Zimmermann K P, Simpson R K
Department of Physical Medicine and Rehabilitation, Baylor College of Medicine, Houston, TX 77030, USA.
Electroencephalogr Clin Neurophysiol. 1996 Apr;101(2):145-52. doi: 10.1016/0924-980x(95)00227-c.
Future advances in neuromagnetic stimulation depend significantly on the design of coils with improved focality. Although in the absence of internal current sources, no true focusing of magnetically induced currents is possible, improvements in the focality of current concentrations passing through an area of biologic tissue are achievable through variations of the shape, orientation and size of neuromagnetic stimulating coils. The "butterfly" and the "4-leaf" coils are two examples of planar designs which achieve improved focality through centralization of the maximum coil current and peripheral distribution of the return currents. We introduce the "slinky" coil design as a 3-dimensional generalization of the principle of peripheral distribution of return currents and demonstrate its advantages over planar designs.
神经磁刺激技术未来的进展在很大程度上取决于具有更高聚焦性的线圈设计。尽管在没有内部电流源的情况下,不可能真正聚焦磁诱导电流,但通过改变神经磁刺激线圈的形状、方向和尺寸,可以提高穿过生物组织区域的电流集中的聚焦性。“蝴蝶”线圈和“四叶”线圈是平面设计的两个例子,它们通过将最大线圈电流集中化和使返回电流在外围分布来实现更高的聚焦性。我们引入“弹簧”线圈设计,作为返回电流外围分布原理的三维推广,并展示其相对于平面设计的优势。