Showing posts with label magnetostatics. Show all posts
Showing posts with label magnetostatics. Show all posts

Friday, 12 July 2024

Comparing Detector Magnetic Systems for the Future Circular Hadron-Hadron Collider | Chapter 8 | Science and Technology - Recent Updates and Future Prospects Vol. 1

 This work describes a detailed study of two possible options for the magnetic system of a Future Circular hadron-hadron Collider detector. The conceptual design study of a Future Circular hadron-hadron Collider (FCC-hh) to be constructed at CERN with a center-of-mass energy of the order of 100 TeV requires superconducting magnetic systems with a central magnetic flux density of an order of 4 T for the experimental detectors. The developed concept of the FCC-hh detector involves the use of an iron-free magnetic system consisting of three superconducting solenoids: the main coil of 10.9 m inner diameter and 18.954 m length with a total current of 69.6 MA-turns that give a central magnetic flux density of 4 T, and two superconducting forward coils of 5.6 m inner diameter and 3.3997 m length with a total current of 12.6 MA-turns each that give a central magnetic flux density of 3.2 T in each coil. A superconducting magnet with a minimal steel yoke is proposed as an alternative to the baseline iron-free design. This design includes the same three coils enclosed in the 22,240-ton steel flux-return yoke. In this study, both magnetic system options for the FCC-hh detector are modeled with Cobham’s program TOSCA. All the main characteristics of both designs are compared and discussed.


Author(s) Details:

Vyacheslav Klyukhin,
Skobeltsyn Institute of Nuclear Physics, Lomonosov Moscow State University, RU-119992, Moscow, Russia and European Organization for Nuclear Research (CERN), CH-1211 Geneva 23, Switzerland.


Austin Ball
European Organization for Nuclear Research (CERN), CH-1211 Geneva 23, Switzerland.

Christophe Paul Berriaud
CEA Irfu, 91191 Saclay, France.


Benoit Curé
European Organization for Nuclear Research (CERN), CH-1211 Geneva 23, Switzerland.


Alexey Dudarev
European Organization for Nuclear Research (CERN), CH-1211 Geneva 23, Switzerland.


Andrea Gaddi
European Organization for Nuclear Research (CERN), CH-1211 Geneva 23, Switzerland.


Hubert Gerwig
European Organization for Nuclear Research (CERN), CH-1211 Geneva 23, Switzerland.


Alain Hervé
Department of Physics, University of Wisconsin, Madison, WI 53706, USA.

Matthias Mentink
European Organization for Nuclear Research (CERN), CH-1211 Geneva 23, Switzerland.

Werner Riegler
European Organization for Nuclear Research (CERN), CH-1211 Geneva 23, Switzerland.

Udo Wagner
European Organization for Nuclear Research (CERN), CH-1211 Geneva 23, Switzerland.


Herman Ten Kate
European Organization for Nuclear Research (CERN), CH-1211 Geneva 23, Switzerland.


Please see the link here: https://stm.bookpi.org/STRUFP-V1/article/view/14347

Thursday, 14 March 2024

The CMS Magnetic Field Map (III): Development of the CMS Magnetic Field Map | Chapter 7 | Current Perspective to Physical Science Research Vol. 7

This chapter is the third part in a series of publications on the Compact Muon Solenoid (CMS) detector magnetic field map creation. The chapter focuses on pioneering work on the performance of the three-dimensional (3D) magnetic field map in the entire volume of the CMS detector at the Large Hadron Collider at CERN. In the CMS detector the magnetic field deflects the charged particles produced in the proton–proton collisions at the center-of-mass energy of 13.6 TeV. The curvatures of the charged particles allow the measurements of the particle momenta with help of the silicon tracking detectors located in the solenoidal magnetic flux density of 3.81 T. The magnetic system of the CMS detector is of a heterogeneous type, where the magnetic flux is created by a superconducting solenoid coil enclosed in a steel flux-return yoke. The 10,000-ton steel yoke of the magnet is used as a series of magnetized layers up to 620 mm thick which are penetrated only by muons, making it possible to identify them and measure their momenta in a muon spectrometer.  The programs for simulation and reconstruction of the momenta of the charged particles emerging from collision events require the knowledge of the value of the magnetic flux density components at the coordinates of space points along the trajectories of the particles. To describe the CMS magnetic flux distribution in the entire CMS detector volume, a system of the primitive 3D volumes containing the values of the magnetic flux density measured inside the superconducting coil inner volume and modelled outside the coil across a special mesh of reference nodes was developed. This system, called the CMS magnetic field map, follows the geometric features of the yoke and allows the interpolation of the magnetic flux density between the nodes to obtain the magnetic field values at any spatial point inside a cylinder of 18 m in diameter and 48 m in length, where all the CMS sub-detectors are located. The geometry of the volumes is described inside one 30° azimuthal sector of the CMS magnet. To obtain the values of the magnetic flux density components across the entire azimuth angle of the CMS detector, rotational symmetry is applied. Volumes are organized in a hierarchical structure optimized for fast global searching, and caching techniques allow simulation and track extrapolation algorithms to minimize the number of global volume searches.


Author(s) Details:

Nicola Amapane,
INFN Sezione di Torino, I-10125 Torino, Italy and Dipartimento di Fisica, Università di Torino, I-10125 Torino, Italy.

Vyacheslav Klyukhin,
Skobeltsyn Institute of Nuclear Physics, Lomonosov Moscow State University, RU-119992, Moscow, Russia. d European Organization for Nuclear Research (CERN), CH-1211 Geneva 23, Switzerland.

Please see the link here: https://stm.bookpi.org/CPPSR-V7/article/view/13455