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Optimizing the Magnetic Dipole-Field Source for Magnetically GuidedCochlear-Implant Electrode-Array Insertions

机译:优化用于磁导的磁偶极子场源耳蜗植入式电极阵列插入

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摘要

Magnetic guidance of cochlear-implant electrode arrays during insertion has been demonstrated in vitro to reduce insertion forces, which is believed to be correlated to a reduction in trauma. In those prior studies, the magnetic dipole-field source (MDS) was configured to travel on a path that would be coincident with the cochlea’s modiolar axis, which was an unnecessary constraint that was useful to demonstrate feasibility. In this paper, we determine the optimal configuration (size and location) of a spherical-permanent-magnet MDS needed to accomplish guided insertions with a 100 mT field strength required at the cochlea, and we provide a methodology to perform such an optimization more generally. Based on computed-tomography scans of 30 human subjects, the MDS should be lateral-to and slightly anterior-to the cochlea with an approximate radius (mean and standard deviation across subjects) of 64 mm and 4.5 mm, respectively. We compare these results to the modiolar configuration and find that the volume of the MDS can be reduced by a factor of five with a 43% reduction in its radius by moving it to the optimal location. We conservatively estimate that the magnetic forces generated by the optimal configuration are two orders of magnitude below the threshold needed topuncture the basilar membrane. Although subject-specific optimal configurationsare computed in this paper, a one-size-fits-all version with a radius ofapproximately 75 mm is more robust to registration error and likely morepractical. Finally, we explain how to translate the results obtained to anelectromagnetic MDS.
机译:已经证明了在插入期间耳蜗植入物电极阵列的磁性引导可以减小插入力,这被认为与减少创伤有关。在那些先前的研究中,磁偶极子场源(MDS)配置为沿着与耳蜗的axis骨轴重合的路径行进,这是不必要的约束,有助于证明可行性。在本文中,我们确定了完成引导插入以及耳蜗所需的100 mT场强所需的球形永磁MDS的最佳配置(尺寸和位置),并且我们提供了一种更普遍地执行这种优化的方法。根据对30位人类受试者的计算机断层扫描,MDS应该位于耳蜗的外侧和稍向前,其半径(受试者的平均和标准偏差)分别为64 mm和4.5 mm。我们将这些结果与模块化结构进行了比较,发现通过将MDS移至最佳位置,其半径可以减小5倍,半径减小43%。我们保守地估计,最佳配置产生的磁力比所需的阈值低两个数量级。刺穿基底膜。尽管特定于主题的最佳配置在本文中进行了计算,半径为大约75毫米对定位误差更可靠,并且可能更大实际的。最后,我们说明如何将获得的结果转换为电磁MDS。

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