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Coil Design for Neuromuscular Magnetic Stimulation Based on a Detailed 3-D Thigh Model

机译:基于详细的3-D大腿模型的神经肌肉磁刺激线圈设计

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摘要

Magnetic stimulation is gaining importance as an alternative to electrical stimulation in neurorehabilitation because it offers deep penetration and low pain. However, presently available equipment is not ideal for this purpose and sometimes even unsuitable. Furthermore, it is not known what physical conditions a coil has to provide for efficient stimulation. To solve these two problems, we set up a detailed 3-D computational model of the thigh to evaluate various coil designs with previously reported experimental performance. Comparison of the stimulation results with known experimental performance shows that a high absolute electric field seems to be sufficient for effective stimulation. Coil-generated field gradients, in contrast, do apparently not play a role. As a more appropriate metric, the electromagnetic coupling between different coil designs and the muscles of the thigh is found to be characteristic and explains the previously reported experimental performance differences. Furthermore, it is a good predictor for the achievable muscle torque (more than 99% correlation), whereas the gradient fails in this context. Accordingly, the model is able to test the performance of coils virtually and reveal both general relationships as well as design rules. In addition, the coupling factor formalism predicts a theoretical maximum level of the possible field induction and thus a guideline for potential improvements in the future.
机译:磁刺激作为神经康复中电刺激的替代方法正变得越来越重要,因为它具有深层穿透力和低疼痛感。然而,目前可用的设备对于此目的不是理想的,有时甚至不合适。此外,未知线圈为有效刺激必须提供什么物理条件。为了解决这两个问题,我们建立了大腿的详细3D计算模型,以评估具有先前报道的实验性能的各种线圈设计。将刺激结果与已知实验性能进行比较表明,高绝对电场似乎足以进行有效刺激。相反,线圈产生的场梯度显然不起作用。作为一种更合适的度量,发现不同线圈设计和大腿肌肉之间的电磁耦合具有特征性,并解释了先前报道的实验性能差异。此外,它是可实现的肌肉扭矩(相关性超过99%)的良好预测指标,而在这种情况下,梯度将失败。因此,该模型能够虚拟测试线圈的性能,并揭示一般关系和设计规则。此外,耦合因子形式主义预测了可能的磁场感应的理论最大水平,从而为将来的潜在改进提供了指南。

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