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A coupled multiphysics FEM model to investigate electromagnetic, thermal and mechanical effects in complex assemblies: The design of the High-Luminosity Large Hadron Collider beam screen

机译:一个耦合的多物理场有限元模型,用于研究复杂组件中的电磁,热和机械效应:高光度大强子对撞机光束屏的设计

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In the framework of the High-Luminosity Large Hadron Collider (HL-LHC) project, new beam screens will be installed by 2024 within the cold bore of the superconducting magnets. The beam screen is an octagonal shaped pipe that shields the 1.9 K magnet cryogenic system from the heat loads and damage to the magnet coils that would be otherwise induced by the highly penetrating collision debris. It also ensures that proper vacuum conditions required for the stability of the beam are met.A failure scenario of the beam screen is represented by the magnet quench, a resistive transition of the superconducting magnets, that can compromise its mechanical integrity. During a quench the magnet gradient of the quadrupole, in which the beam screen is inserted, decays from 140 T/m to about 0 T/m in 0.4 s inducing high magnitude forces in the assembly. Understanding the magnetic, thermal and mechanical behaviours of the beam screen assembly during the quench is critical to enable its effective design and operation. A numerical model, that can accurately predict the behaviours of the beam screen during a magnet quench, has been developed.Compared to the analytical formulations used to design the beam screen currently installed in the LHC, the multiphysics FEM model developed in this research introduces multiple elements of novelty and improved performance. First, self-inductance effects are accounted for and found to reduce the induced forces up to approximately 2000% at high electrical conductivity values. Second, the one-way and two-way coupling of the magnetic with the mechanical and thermal interfaces are explored and the best trade-off is defined. Third, the mechanical response of the assembly is evaluated dynamically over the evolution of the magnetic field decay rather than just in a quasi-static manner. Fourth, three dimensional geometries can also be studied enabling the design of the components to be placed along the beam axis.The model has been verified by comparison to a closed form expression showing the advantages of considering self-inductance phenomena. The mechanical integrity of the new beam screen has been demonstrated and a less conservative design has been obtained, which has permitted to relax the tight constraints on interfacing systems. Amongst other applications, the model has already been applied at CERN to support the conceptual design of anad-hocbeam screen for the Future Circular Collider (FCC).
机译:在高光强强子对撞机(HL-LHC)项目的框架中,到2024年将在超导磁体的冷孔内安装新的电子束屏风。束屏是八角形的管道,可将1.9 K磁体低温系统与热负荷和电磁线圈损坏隔离开来,否则这些热量会因高穿透性碰撞碎片而引起。它还可以确保满足光束稳定性所需的适当真空条件。光束屏蔽的故障情况以磁体淬火(超导磁体的电阻性转变)为代表,这可能会损害其机械完整性。在淬火过程中,插入电子束屏的四极磁体的梯度在0.4秒内从140T / m下降到约0T / m,从而在组件中产生高强度的力。了解光束屏组件在淬火期间的磁,热和机械性能对于使其有效设计和操作至关重要。已经建立了一个可以准确预测磁体淬火过程中电子束屏蔽行为的数值模型。与目前用于大型强子对撞机的电子束屏蔽设计的解析公式相比,本研究开发的多物理场有限元模型引入了多个新颖性和改进的性能。首先,考虑了自感效应,并发现在高电导率值下,自感效应可将感应力降低至大约2000%。其次,探索了磁性与机械和热界面的单向和双向耦合,并确定了最佳折衷方案。第三,在磁场衰减的过程中动态评估组件的机械响应,而不仅仅是准静态方式。第四,还可以研究三维几何形状,从而使组件的设计可以沿光束轴放置。通过与显示自考虑现象的优势的闭合形式表达式进行比较,对模型进行了验证。已经证明了新光束筛的机械完整性,并获得了一种不太保守的设计,这可以减轻对接口系统的严格限制。在其他应用程序中,该模型已在CERN应用,以支持未来圆形对撞机(FCC)的反光束屏幕的概念设计。

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