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Simulation of the cabling process for Rutherford cables: An advanced finite element model

机译:卢瑟福电缆的布线过程仿真:高级有限元模型

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In all existing large particle accelerators (Tevatron, HERA, RHIC, LHC) the main superconducting magnets are based on Rutherford cables, which are characterized by having: strands fully transposed with respect to the magnetic field, a significant compaction that assures a large engineering critical current density and a geometry that allows efficient winding of the coils. The Nb3Sn magnets developed in the framework of the HL-LHC project for improving the luminosity of the Large Hadron Collider (LHC) are also based on Rutherford cables. Due to the characteristics of Nb3Sn wires, the cabling process has become a crucial step in the magnet manufacturing. During cabling the wires experience large plastic deformations that strongly modify the geometrical dimensions of the sub-elements constituting the superconducting strand. These deformations are particularly severe on the cable edges and can result in a significant reduction of the cable critical current as well as of the Residual Resistivity Ratio (RRR) of the stabilizing copper. In order to understand the main parameters that rule the cabling process and their impact on the cable performance, CERN has developed a 3D Finite Element (FE) model based on the LS-Dyna software that simulates the whole cabling process. In the paper the model is presented together with a comparison between experimental and numerical results for a copper cable produced at CERN. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在所有现有的大型粒子加速器(Tevatron,HERA,RHIC,LHC)中,主要的超导磁体均基于卢瑟福电缆,其特点是:相对于磁场完全换位,显着的压实确保了大型工程关键电流密度和允许线圈高效绕线的几何形状。在HL-LHC项目框架内开发的用于改善大型强子对撞机(LHC)发光度的Nb3Sn磁体也基于卢瑟福电缆。由于Nb3Sn导线的特性,布线过程已成为磁体制造中的关键步骤。在布线期间,导线会经历较大的塑性变形,从而极大地改变了构成超导股线的子元件的几何尺寸。这些变形在电缆边缘上特别严重,并且可能导致电缆临界电流以及稳定铜的残余电阻率(RRR)大大降低。为了了解布线过程的主要参数及其对电缆性能的影响,CERN基于LS-Dyna软件开发了一个3D有限元(FE)模型,该模型模拟了整个布线过程。本文介绍了该模型,并对在CERN生产的铜缆的实验结果和数值结果进行了比较。 (C)2016 Elsevier Ltd.保留所有权利。

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