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Displacement Measurements in the Cryogenically Cooled Dipoles of the New CERN-LHC Particle Accelerator

机译:新的Cern-LHC粒子加速器的低温冷却偶极子中的位移测量

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All evidence indicates that new physics, and answers to some of the most profound scientific questions of our time, lie at energies around 1 TeV. To look for this new physics, the next research instrument in Europe's particle physics armory is the Large Hadron Collider (LHC). This challenging machine will use the most advanced superconducting magnet and accelerator technologies ever employed. LHC experiments are being designed to look for theoretically predicted phenomena. One of the main challenges in this new machine resides in the design and production of the superconducting dipoles used to steer the particles around the 27 km underground tunnel. These so-called cryodipoles are composed of an external vacuum tube and an insert, appropriately named the cold mass, that contains the particle tubes, the superconducting coil and will be cooled using superfluid Helium to 1.9 K. The particle beam must be placed inside the magnetic field with a sub-millimeter accuracy, this requires in turn that the relative displacements between the vacuum tube and the cold-mass must be monitored with accuracy. Due to the extreme condition environmental conditions (the displacement measurement must be made in vacuum and between two points with a temperature difference of more than 200 °C) no adequate existing monitoring system was found for this application. It was therefore decided to develop an optical sensor suitable for this application. This contribution describes the development of this novel sensor and the first measurements performed on the LHC cryodipoles.
机译:所有证据表明,新物理学,以及我们时间最深刻的科学问题的答案,躺在1 Tev大约左右的能量。要查找这款新物理学,欧洲粒子物理军械库中的下一个研究仪器是大型强子撞机(LHC)。这款具有挑战性的机器将使用最先进的超导磁铁和曾经使用的加速器技术。 LHC实验旨在寻找理论上预测的现象。这款新机器中的主要挑战之一驻留在设计和生产的超导偶极子,用于转向27公里的地下隧道周围的颗粒。这些所谓的低温脂肪由外部真空管和插入物组成,含有颗粒管,超导线圈和将使用超氟氦气冷却至1.9k的冷质。必须将粒子束放在内部磁场具有亚毫米精度,这反过来又需要以精度监测真空管和冷质量之间的相对位移。由于极端条件环境条件(必须在真空中进行位移测量,并且在200°C的温度差的两个点之间)未找到适当的现有监测系统。因此,决定开发适用于本申请的光学传感器。该贡献描述了该新颖传感器的开发和在LHC低温普利上进行的第一测量。

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