首页> 外文期刊>IEEE Transactions on Applied Superconductivity >Magnetic Field Measurements, 3D Field Calculation and Heat Measurements of a Prototype Thick Septum Magnet for 3 GeV Rapid Cycling Synchrotron of J-PARC
【24h】

Magnetic Field Measurements, 3D Field Calculation and Heat Measurements of a Prototype Thick Septum Magnet for 3 GeV Rapid Cycling Synchrotron of J-PARC

机译:J-PARC的3 GeV快速循环同步加速器原型厚隔片磁体的磁场测量,3D场计算和热测量

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Septum magnets used in the injection and extraction section of the 3 GeV RCS (rapid cycling synchrotron) of J-PARC (Japan proton accelerator research complex) require a large aperture for low-loss operations of high intensity beam, protection against high radiation, and high durability making unnecessary frequent maintenance after high activation. Therefore, the septum magnets have been designed to work in DC for mechanical stability. Also it works outside the beam vacuum, thus eliminating any trouble due to the leakage of cooling water in the vacuum system. A prototype extraction septum magnet was constructed. Magnetic field in the gap of the yoke and leakage field outside of the magnetic shield were measured with a three dimensional Hall probe. The experimental results were compared with three dimensional magnetic field calculations made by TOSCA. The measurement of the magnetic field in the gap agrees well with a simple 3D model. On the other hand, leakage field of the measurement is larger than that of the model. Because the thickness of the return yoke is not sufficient, the magnetic flux density approaches saturation. After we made a more detailed model, it was confirmed that the many bolt holes which fasten the return yoke narrow the effective cross sectional area, thus reduce the effective permeability, and make the magnetic reluctance and the leakage field larger. This paper also describes the results of heat measurements of the magnet and efficiency of water cooling.
机译:J-PARC(日本质子加速器研究中心)的3 GeV RCS(快速循环同步加速器)的注入和提取部分中使用的隔片磁体需要大孔径才能实现高强度束的低损耗操作,防止高辐射以及高耐用性,高激活后无需频繁维护。因此,隔片磁体已被设计为在DC中工作以提高机械稳定性。它也可以在真空束外工作,从而消除了由于真空系统中的冷却水泄漏而造成的任何麻烦。构建了原型提取隔片磁体。用三维霍尔探头测量了磁轭间隙中的磁场和磁屏蔽外部的泄漏场。将实验结果与TOSCA进行的三维磁场计算进行了比较。间隙中磁场的测量与简单的3D模型非常吻合。另一方面,测量的泄漏场大于模型的泄漏场。因为返回轭的厚度不足,所以磁通密度接近饱和。在我们制作了更详细的模型后,可以确认紧固回磁轭的许多螺栓孔使有效横截面变窄,从而降低了有效磁导率,并使磁阻和漏磁场变大。本文还介绍了磁体的热量测量结果和水冷却效率。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号