28 September 2026

Sumitomo Electric Wins Best Paper Award in B1 PS1 Category at CIGRE Paris Session 2026 -World鈥檚 First Technology to Detect Anomalies in 600 km-Long HVDC Submarine Cables-

快播app, Ltd. has successfully developed a world鈥檚 first technology for the early detection of external damage and other anomalies in long-distance high-voltage direct current (HVDC) submarine cables extending over 600 km.

The technology has been developed and successfully demonstrated by combining Sumitomo Electric鈥檚 ultra-low-loss optical fibre and erbium-doped fibre amplifier (EDFA) technologies with a commercially available Distributed Acoustic Sensing (DAS) system provided by AP Sensing GmbH. This achievement was highly acclaimed at the recent CIGRE*1 Paris Session 2026, one of the world鈥檚 leading international forums for electric power systems, where the paper on the topic received the Best Paper Award in the B1 PS1*2 Category.
 

System Overview Diagram
System Overview Diagram
Early Anomaly Detection System for more than 300 km HVDC submarine cable

Long-distance HVDC submarine cables are vulnerable to third-party damage, including impacts from ship anchors and fishing equipment. In recent years, a series of incidents involving submarine optical fibre cables鈥攁nother form of subsea critical infrastructure鈥攈as highlighted the potential risks faced by HVDC submarine cables. Concurrently, the expansion of renewable energy is driving the development of HVDC submarine cables with increasingly large transmission capacities in the gigawatt range and increasing transmission distances, spanning several hundred kilometres between geographically distant regions. HVDC submarine cables, also classified as important critical infrastructure, are attracting growing attention in terms of energy security.

For many years, one of the key challenges associated with long-distance submarine power cables has been that most of the cable is effectively 鈥渋nvisible鈥� due to limitations of current technology, thus making continuous monitoring impossible. Once an incident occurs, specifically in a blind spot, considerable time and effort are required to investigate and locate the fault on the seabed, resulting in high repair costs and prolonged interruptions to the power transmission relied upon.

Conventional fault-location methods have an accuracy limited to approximately 1 percent of the cable length鈥攁round 6 km on a 600 km cable鈥攔esulting in a wide area that must be surveyed on site. For submarine cables with extensive sections installed beneath the seabed, the need to investigate such a large area significantly increases the time required to identify the precise fault location.

AP Sensing has developed a Distributed Acoustic Sensing (DAS) system capable of detecting minute vibrations in optical fibres and identifying abnormal events in real time. The system had traditionally been capable of monitoring distances of approximately 100 km or less. By combining AP Sensing鈥檚 expertise and cooperation with Sumitomo Electric鈥檚 long-distance optical transmission technologies鈥攊ncluding the ultra-low-loss Z-PLUS FiberTM 130ULL optical fibre and remotely pumped erbium-doped fibre amplifiers (EDFA)鈥攁 monitoring target distance of more than 300 km is now achievable. At the time the paper was submitted, a monitoring distance of 270 km had already been successfully demonstrated.

In a remotely pumped configuration, the laser equipment and power supply required to operate the EDFA are not installed on the seabed. This eliminates these potential sources of failure and enhances system reliability. Long-term operation of the system is also expected to be achievable through maintenance of the laser equipment installed on land. Furthermore, the ultra-low-loss optical fibre, the EDFA and AP Sensing鈥檚 DAS system are all based on technologies with extensive field-proven track records. By combining these established technologies, the monitoring range has been extended without requiring the development of additional core technologies, paving the way for early practical deployment.

Using this monitoring capability of more than 300 km, measurements can be performed from both ends of a submarine power cable circuit, enabling continuous, real-time monitoring of the entire length of an HVDC submarine cable exceeding 600 km.

Over a 600 km monitoring distance, the theoretical location accuracy has improved by a factor of 33 compared with conventional methods, limiting the uncertainty to less than 200 meters (0.03 percent). During a practical demonstration of the technology conducted off the coast of Awaji Island, Japan and using an optical fibre integrated into an HVDC submarine cable, a weight designed to simulate a ship anchor impact was dropped onto the cable near the 262 km point. The system successfully detected the impact location with an error of only 68.4 m from the actual point of impact.

By enabling faults and external impacts to be located rapidly and accurately, this technology offers the advantage of significantly reducing the duration of power transmission downtime. Furthermore, the demonstration indicated the potential to develop methods for identifying vessels based on their approach to the cable infrastructure and the characteristic vibration signatures transmitted to the monitoring equipment by vessels in proximity to the critical infrastructure.

As HVDC networks continue to expand over longer distances, long-distance HVDC submarine cables are becoming increasingly essential to the development of renewable energy and the enhancement of energy security. Sumitomo Electric believes that enhanced visibility, early detection of abnormal events, and protection of critical assets will play an increasingly important role in improving the resilience of power infrastructure.

Reducing the time required to locate a fault following an incident also contributes significantly to lower repair costs and is therefore important from the perspective of optimising overall project operating costs. Against this background, Sumitomo Electric aims to promote the practical implementation of this world鈥檚 first submarine cable monitoring technology.

This achievement is based on results obtained from a project commissioned by the New Energy and Industrial Technology Development Organization (NEDO).*3 
 

<Award overview>
Award:
CIGRE Paris Session 2026 Best Paper Award (B1 PS1)
Award-winning paper:
鈥淓arly Detection of External Damage Incidents in Long-Distance Direct Current Submarine Cables鈥�
(Paper ID: 10824)
Award recipients:
Seiji Yamamoto, Soichiro Takeda, and Takefumi Shimoguchi (快播app, Ltd.)
Denis Bolotov and Ralf Albrecht (AP Sensing GmbH)
Date of award:
28 August 2026
Venue:
Palais des Congr猫s, Paris, France

*1: About CIGRE
CIGRE, the International Council on Large Electric Systems, is a private, non-profit organisation founded in Paris, France, in 1921 with the aim of developing and sharing expertise on electric power systems. CIGRE addresses technical challenges across all areas of power systems through 16 study committees and more than 250 working groups. Held every two years in Paris, the CIGRE Paris Session is recognised as one of the world's leading international forums for power industry professionals to share the latest technological developments and industry knowledge.

*2: About B1 PS1
B1 PS1 is a session within Study Committee B1 (Insulated Cables), focusing on PS1 (Future Cable Systems and Innovative Cable Applications).

*3: About NEDO
The New Energy and Industrial Technology Development Organization (NEDO) is a national agency that supports technology development to address energy and global environmental problems and to enhance Japan鈥檚 industrial technology through commissioned projects and subsidies.
 

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