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Magnetic field measurement system in vertical status for superconducting undulator cooled in Dewar

机译:杜瓦瓶冷却的超导波荡器垂直状态磁场测量系统

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Superconducting undulators (SCUs) for advanced light sources are being developed rapidly to emit light with higher brightness and flux. The SCU consists of two superconducting magnets with a small gap, each with alternating poles. The SCU is invisible when operating in a Dewar or cryostat, so measuring the magnetic field in the narrow magnetic gap is a challenge in the development of the SCU. This paper presents a measurement system in vertical status for scanning the magnetic field of the SCU along the z-axis. The SCU is immersed vertically in 4.2K liquid helium in a Dewar and the scanning is powered by a servo motor at room temperature. The measurement system overcomes the temperature difference of 300K to drive the Hall probes to scan the magnetic field in the narrow magnetic gap of the SCU. In order to make the scanning area of the Hall probes coincide with the trajectory of the electron beam, a lot of detailed work on mechanical aspects has been done, such as controlling the positional accuracy of the Hall probes as they move, high precision machining and limiting the direction of movement. Unlike the currently reported magnetic field scans in the vertical status which are only available for SCU mock-ups of few periods, this system supports magnetic field measurements for SCUs up to 1.5m long. The measurement system was validated on a 20-period SCU prototype, and after modification, the magnetic field of a liquid helium-cooled 30.5-period SCU was scanned. When the excitation current of the SCU with a magnetic gap of 7mm is 450 A, the system measured a field distribution with a peak magnetic field of 1 T. The measurement system completed a full stroke trial run of 1750mm before the 1.5m SCU was machined. The results of magnetic field measurement from scanning in vertical status can be used as a reference for local shimming and correction of the magnetic poles of the SCU. This work establishes the SCU's ability to operate in cryostat horizontally.
机译:先进的超导波动器(并)光源排放正在迅速发展较高的光的亮度和通量。包括两个超导磁体小差距,每个交替波兰人。当操作在真空或是无形的低温恒温器,所以测量的磁场缩小磁差距是一个挑战并发展。测量系统在垂直状态扫描并沿着磁场的z轴。液氦杜瓦和扫描在室温下由一个伺服电机。温度测量系统克服了差300 k大厅探测扫描磁场在狭窄的磁性并的差距。区域的霍尔探头配合轨迹的电子束,很多详细的工作机械方面完成,例如控制位置精度大厅的探针移动,精度高加工和限制运动的方向。与目前报道的磁场扫描仅在垂直状态供并实物模型的几个时期,这个系统支持磁场测量并到1.5米长。验证在20-period并原型,之后修改、液体的磁场氦冷却30.5期并扫描。并与励磁电流的磁场7毫米的缺口是450,系统测量领域1 T的磁场分布和峰值。测量系统完成一个完整的中风试运行前的1750毫米1.5并加工。从扫描测量垂直状态为当地的匀场,作为参考修正的磁极,并。建立并运营能力的工作低温恒温器水平。

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