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引用次数: 3

摘要

有限的磁通量已经成为缩小感应能量、传感和致动装置适用性的一个重大限制。磁通浓度可以提供更高的磁通密度B,从而在小范围内提供更高的转导功率密度、灵敏度和力,从而潜在地解决这一挑战。本文从通量路径的角度对通量浓度进行了研究。数值模拟结果表明,高渗透率柱状岩心可以在其长径比范围内实现通量集中比,因为它们可以从可到达的附近收集通量。h形导磁结构可以将入射到其表面的通量集中,并引导其通过小截面,从而获得更高的集中比。在一项实验研究中,使用单个直径为5mm、高为20mm的圆柱体时,通量浓度因子为6,而增加70 mm × 12 mm × 2mm法兰时,通量浓度因子增加了4.3。结果表明,总B扩增比为26。作为应用演示,该方法用于感应能量采集器,从0.12 mT RMS, 800 Hz场中产生11.4 mW的平均输出功率(0.3 mW/g)。
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Magnetic Flux Guidance Using H Structures for Miniature Transducers
Limited magnetic flux has been a significant restriction in the applicability of scaled-down inductive energy, sensing and actuating devices. Magnetic flux concentration could potentially address this challenge by offering higher flux density B and thereby higher transduction power density, sensitivity and force in the small scale. In this paper, a study of flux concentration from a flux path perspective is presented. Numerical simulations show that high permeability cylindrical cores can achieve a flux concentration ratio in the scale of their aspect ratio, as they gather flux from their reachable vicinity. Flux guiding structures such as H-shapes can concentrate the flux incident to their surface and guide it through a small cross-section, achieving a higher concentration ratio. In an experimental study, a flux concentration factor of 6 is reported using a single 5 mm diameter, 20 mm high cylinder, and an additional increase factor of 4.3 from the addition of 70 mm × 12 mm × 2 mm flanges. A total B amplification ratio of 26 is demonstrated. As an application demonstrator, this approach is employed in an inductive energy harvester yielding 11.4 mW average power output (0.3 mW/g) from a 0.12 mT RMS, 800 Hz field.
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