Arpaia Pasquale, Celano Biase, De Vito Luca, Esposito Antonio, Parrella Alessandro, Vannozzi Alessandro
Instrumentation and Measurement for Particle Accelerators Lab (IMPALab), Department of Electrical Engineering and Information Technology, University of Naples Federico II, Naples, Italy.
National Institute for Nuclear Physics (INFN), Naples, Italy.
Sci Rep. 2018 Jul 30;8(1):11426. doi: 10.1038/s41598-018-29667-1.
A method for monitoring the misalignment of the magnetic axis in solenoids is proposed. This method requires only a few measurements of the magnetic field at fixed positions inside the magnet aperture, and thus overcomes the main drawback of sturdy moving mechanics of other Hall sensor-based methods. Conversely to state-of-the-art axis determination, the proposed method can be applied also during magnet operations, when the axis region and almost the whole remaining magnet aperture are not accessible. Moreover, only a few measurements of the magnetic field at fixed positions inside the magnet aperture are required: thus a slow process such as the mapping of the whole aperture of a magnet by means of moving stages is not necessary. The mathematical formulation of the method is explained, and a case study on a model of a multi-layer solenoid is presented. For this case study, the uncertainty is assessed and the optimal placement of the Hall transducers is derived.
提出了一种监测螺线管中磁轴未对准情况的方法。该方法仅需在磁体孔径内的固定位置进行几次磁场测量,从而克服了其他基于霍尔传感器的方法中坚固移动机械装置的主要缺点。与现有技术的轴确定方法相反,所提出的方法也可在磁体运行期间应用,此时轴区域以及几乎整个其余磁体孔径都无法触及。此外,仅需在磁体孔径内的固定位置进行几次磁场测量:因此无需通过移动平台对磁体的整个孔径进行映射这样缓慢的过程。解释了该方法的数学公式,并给出了一个多层螺线管模型的案例研究。对于该案例研究,评估了不确定性并推导了霍尔传感器的最佳放置位置。