× vs. unarmored cables in identical pit conditions. Integrated Monitoring Core: Continuously measures insulation resistance, detecting degradation 4–8 weeks before insulation failure becomes critical. This early warning enables planned maintenance before unexpected equipment shutdown.

FABER® (N)3GHSSYCY

(N)3GHSSYCY is the integrated copper wire monitoring core spun on the first inner sheath. This dedicated conductor continuously measures insulation resistance between phase conductors and ground reference, enabling early warning of insulation degradation. Three-Stage Insulation Degradation Detection Stage 1 – Incipient Degradation (4–8 weeks before failure): Insulation resistance drops from >1000 MΩ to 100–500 MΩ range. Monitoring systems alert maintenance teams; scheduled cable replacement planned during next equipment maintenance window. Stage 2 – Advanced Degradation (1–4 weeks before failure): Resistance drops to 10–50 MΩ. Equipment operations reduced; high-priority replacement initiated (completed within 1–7 days). Stage 3 – Critical Failure (imminent): Resistance drops below 1 MΩ. Equipment immediately shut down; emergency cable replacement executed (8–12 hours typical). Monitoring Core Measurement Technology The monitoring core interfaces to pit electrical control systems via standard 24 VDC measurement electronics. A precision insulation resistance tester (1000 V minimum) measures leakage current across the monitoring core at 30-minute intervals, recording continuous insulation resistance trending. This trending data provides quantitative assessment of cable aging, enabling predictive maintenance planning based on actual cable condition rather than calendar time.
BiTcrane® (N)TSCGEWOEU-SR FO cable revolutionizes port crane architecture by integrating fiber optic communication and screened control signaling directly into the reeling cable structure. This enables: Real-Time Load Sensing: Optical load cells transmit actual container weight and load distribution across the fiber optic core, enabling sophisticated anti-sway algorithms and dynamic positioning. Anti-Collision Systems: Integrated control cores and fiber optics enable simultaneous position/velocity data transmission from three independent sensors, supporting autonomous crane systems that avoid collisions with adjacent cranes or adjacent gantries. Predictive Maintenance Monitoring: Integrated temperature and vibration sensors on control cores transmit cable and motor health metrics, alerting maintenance teams to incipient failures before breakdown occurs. Safety Emergency Stop: Dedicated screened control cores provide redundant emergency stop signaling, independent of power circuits, enabling fail-safe descent during electrical system failures. 60 m/min Continuous Operation: Synthetic torsion-protection braid enables extreme rotation resistance (±20–30°/m), supporting rapid container cycling without cable fatigue or control signal degradation.

BiTcrane® (N)TSCGEWOEU-SR FO

BiTcrane® (N)TSCGEWOEU-SR FO cable revolutionizes port crane architecture by integrating fiber optic communication and screened control signaling directly into the reeling cable structure. This enables: Real-Time Load Sensing: Optical load cells transmit actual container weight and load distribution across the fiber optic core, enabling sophisticated anti-sway algorithms and dynamic positioning. Anti-Collision Systems: Integrated control cores and fiber optics enable simultaneous position/velocity data transmission from three independent sensors, supporting autonomous crane systems that avoid collisions with adjacent cranes or adjacent gantries. Predictive Maintenance Monitoring: Integrated temperature and vibration sensors on control cores transmit cable and motor health metrics, alerting maintenance teams to incipient failures before breakdown occurs. Safety Emergency Stop: Dedicated screened control cores provide redundant emergency stop signaling, independent of power circuits, enabling fail-safe descent during electrical system failures. 60 m/min Continuous Operation: Synthetic torsion-protection braid enables extreme rotation resistance (±20–30°/m), supporting rapid container cycling without cable fatigue or control signal degradation.
T-F-(N)TSCGEWOEU cable is purpose-engineered for this demanding opencast mining power distribution challenge. Key advantages: Dual Bending Radius Design: 6ר for fixed pit main distribution lines buried or overhead on pit benches; 10ר for mobile equipment power cables that must flex repeatedly as equipment moves. Field-Strippable Semiconducting Layer: Mining operations frequently require on-site cable modifications, connector re-termination, and length adjustments. The removable outer semiconducting layer enables these modifications without heating or special equipment—a unique feature that saves days of equipment downtime per project. Extreme Temperature Range: −40 to +80 °C operational span covers arctic pit operations (Canada, Siberia, Australia winter) to desert mining (Middle East, Australia summer), eliminating need for climate-specific cable variants. Corrosion-Resistant Tinned Copper: Pit dust from mineral extraction contains sulfides, chlorides, and other corrosive compounds. Tinned copper conductors resist oxidation and maintain conductivity where bare copper would degrade within months.

T-F-(N)TSCGEWOEU

T-F-(N)TSCGEWOEU cable is purpose-engineered for this demanding opencast mining power distribution challenge. Key advantages: Dual Bending Radius Design: 6ר for fixed pit main distribution lines buried or overhead on pit benches; 10ר for mobile equipment power cables that must flex repeatedly as equipment moves. Field-Strippable Semiconducting Layer: Mining operations frequently require on-site cable modifications, connector re-termination, and length adjustments. The removable outer semiconducting layer enables these modifications without heating or special equipment—a unique feature that saves days of equipment downtime per project. Extreme Temperature Range: −40 to +80 °C operational span covers arctic pit operations (Canada, Siberia, Australia winter) to desert mining (Middle East, Australia summer), eliminating need for climate-specific cable variants. Corrosion-Resistant Tinned Copper: Pit dust from mineral extraction contains sulfides, chlorides, and other corrosive compounds. Tinned copper conductors resist oxidation and maintain conductivity where bare copper would degrade within months.
The PRYSMIAN Protolon® (SMK-200)-LWL cable eliminates this bottleneck through ultra-high-speed monospiral reeling capability at 200 metres per minute (one-way operation). This 2–4× speed increase over conventional cables enables: Reduced Deployment Time: A 10-kilometre umbilical deploys to 5000-metre depth in 50 hours (vs. 100–200 hours), cutting deployment cycle time in half or more. Lower Vessel Operating Costs: 2–4 day reduction in vessel time on station translates to $200,000–800,000 operational savings per deployment, plus enabling multiple deployment cycles per vessel contract. Increased Project Throughput: Offshore wind farms can install subsea cables 2–3× faster, enabling completion of larger farm capacity in shorter timeframes, accelerating wind energy deployment. Emergency Response Capability: Subsea equipment failures can be addressed rapidly; intervention vessels can deploy repair umbilicals in hours instead of days.

PRYSMIAN Protolon® (SMK-200)-LWL

The PRYSMIAN Protolon® (SMK-200)-LWL cable eliminates this bottleneck through ultra-high-speed monospiral reeling capability at 200 metres per minute (one-way operation). This 2–4× speed increase over conventional cables enables: Reduced Deployment Time: A 10-kilometre umbilical deploys to 5000-metre depth in 50 hours (vs. 100–200 hours), cutting deployment cycle time in half or more. Lower Vessel Operating Costs: 2–4 day reduction in vessel time on station translates to $200,000–800,000 operational savings per deployment, plus enabling multiple deployment cycles per vessel contract. Increased Project Throughput: Offshore wind farms can install subsea cables 2–3× faster, enabling completion of larger farm capacity in shorter timeframes, accelerating wind energy deployment. Emergency Response Capability: Subsea equipment failures can be addressed rapidly; intervention vessels can deploy repair umbilicals in hours instead of days.
Global maritime shipping produces ~3% of worldwide carbon emissions—more than aviation. A single large container ship or cruise ship operating continuously can emit as much CO2 as 50,000 cars. One of the quickest, most effective decarbonization strategies is cold ironing: the practice of supplying ships with electrical power from shore while docked at port, eliminating the need to run ship engines.

PROTOLON®(SC) (N)TSCGEWOEU

Global maritime shipping produces ~3% of worldwide carbon emissions—more than aviation. A single large container ship or cruise ship operating continuously can emit as much CO2 as 50,000 cars. One of the quickest, most effective decarbonization strategies is cold ironing: the practice of supplying ships with electrical power from shore while docked at port, eliminating the need to run ship engines.
(N)TSCGEWOEU MT SUB E PLUS cable is purpose-engineered to thrive in this hostile marine environment. Through specialized materials (tinned copper, chloroprene rubber), innovative architecture (per-phase copper braid shielding), and rigorous testing protocols, this cable delivers reliable 10–20 year operational lifespan in continuous 300-metre seawater immersion—a performance envelope that standard cables cannot achieve.

(N)TSCGEWOEU MT SUB E PLUS

(N)TSCGEWOEU MT SUB E PLUS cable is purpose-engineered to thrive in this hostile marine environment. Through specialized materials (tinned copper, chloroprene rubber), innovative architecture (per-phase copper braid shielding), and rigorous testing protocols, this cable delivers reliable 10–20 year operational lifespan in continuous 300-metre seawater immersion—a performance envelope that standard cables cannot achieve.
Premium Rubber Insulated Flexible Cable with Advanced Vulcanization Technology, EPR Cross-Linked Insulation, CR Sheath, Class 5 Tongling Copper Conductors, and Superior Oil & Corrosion Resistance — The Proven Standard for Household Appliances, Kitchen Equipment, and Office Electrical Systems

URSUS® MT KN PLUS

The URSUS® MT KN PLUS represents a paradigm shift in high-performance reeling cable engineering. Designed for applications operating at 240 metres per minute—more than 3× faster than standard TBM or mining hoist cables—this cable combines extreme mechanical durability with unprecedented lightweight performance, enabled by Kevlar®-reinforced core construction. Applications requiring ultra-high-speed reeling (deep-sea drilling riser deployment, offshore wind turbine installation vessels, ultra-fast tunnelling machines, and extreme industrial winches) have long sacrificed either speed capability or mechanical reliability. Conventional cables break under the torsional and tensile stresses of 240 m/min operation. The URSUS MT KN PLUS eliminates this compromise: it delivers double the tensile strength of standard cables while reducing overall weight and diameter, enabling faster deployment cycles, larger cable payloads per reel, and dramatically improved operational efficiency.
Tunnel boring machines (TBMs) represent some of the most electrically demanding and mechanically extreme operating environments on Earth. A typical hard-rock or mixed-ground TBM operates in a pressurized, confined underground chamber where hundreds of kilograms of electrical cable snake around reeling drums, hydraulic power systems, and high-frequency motor drives operating at medium voltage (6/10 kV). The electrical environment is noisy with harmonic distortion from variable-frequency drives; the mechanical environment is brutal, with cables flexing repeatedly as they wind and unwind from rotating drums at speeds up to 20 metres per minute.

(N)TSCGECEWOEU MT BMH PLUS

Tunnel boring machines (TBMs) represent some of the most electrically demanding and mechanically extreme operating environments on Earth. A typical hard-rock or mixed-ground TBM operates in a pressurized, confined underground chamber where hundreds of kilograms of electrical cable snake around reeling drums, hydraulic power systems, and high-frequency motor drives operating at medium voltage (6/10 kV). The electrical environment is noisy with harmonic distortion from variable-frequency drives; the mechanical environment is brutal, with cables flexing repeatedly as they wind and unwind from rotating drums at speeds up to 20 metres per minute.
Underground mining operations present extreme environmental challenges: darkness, high pressure, chemical exposure, thermal fluctuations, and electromagnetic noise. Mining personnel work hundreds of meters below the surface, often in regions where external lighting infrastructure is impractical, unreliable, or fully absent. In emergency scenarios—sudden power failures, cable rupture, gas leaks, or equipment malfunction—the ability to rapidly identify and locate critical power cables becomes a matter of life and death.

BiTservo® LED Self-Luminous Mining Cable

Underground mining operations present extreme environmental challenges: darkness, high pressure, chemical exposure, thermal fluctuations, and electromagnetic noise. Mining personnel work hundreds of meters below the surface, often in regions where external lighting infrastructure is impractical, unreliable, or fully absent. In emergency scenarios—sudden power failures, cable rupture, gas leaks, or equipment malfunction—the ability to rapidly identify and locate critical power cables becomes a matter of life and death.