High Voltage Direct Current (HVDC) systems enable utilities to move more power further, efficiently integrate renewables, interconnect grids, and improve network performance. HVDC systems utilize power electronics technology to convert AC and DC voltage and are ideal for supporting existing systems or building new power highways.
GE Vernova provides solutions that offer grid operators the ability to provide reactive power support, enhance controllability, improve stability and increase power transfer capability of AC transmission systems.
Substation and Electrical Infrastructure Projects for Utility and Industrial Customers.
GE Vernova offers solutions for a variety of substation projects and applications, including Modular Substation Automation Systems, utility and industrial substation projects, as well as DC substation solutions.
Energy storage is the backbone of the modern power system, delivering reliable, high quality energy for utilities, data centers, industry, and communities. It unlocks the full potential of renewable and clean energy, ensuring critical operations stay continuously online in an always on economy while accelerating the electrification of everything.
Integrated electrical systems provide energy where the grid doesn’t reach, meeting increasing power demands while improving resilience and efficiency.
The energy landscape today is changing, this is being led by the current industry trends of Decarbonization, Digitization, Decentralization and Electrification. Discover how GE Vernova is working with utility, consumer and industrial customers to design and deploy tailored Microgrid and Distributed Energy Resource (DER) Management solutions.
GE Vernova delivers advanced power stability and flexibility solutions that help utilities and electro-intensive industries meet grid connection requirements and evolving regulatory standards. Our portfolio is designed to enhance grid performance, compliance, and resilience.
Innovations to Decarbonize the Electrical Grid. GRiDEA is our portfolio of decarbonization solutions that empower grid operators to address their net-zero objectives.
GE Vernova offers a wide range of transformer solutions for the utility, industrial, commercial, residential and energy markets. These solutions feature flexible, reliable and robust designs to support a wide range of applications. With units operating in some of the most demanding electrical environments around the world, We design and delivers transformer solutions that provide among the highest level of performance and reliability to meet rigorous operating requirements.
GE Vernova provides GIS solutions from 50 kV to 800 kV, along with secondary products to maximize switchgear and network operation. The portfolio includes a full range of SF₆ GIS as well as g³ (SF₆-free) GIS at 145 kV and 420 kV voltage levels for utilities and industries worldwide.
GE Vernova is one of the top circuit breaker suppliers in the world. Our products include a range of live tank circuit breakers (up to 800 kV), dead tank circuit breakers (up to 550 kV), as well as hybrid and compact switchgear assemblies. We also provide solutions for power generation applications with our generator circuit breakers for installations up to 1,500 MW.
GE Vernova is a global market leader for disconnectors (disconnect switches) since 1960, with 8 product facilities in 7 countries and hundreds of thousands installations in more than 130 countries around the world. The portfolio includes disconnectors for AC applications (up to 1,200 kV), for DC applications (up to 1,000 kV) and for railway applications. We also offer power connectors to connect two or more conductors for a continuous electrical path.
GE Vernova is an industry leader in the design and manufacturing of high, medium and low voltage instrument transformers. With more than 100 years of experience, We offer a broad array of standard and high accuracy models for revenue metering and system protection applications. The portfolio of instrument transformers ranges from low voltage at 600 V suitable for industrial and high accuracy revenue metering, all the way up to high voltage at 1,200 kV. The portfolio also includes line traps and digital instrument transformers.
For a century, utilities have relied on us to deliver electrical products and services to meet their quality, durability and performance needs. Our capacitor and reactor product lines are an integral part of our portfolio. GE Vernova provides power capacitors that meet ANSI, IEEE and IEC standards, and our low voltage capacitors are UL listed. Ratings range from 1 kvar to 500 MVAR, and from 240 volts to 500 KV.
GE Vernova provides a broad range of bushings and surge arresters to help protect electrical assets. The bushings portfolio includes AC and DC solutions that enable long life, high reliability and installation flexibility. GE Vernova’s Tranquell surge arresters are ideal for distribution and EHV applications up to 612kV, and are available as polymer and porcelain station and intermediate class IEEE/ANSI C62.11.
Our SF₆-free switchgear range features the same ratings and same dimensional footprint as the state-of-the-art SF₆ equipment, with a drastically reduced carbon footprint.
Drawing on more than 125 years of engineering heritage, GE Vernova offers rotating machine solutions designed for performance, reliability, and industrial scale.
Digital Native Products are not just an evolution of existing switchgear but a transformation in how GE Vernova conceives and builds primary equipment for the grid.Digital Native Products are designed with digital capabilities embedded, enabling a compact and standard design and are mechanically engineered to reach the accuracy required by advanced monitoring and control solutions. Products are ready to connect and operate quickly and effectively. Discover the various monitoring and control solutions that can be incorporate in Digital Native Products.
GE Vernova delivers advanced power electronics solutions that help electrify industries, optimize performance, and improve reliability. Our integrated portfolio supports critical applications with the technology and services needed to power a more efficient and sustainable future.
Safely and securely accelerate operations with tailored automation systems that enhance control, reduce risk and add value.
GridBeats™ is a portfolio of software-defined automation solutions for grid digitalization. The portfolio is designed to enable utilities and industrial customers to ensure a stable, efficient energy supply amidst the growing integration of renewable energy sources and aging infrastructure.
GE Vernova's comprehensive portfolio of solutions for implementing and managing a substation.
GE Vernova’s Protection, Control, and Metering solutions deliver precise, high-performance automation for today’s evolving grid. From advanced relays to multifunction meters, our portfolio helps utilities enhance reliability, streamline operations, and accelerate the energy transition. Backed by decades of expertise and global reach, we provide the products to protect assets, optimize performance, and power a more sustainable future.
GE Vernova offers a wide range of solutions to monitor and manage critical assets on the electrical grid, detect and diagnose issues and provide expert information and services to customers. Our asset monitoring and diagnostics portfolio includes solutions for single- and multi-gas transformer DGA, enhanced transformer solutions and switchgear monitoring, as well as software and services.
GE Vernova's Critical Infrastructure Communications (CIC) solutions deliver secure, resilient, and scalable networks that ensure operational continuity in even the most demanding environments. We help customers reduce downtime, enhance safety, and improve situational awareness through end-to-end communication solutions built for reliability and performance. This translates into greater efficiency, regulatory compliance, and peace of mind for mission-critical operations.
The collection of required asset condition data from the field on a large scale for GE Vernova and 3rd party electrical equipment is a key step in building a robust Asset Performance Management strategy. Grid Services specialists are constantly evaluating and implementing new innovative inspection technologies applying strict processes and methods. The digital inspections methods are designed to improve the efficiency of data collection, oil analysis and online monitoring. All new approaches to capture data are integrated into the EnergyAPM ecosystem for automatic data transfer.
GE Vernova's Asset Lifecycle Management services combine a large set of methodologies to collect condition data off and online, consulting and asset optimization services using digital technology to improve the monitoring, recording and analysis of asset operations and predict asset behavior.
GE Vernova’s innovative and high-quality services help maintain and optimize high-voltage electrical assets throughout their entire lifecycle. Leveraging the design and manufacturing knowledge of our engineers, the customized service solutions ensure substations and networks perform as planned. Experts deliver services for applications across the power system, keeping assets up-to-date, safe, reliable and efficient while improving customers’ return-on-investment.
GE Vernova provides a full range of services & support tailored to meet a broad range of power system needs across utility and industrial applications. With deep domain knowledge and industry expertise GE Vernova’s service application engineers and technical specialists can help plan, design, operate, maintain, and modernize your protection, control, monitoring and automation systems.
GE Vernova provides comprehensive services throughout the systems lifecycle. The services can be provided by our local team and with the support of our global Competence Centers when the equipment is installed, during the warranty period and beyond.
Our certified laboratories enable manufacturers and customers leverage deep domain expertise and advanced testing and analysis facilities to develop enhanced high-voltage products, certify their capabilities before market introductions and apply preventive maintenance to avoid unexpected interruptions and ensure the reliability of your operations.
Our product range covers from the smallest medium voltage electrical rotating machines to custom made large units, up to 80 MW, as well as their operating and protection controls. Our aftermarket fleet of over 70,000 rotating machine assets, spread over 150 countries worldwide, that we’ve served for a century. Our experience in all energy, industry and transportation sectors is broad and deep.
We connect the physical world with data to proactively detect and forecast the behavior of your assets by offering Digital Suite, Service 360 & Cyber security.
Our MV drives portfolio ranges from 100 kW to more than 100 MW and from 3.8 up to 13.8 kV voltages. It allows for higher operating efficiency, power availability, plant throughput, operational precision, and process yield. Our LV drives portfolio ranges from of 0.25kW to more than 6MW and from 270 up to 900VAC voltages which includes fully and doubly fed wind converters, marinized drives, metal and mining drives, Cranes, test benches, meeting the needs of critical electrification systems.
Utilities today seek to create and connect new sources of power generation to meet growing global demand, while also managing grid reliability, costs and regulatory factors.
Water is central not just to the economy, but to life. As a result, water treatment systems demand secure, dependable power to ensure process uptime. From the grid-connected substation to reliable electrical protection, control, and power quality metering, GE Vernova offers tailored solutions to keep critical plants operational and meet the unique needs of the water and wastewater industry.
As power systems become increasingly interconnected and complex, utilities need solutions that optimize energy transmission and management while improving reliability.
Data centers – and the information they store – are becoming increasingly integral to the way we live our lives every day. With rising demand also come rising costs. And more importantly, the information in these centers must remain secure while simultaneously accessible. We provide data centers with electrical infrastructure solutions from the input utility source to the IT server racks. This includes high-voltage switchgear and transformers, medium and low voltage electrical equipment, automatic transfer switches, switchboards, UPS systems, critical power PDUs, static transfer switches, and overhead busway. This chain of electrification products provides high quality and reliable products and services for the entire lifecycle of a data center.
The oil and gas industry is evolving at a rate never seen before, facing shifting pricing levels, ever-changing regulatory requirements, and increased environmental consciousness. Through reliable, safe, and innovative solutions and a holistic service offering, GE Vernova can help the energy sector thrive in this changing reality.
Modernizing and digitizing the distribution grid is imperative for utilities and customers to enhance power system stability and safety, while increasingly integrating distributed power and demand response.
The industry is changing. Simultaneously, so are your utility’s needs. Operational effectiveness, power stability, and critical asset management are key priorities – whether in pulp and paper, steel, or data centers. GE Vernova’s holistic portfolio of products and services are designed with reliability, innovation, and sustainability at the forefront, helping you face the energy transition with ease.
Mining companies require secure communications, efficient asset performance management, and dependable, innovative technology to protect their critical assets. GE Vernova offers a broad product portfolio to help you through each step of the mining process – safely and reliably.
November 4, 2025
The continued commitment to develop and evolve its products has enabled GE Vernova to maintain a strong position in a competitive HVDC market and provide an enhanced and flexible solution for new and replacement HVDC projects. The H450 HVDC thyristor-based valve is the latest such development, providing the ideal platform for future HVDC projects such as the Jeju Bipole 1 valve replacement in Korea.
HVDC converter station for Kepco's Jeju project installed on mainland
In Q1 2017, GE Vernova were successfully awarded an LCC HVDC Refurbishment Project in Korea. The project scope was for the replacement of the valves and controls of an existing 300 MW +/-180 kVdc Bi-Pole scheme. The scheme linked the mainland of Korea in Haenam to the island of Jeju. The key for GE Vernova to be able to undertake such a refurbishment project was having an LCC product portfolio flexible enough to provide an improved solution. Mark Donoghue, Principal Engineer at Grid Solutions, explains “This was critical for this type of scheme where there was a significant physical size and positioning constraint placed on the replacement valves due to the existing converter building which could not be modified”.
Haenam' HVDC converter substation building
The solution was to use the latest development and evolution of the H400 series valves called the H450. This is the culmination of a number of major developments over the last fifty years. In order to understand where the H450 sits in the evolution of thyristor based HVDC valves, let’s look at the history of the GE Vernova valve family. The first-generation oil-cooled outdoor thyristor valve was developed in the late 1960s with a pilot installation commissioned in 1971 using three parallel connected stacks of 37 mm 4 kV thyristors. This was followed in the early 1980s by the H200 series valves which were forced air-cooled, air-insulated indoor valves using 2 parallel 56 mm 4 kV thyristors per level. In the late 1980s, this was followed by the H300 series valves, the first water-cooled indoor floor mounted valve utilizing single 5.2 kV 100 mm thyristors per level. Finally, the latest H400 series suspended water-cooled indoor valve using single 8.5 kV thyristors with options for 100 mm or 125 mm thyristors per level was introduced in 2003. This was developed further into the H420 in 2010, allowing for higher transmission voltages and the possibility to use 150 mm thyristors, and the latest evolution is the H450 introduced in 2017. This improvement of the LCC valve allows GE Vernova to be more competitive on the HVDC LCC market, by deploying the H450’s reduced physical size valve, without affecting electrical performance.
H400 valve module
The key purpose of the Jeju Bipole 1 refurbishment project is to provide stable and economical power supply by a main equipment replacement and performance upgrade in order to meet an increase in continuous power demand. The existing equipment was originally installed by GE Vernova in 1994 and therefore around 25 years old. The original valves were based upon the 3rd generation H300 thyristor valve.
“This valve is the core power converter technology for the traditional, and mature, LCC HVDC market. The present H400/H420 valve technology has been in use for about 15 years and was Grid Solutions’ first suspended valve design. The technology has been used for a variety of HVDC projects, including back–to–back and point–to–point projects, the latter including submarine cable and overhead lines (OHL) projects. The valve has operated at DC voltages up to ± 800 kV on the Champa-Kurukshetra project in India and is able to accommodate 100 mm, 125 mm and 150 mm thyristor devices”, says Donoghue.
Zoom on the H450 series valve
In common with all valves from the H300 series onwards, GE Vernova’s latest H450 valves use direct liquid cooling which enables a single-circuit system with either pure deionized water or a water/glycol mix, depending on ambient temperature conditions at site. The valves are air-insulated and suspended within a controlled environment. By suspension mounting the valves, the mechanical stresses are reduced, which is of particular importance for applications in seismic areas. However, in some cases, such as pre-existing structures with inadequate suspension facilities, the valve may be floor mounted by using ceramic or composite support insulators. The valves employ high power thyristors, together with associated gating, damping and grading circuits, arranged in 6- or 12-pulse converter groups. According to the application type, thyristors with different voltage ratings and diameters can be easily accommodated.
In recent years, GE Vernova further evolved the H400 series valve with a "re-packaging" design of the existing H400 module and H400 valve arrangement. “The main scope of this development was the re-design of the module without affecting the electrical performance of the existing H400 design”, states Donoghue. He adds, “Hence the same thyristor options, the same di/dt reactor and the same damping resistors have been reused on the new H450 module”.
The H450 development project followed the same New Product Introduction process as usual, with different technical gates from the conceptual designs to the industrialized product for the first H450 contract project in South Korea with KEPCO BP1 refurbishment scheme.
H450 valve hall used for Jeju HVDC Bipole 1 renovation project
The key part of the H450 development centered around what is called the Thyristor Clamped Assembly (TCA), an assembly that houses the thyristors and water cooled heatsinks. In the existing H400 series valves there were two separate but identical TCAs; however, as part of the H450 development these were combined into a single clamped assembly containing twice as many thyristor levels. The key components that make this possible are the filament wound glass reinforced plastic (GRP) banded straps used to provide the large clamping forces required by the modern-day power thyristors used in HVDC. Depending upon the size of the thyristors (diameter) the maximum clamping force can range from 90 kN for the 100 mm diameter devices up to 200 kN for the largest 150 mm diameter devices. A notable feature of the band design that was developed for the H450 was that only one design was needed, irrespective of the size of thyristor used, which was not the case for the original H400 series valves. Another key change within the TCA was the reduction of overall thickness of the thyristor heatsinks, enabling space saving compared to the original design. To ensure electrical continuity through the valve/TCA when we do not require a full complement of thyristors fitted into some of the modules, dummy thyristors are used. In a matter of fact, the total number of thyristors required for the project valve is not a multiple of 12 (the maximum that can be fitted in a TCA). That’s where an actual thyristor is replaced with a copper block, also called dummy thyristor.
Thyristor clamped assembly (TCA) with thyristors (THY), dummy thyristors (Dummy THY) and heatsink (HSK)
The development of the single thyristor clamped assembly was the enabler to make significant reductions in the overall dimensions of the valve module; a key building block of an HVDC valve. A reduction in dimensions of some 38% and a reduction of weight of 20% were achieved, giving a significant flexibility in the valve arrangements and size of valve building. This size reduction was also key in the layout of the valves for the KEPCO valve replacement project. On the valve structure stand-point, two significant improvements have been achieved.
Haenam HVDC LCC converter station In Korea: Valve hall
The new arrangement provides an opportunity for GE Vernova to improve the width of the valve hall using the in-line valve arrangement when other equipment, such as the converter transformer and busbars, dictate the length of the valve hall. By adding the choice of using an “in-line” arrangement or the existing “square” arrangement for either suspended or floor mounted options with two, four or eight valves per Multiple-Valve Unit, GE Vernova’s HVDC LCC product provides flexibility for the transmission operators.
The design of a thyristor valve is a complex, multi-disciplinary process involving a range of engineering disciplines including power engineering, power electronics, analog electronics, semiconductor physics, heat transfer, fluid mechanics and mechanical and structural engineering. As there are no standards to follow for designing the HVDC value, GE Vernova relies on the vast experience and solid design practices gained through over 50 years in the HVDC industry. Modern thyristor valves are relatively standardized, that is to say that the bulk of the real design work is carried out during the product development phase, such that applying the valves to a particular project is a relatively straightforward matter. At its simplest, the work involved for a particular project may just involve adapting the number of series-connected thyristors according to the voltage rating requirements imposed by the overall system design. For the introduction of a new product and first project implementation this may not be so straightforward. We therefore sought to minimize manufacturing and testing risk by producing a batch of valve modules ahead of type testing. While there are no specific standards for the design of HVDC valves, this is not the case for the testing of HVDC valves. IEC 60700-1: ‘Thyristor valves for high-voltage direct current (HVDC) power transmission – Part 1: Electrical testing’ defines the test program for the valve and covers two broad categories: dielectric tests and operational tests. The type tests form an important part of the design verification process as well as customer project requirements. In addition, the standard covers both production routine testing and sample testing. When a new thyristor valve design has been produced or a previously tested valve design is modified, a program of type tests must be performed. Type testing of thyristor valves is complex, specialized and time-consuming. Some parts of it require extremely specific and expensive test circuits for which only a few serious players in HVDC can justify investment in. All thyristor valves are subjected to comprehensive routine testing in the factory. The purpose of this test program is to prove that the thyristor valves have been correctly assembled. It aims to identify wiring connections that have been incorrectly made, grading components that are out of tolerance, gate electronics that are malfunctioning, blockages in the cooling circuit, joints between the thyristor and heatsinks, etc. For the KEPCO valve replacement project the valves needed to be floor mounted and sited within the converter building, essentially as in the original installation. The reduction in size, weight and increased flexibility of the H450 design made this possible. The figure below shows the valve arrangement. Each of the three structures are known as a quadri-valve (i.e. a structure comprises four valves) and forms the overall 12-pulse converter bridge and represents one pole end of the scheme.
H450 series valve arrangement
Design enhancement of the corona shields Since the late 1970s, all commercial HVDC valves have been air-insulated; that is to say, the insulation between the valves and earth is achieved by using air instead of a higher-performance dielectric medium such as oil or SF6. This is mainly because of the large physical size of the valves and the need to access the valve components at regular intervals to replace failed components. As HVDC transmission voltages have increased sharply in the last decade (from 500 kV to 800 kV or even higher), the size of air clearances needed around the valves has also needed to increase, and since air clearances increase non-linearly with voltage, the air clearances around the valve are now having a dramatic effect on the size of the valve hall. The valve hall is a very large building with stringent requirements on air quality and there is therefore a considerable economic incentive to reduce its size. An external profile as smooth as possible For high voltages and large air clearances, the design of the corona shields at the top, bottom and sides of the valve is of paramount importance. The aim of these corona shields is to make the external profile of the valve as “smooth” as possible, avoiding regions of high curvature which will lead to localized areas of high electric field and an increased risk of flashover.
The design of the predecessor H420 valve module was carried over from the earlier H400 valve and only the external corona shields were changed, leading to relatively limited shielding, and the need for long clearance distances.
Colin C. Davidson, Consulting Engineer at GE Vernova's Grid Solutions business, explains, “the H450 valve is a mechanical “re-packaging” of the H420 valve, using the same electrical components but in a better and more compact mechanical layout, considering the external corona shielding from the outset. The performance of the H450 valve has been verified by undertaking a series of “50% flashover voltage” tests (U50 tests) which involve repeatedly applying switching impulses to the valve structure at gradually increasing voltages and for a range of different clearance distances”. The H450 valve has been demonstrated to achieve dramatically smaller electrical clearance requirements than its predecessor, more than a 50% reduction for the so-called “inline” configuration at the highest voltages (pictured).
U50 Test campaign