The Large Hadron Collider (LHC) stretches 27 km around and relies on thousands of magnets of different types - dipoles, quadrupoles, sextupoles, octupoles, decapoles, etc. - to steer and control its particle beams. Each type performs a specialized task. Some of the most important are known as inner triplets.
These groups of three quadrupole magnets (hence the name) sit on both sides of the LHC's four main experiments. Their job is to focus the particle beams as tightly as possible just before the particles collide inside the detectors. The tighter the beams are "compressed," the greater the chance that particles will collide.
That makes the inner triplets essential for increasing the LHC's luminosity, i.e. the number of collisions that occur in a given period of time. More luminosity means more collisions, giving researchers more data to analyze. A major part of the future High-Luminosity LHC (HiLumi LHC) project involves replacing the existing inner triplets with a much more powerful generation of magnets.
The work is taking place during the third long shutdown (LS3). Reently, crews cut the first magnet interconnection, formally beginning the replacement operation. CERN Director-General Mark Thomson also visited LHC Point 1 (the ATLAS experiment) to mark the milestone.
"The replacement of these magnets with the new HiLumi LHC inner triplets is crucial for the coming high-luminosity years. The first quadrupole of the new triplets should arrive in the tunnel at the start of 2029. In total, 16 cryostats and 28 cryo-assemblies will be installed - a major undertaking," explains Jean-Philippe Tock, Head of the LS3 Coordination Team.
The new inner triplets are the product of years of research and development. They represent a major technological advance over the niobium-titanium magnets currently operating inside the LHC. Instead of niobium-titanium, the upgraded magnets use niobium-tin superconducting coils.
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