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旋转永磁刺激的电场特性

Electric Field Characteristics of Rotating Permanent Magnet Stimulation.

作者信息

Robins Pei L, Makaroff Sergey N, Dib Michael, Lisanby Sarah H, Deng Zhi-De

机构信息

Computational Neurostimulation Research Program, Noninvasive Neuromodulation Unit, Experimental Therapeutics and Pathophysiology Branch, National Institute of Mental Health, Bethesda, MD 20892, USA.

Department of Electrical and Computer Engineering, Worcester Polytechnic Institute, Worcester, MA 01609, USA.

出版信息

Bioengineering (Basel). 2024 Mar 6;11(3):258. doi: 10.3390/bioengineering11030258.

Abstract

Neurostimulation devices that use rotating permanent magnets are being explored for their potential therapeutic benefits in patients with psychiatric and neurological disorders. This study aims to characterize the electric field (E-field) for ten configurations of rotating magnets using finite element analysis and phantom measurements. Various configurations were modeled, including single or multiple magnets, and bipolar or multipolar magnets, rotated at 10, 13.3, and 350 revolutions per second (rps). E-field strengths were also measured using a hollow sphere (r=9.2 cm) filled with a 0.9% sodium chloride solution and with a dipole probe. The E-field spatial distribution is determined by the magnets' dimensions, number of poles, direction of the magnetization, and axis of rotation, while the E-field strength is determined by the magnets' rotational frequency and magnetic field strength. The induced E-field strength on the surface of the head ranged between 0.0092 and 0.52 V/m. In the range of rotational frequencies applied, the induced E-field strengths were approximately an order or two of magnitude lower than those delivered by conventional transcranial magnetic stimulation. The impact of rotational frequency on E-field strength represents a confound in clinical trials that seek to tailor rotational frequency to individual neural oscillations. This factor could explain some of the variability observed in clinical trial outcomes.

摘要

正在探索使用旋转永久磁铁的神经刺激设备对精神疾病和神经疾病患者的潜在治疗益处。本研究旨在通过有限元分析和体模测量来表征十种旋转磁体配置的电场(E场)。对各种配置进行了建模,包括单个或多个磁体,以及双极或多极磁体,以每秒10、13.3和350转(rps)的速度旋转。还使用填充有0.9%氯化钠溶液的空心球体(r = 9.2 cm)和偶极探头测量了电场强度。电场的空间分布由磁体的尺寸、极数、磁化方向和旋转轴决定,而电场强度由磁体的旋转频率和磁场强度决定。头部表面感应的电场强度在0.0092至0.52 V/m之间。在所应用的旋转频率范围内,感应电场强度比传统经颅磁刺激产生的电场强度低大约一到两个数量级。旋转频率对电场强度的影响在试图根据个体神经振荡调整旋转频率的临床试验中是一个混杂因素。这个因素可以解释在临床试验结果中观察到的一些变异性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/975a/10968657/d5b2e4095575/bioengineering-11-00258-g001.jpg

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