论文标题
一种冶金检查方法,用于评估限制性能NB3SN加速器磁铁线圈的损伤
A Metallurgical Inspection Method to Assess the Damage in Performance-Limiting Nb3Sn Accelerator Magnet Coils
论文作者
论文摘要
基于NB3SN的偶极子和四极磁铁的设计和生产对于在欧洲核研究组织(CERN)中实现高亮度大型强调对撞机(HL-LHC)至关重要。 NB3SN超导线圈旨在增强HL-LHC及以后的加速器磁体的弯曲和聚焦强度。由于NB3SN的脆性,线圈制造步骤非常具有挑战性,需要非常谨慎的QA/QC。 NB3SN丝中的缺陷可能导致淬火,最终在磁铁测试期间标称的性能限制。开发了一种新颖的检查方法,包括高级非破坏性和破坏性技术,以探索在性能限制线圈中发生的淬灭的根本原因。提出了通过这种创新检查方法为MQXF线圈获得的最相关的结果。这种方法允许精确评估与磁铁线圈相关的物理事件,主要发生在受损的链的形式下,并具有横向折断的子元素。 Coil-slice preparation, micro-optical observations of transverse and longitudinal cross-sections, and a deep etching technique of copper will be illustrated in the present work, with a focus on the results achieved for a CERN coil from a non-conforming quadrupole magnet prototype, and two coils fabricated in the US, in the framework of the Accelerator Upgrade Project (AUP) collaboration, from two different分别不合格的四极磁铁。通过拟议的检查方法获得的结果将有所说明。
The design and production of Nb3Sn-based dipole and quadrupole magnets is critical for the realization of the High-Luminosity Large Hadron Collider (HL-LHC) at the European Organization for Nuclear Research (CERN). Nb3Sn superconducting coils are aimed at enhancing the bending and focusing strengths of accelerator magnets for HL-LHC and beyond. Due to the brittle nature of Nb3Sn, the coil fabrication steps are very challenging and require very careful QA/QC. Flaws in the Nb3Sn filaments may lead to quenches, and eventually, performance limitation below nominal during magnet testing. A novel inspection method, including advanced non-destructive and destructive techniques, was developed to explore the root-causes of quenches occurring in performance-limiting coils. The most relevant results obtained for MQXF coils through this innovative inspection method are presented. This approach allows for precise assessment of the physical events associated to the quenches experienced b y magnet coils, mainly occurring under the form of damaged strands with transversely broken sub-elements. Coil-slice preparation, micro-optical observations of transverse and longitudinal cross-sections, and a deep etching technique of copper will be illustrated in the present work, with a focus on the results achieved for a CERN coil from a non-conforming quadrupole magnet prototype, and two coils fabricated in the US, in the framework of the Accelerator Upgrade Project (AUP) collaboration, from two different non-conforming quadrupole magnets, respectively. The results obtained through the proposed inspection method will be illustrated.