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DOE OSTI · 2336774

A Flexible Field Mapping System for Accelerator Magnets

Abstract

Magnetic field mapping is a fundamental magnetic measurement method that typically uses Hall and NMR sensors. In magnet measurement facilities, such systems are likely used in various configurations suitable for a specific task at hand. To address this diversity, the authors developed a flexible field mapping system capable of being configured and tailored to each particular measurement case. Further, the system needs to address the variability introduced by differences in sensors and their readout systems, probe positioning systems, power supply systems, and required mapping geometry (mapping space and grid, measurement steps and sequences). Although the discussed field mapping systems range from a self-propelled multi-sensor mapper of a large detector magnet to a single 3D Hall sensor system to scan a small permanent magnet, they were all built with the same core mapping system. The variability present in field mapping systems, the measurement system architecture addressing this variability, as well as examples of several field mapping systems built in this architecture are presented.

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BibTeXRIS

Nogiec, J. M., Akella, P., Tartaglia, M., Thompson, P., Walbridge, D.. 2023-12-25. A Flexible Field Mapping System for Accelerator Magnets. https://doi.org/10.1109/tasc.2023.3346354

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