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分体式超导磁体绕制及降温励磁过程中的力学性能测试
Mechanical properties testing during winding and cooling excitation processes of the split superconducting magnet
投稿时间:2024-05-02  修订日期:2024-06-14
DOI:
中文关键词:  分体式超导磁体  线圈绕制  无线测试  降温及励磁
英文关键词:split superconducting magnet  coils winding  wireless testing  cooling and excitation
基金项目:国家自然科学基金项目(面上项目,重点项目,重大项目)
作者单位邮编
代国玺 西部灾害与环境力学教育部重点实验室
兰州大学土木工程与力学学院 
730000
吴北民 中国科学院近代物理研究所 730000
辛灿杰 中国科学院近代物理研究所 730000
王省哲* 西部灾害与环境力学教育部重点实验室
兰州大学土木工程与力学学院 
730000
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中文摘要:
      由超导磁体、杜瓦及低温系统以及力学试验机搭配组成的测试平台可实现超导体的力-热-电-磁多场测试,其中超导磁体的功能是提供背景磁场。分体式低温超导磁体可在中心处产生均匀的横向磁场,且其半开放式的结构为测试提供了便利和空间。该超导磁体运行于低温、强磁场、大电流环境中,其所承载的复杂的电磁力、热应力及装配力等可能会降低其电磁性能和稳定性,因此需对磁体结构及其性能进行核验。本文使用低温应变片、低温热传感器及霍尔片等工具并基于无线应变测试方法等对超导线圈的动态绕线过程、线圈组件的降温及励磁过程开展了实验研究。结果表明:动态绕线时线圈内积累的应变与绕线层数基本呈线性关系,且应变随时间略微回落;通电时线圈组件的应变及其周围的磁场与加载电流有较高的同步性。相关测试为磁体研制和运行状态分析提供了可靠数据,有助于大科学装置的设计和制作。
英文摘要:
      A test platform consisting of a superconducting magnet, Dewar and cryogenic systems, and a mechanical testing machine can realize the force-thermal-electrical-magnetic multi-field testing of superconductors, in which the superconducting magnet functions to provide a background magnetic field. The split low-temperature superconducting magnet can generate a uniform transverse magnetic field at the center, and its semi-open structure provides convenience and space for testing. The split low-temperature superconducting magnet operate in low-temperature, strong magnetic field and high-current environments, verifying the structure and performance of split low-temperature superconducting magnets is necessary because these conditions can cause the complex electromagnetic forces, thermal stresses, and assembly forces they carry to deteriorate the magnets' electromagnetic performance and stability. The dynamic winding process of superconducting coils, as well as excitation and cooling processes of the coil assembly, were experimentally studied in the research applying wireless strain testing method and using instruments like cryogenic strain gauges, cryogenic thermal sensors, and Hall plates. The findings demonstrate that: strain accumulated in the coils during dynamic winding is essentially linear with the number of winding layers and falls back slightly with time, and the strain of the coil assembly and the surrounding magnetic field during energization have a high synchronization with the excitation current. These testing offer trustworthy data for developing magnets and analyzing their operational states, that supports the creation of huge scientific device.
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