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Iron-free detector magnet options for the future circular collider

机译:未来圆形对撞机的无铁探测器磁铁选件

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In this paper, several iron-free solenoid-based designs of a detector magnet for the future circular collider for hadron-hadron collisions (FCC-hh) are presented. The detector magnet designs for FCC-hh aim to provide bending power for particles over a wide pseudorapidity range ($0ensuremath{le}|ensuremath{eta}|ensuremath{le}4$). To achieve this goal, the main solenoidal detector magnet is combined with a forward magnet system, such as the previously presented force-and-torque-neutral dipole. Here, a solenoid-based alternative, the so-called balanced forward solenoid, is presented which comprises a larger inner solenoid for providing bending power to particles at $|ensuremath{eta}|ensuremath{ge}2.5$, in combination with a smaller balancing coil for ensuring that the net force and torque on each individual coil is minimized. The balanced forward solenoid is compared to the force-and-torque-neutral dipole and advantages and disadvantages are discussed. In addition, several conceptual solenoid-based detector magnet designs are shown, and quantitatively compared. The main difference between these designs is the amount of stray field reduction that is achieved. The main conclusion is that shielding coils can be used to dramatically reduce the stray field, but that this comes at the cost of increased complexity, magnet volume, and magnet weight and reduced affordability.
机译:在本文中,提出了几种用于未来强子-强子碰撞的圆形对撞机(FCC-hh)的检测器磁体的无铁心电磁线圈设计。用于FCC-hh的检测器磁体设计旨在为宽伪快速范围($ 0 ensuremath { le} | ensuremath { eta} | ensuremath { le} 4 $)提供粒子弯曲能力。为了实现此目标,将主螺线管检测器磁体与前向磁体系统(例如先前介绍的力和扭矩中性偶极子)组合在一起。在这里,提出了一种基于螺线管的替代方案,即所谓的平衡前向螺线管,该螺线管包括一个较大的内部螺线管,用于以$ | ensuremath { eta} | ensuremath { ge} 2.5 $为粒子提供弯曲功率结合使用较小的平衡线圈,以确保最小化每个单独线圈上的净力和扭矩。将平衡的前向螺线管与力和转矩中性偶极进行了比较,并讨论了优点和缺点。另外,显示并定量比较了几种基于螺线管的概念性检测器磁体设计。这些设计之间的主要区别是所实现的杂散场减小量。主要结论是可以使用屏蔽线圈来显着减小杂散场,但这是以增加复杂性,磁体体积和磁体重量以及降低可负担性为代价的。

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