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Highly Stable and Finely Timed Magnetic Fields Generated by Permanent Magnet Assemblies

机译:永磁组件产生的高度稳定且定时精确的磁场

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Permanent magnetic materials are the only magnetic source that can be used to generate magnetic fields without power consumption or maintenance. Such stand-alone magnets are very attractive for many scientific and engineering areas, but they suffer from poor temporal field stability, which arises from the strong sensitivity of the magnetic materials and mechanical support to temperature variation. In this work, we describe a highly efficient method useful to cancel the temperature coefficient of permanent magnet assemblies in a passive and accurate way. It is based on the combination of at least two units made of magnetic materials with different temperature coefficients arranged in such a way that the ratio of the fields generated by each unit matches the ratio of their effective temperature coefficients defined by both the magnetic and mechanical contributions. Although typically available magnetic materials have negative temperature coefficients, the cancellation is achieved by aligning the fields generated by each unit in tire opposite direction. We demonstrate the performance of this approach by stabilizing the field generated by a dipolar Halbach magnet, recently proposed to achieve high field homogeneity. Both the field drift and the homogeneity are monitored via nuclear magnetic resonance spectroscopy experiments. The results demonstrate the compatibility of the thermal compensation approach with existing strategies useful to fine-tune the spatial dependence of the field generated by permanent magnet arrays.
机译:永久磁性材料是唯一可用于产生磁场而无需消耗功率或维护的磁性源。这种独立的磁体在许多科学和工程领域都非常有吸引力,但是它们的时间场稳定性差,这是由于磁性材料的强烈敏感性和对温度变化的机械支持引起的。在这项工作中,我们描述了一种高效的方法,该方法可用于以无源且准确的方式消除永磁体组件的温度系数。它基于至少两个具有不同温度系数的磁性材料制成的单元的组合,其排列方式应使每个单元生成的场的比率与由磁和机械贡献定义的有效温度系数的比率相匹配。尽管通常可用的磁性材料具有负温度系数,但可以通过在轮胎相反方向上对齐每个单元生成的场来实现抵消。我们通过稳定最近提出的实现高场均匀性的偶极Halbach磁体产生的场来证明这种方法的性能。场漂移和均匀性均通过核磁共振波谱实验进行监测。结果证明了热补偿方法与现有策略的兼容性,该策略可用于微调永磁阵列产生的磁场的空间依赖性。

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