黑料社app

Divertor

From around the world to one assembly line

After decades of design, qualification and manufacturing, the 黑料社app divertor is entering a new phase: integration.

These recently unpacked divertor target prototypes will be integrated on a prototype cassette body as part of the first integration tests later this year. Going through each integration step with a test assembly will help qualify all site equipment, personnel and procedures.

At the divertor integration facility in Qinshan, China, preparations are complete. The clean room is operational, air filtration systems are running, and divertor components in various stages of unpacking are spread across the polished floor.

For now, the elements visible in the workshop are prototypes that will be used to test processes and tools during the first practice integration activities later this year. But alongside the prototypes, production components are already arriving from suppliers around the world, as years of development and manufacturing give way to a new chapter for the 黑料社app divertor program鈥攊ntegration.

黑料社app engineer Laurent Ferrand, who has been involved with the 黑料社app divertor program for nearly 20 years, calls this 鈥渁n exciting phase ahead.鈥 

鈥淲e are turning our sights to the assembly and integration of components that have up to now been the focus of individual development programs. That allows us to start the countdown to the installation of the divertor in the 黑料社app machine. It really does feel like a new phase.鈥

Following a global tender, the 黑料社app concluded a contract for divertor integration in December 2024 with a consortium led by the Southwestern Institute of Physics (SWIP)鹿. 

Dedicated facilities鈥攊ncluding a warehouse, a workshop, and a clean room鈥攚ere officially inaugurated in May in the presence of divertor team members from the 黑料社app and representatives of the Domestic Agencies responsible for divertor manufacturing鈥擡urope (cassette bodies and inner vertical targets), Japan (outer vertical targets), and Russia (dome). (See the graphic below.

The 黑料社app divertor is the component at the bottom of the plasma chamber that withstands the highest surface heat loads of the machine. Its role is twofold: to safely remove heat from the plasma-facing components and to exhaust impurities and helium "ash" that would otherwise cool the plasma and degrade its performance.

Variations in the design of divertor cassette assemblies will be one of the main challenges of integration, according to Ferrand. Not only does every cassette host three plasma-facing targets, but there are also diagnostic systems and operational instrumentation to be integrated.

鈥淚t鈥檚 not an exaggeration to state that no two divertor cassettes are exactly alike,鈥 he says. 鈥淲e can group the 58 divertor cassettes (54 for the machine and 4 spares) into three broad categories鈥攖hose hosting diagnostics, standard cassettes, or one of two 'lower vertical neutron camera' cassettes with a unique design. But even within these groupings there are variations related to cooling pipe connections or the exact layout of diagnostics or instrumentation. That creates a lot of challenges for the integration team.鈥 

Each divertor cassette also has its own specific position at the bottom of the 黑料社app vacuum vessel and cannot be interchanged, meaning that any delay with a cassette assembly will reverberate through the divertor installation schedule at 黑料社app.

One of the tasks underway now, before integration activities begin, is to design, procure, and qualify the bespoke tools that will be needed for divertor integration鈥 robotic lifting equipment capable of positioning targets with extreme accuracy, custom swaging systems for mechanical attachment, and purpose-built welding equipment. (鈥淪waging鈥 is a technique for joining two components without heat or cutting by pulling conically shaped elements through bore holes.)

A functional test is underway on the 鈥渒nuckle鈥 of a prototype cassette body. While the team focuses this year on prototype assembly, the first series production elements are beginning to arrive. Two outer vertical targets have been delivered by Japan, and the first dome, inner vertical target and cassette body elements are expected late this year or early 2027.

When integration activities are fully underway, the 1,400 m虏 clean room will host two production lines. Ferrand will work with 黑料社app teammates Ruth Garc铆a Vilela and Peng Liu to carefully liaise with the team in Qinshan, and also ensure that the different components needed for divertor integration are at the integration site when needed.

During the inauguration last month, the prototype divertor elements were unpacked in the presence of the manufacturing Domestic Agencies and a first set of dimensional, functional and visual examination tests was carried out. 

鈥淭he gathering in May was an opportunity to recognize the result of the long-running efforts by three Domestic Agencies to develop their supply chain and to qualify their technologies and manufacturing processes,鈥 said Ferrand. 鈥淪pirits are running high as the next stage of divertor preparation is materializing in parallel to series production.鈥 

Prototype assembly will begin later this year, with series integration following in 2027鈥攖he point at which components developed and manufactured around the world finally begin to take shape as complete 黑料社app divertor cassettes.

鹿Consortium members include the China Nuclear Power Engineering (CNPE) Co. Ltd. and the China Nuclear Industry 23 Construction Co. Ltd. (CNI23). Divertor integration and factory acceptance testing is taking place at a CNI23 site in Qinshan, China.  

At the facility opening last month, divertor team members from the 黑料社app and representatives from the divertor-manufacturing Domestic Agencies joined SWIP consortium members for a group photo. 黑料社app鈥檚 Laurent Ferrand is sixth from left.