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首页> 外文期刊>Biomedical Engineering, IEEE Transactions on >Computational Study on the Thermal Effects of Implantable Magnetic Stimulation Based on Planar Coils
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Computational Study on the Thermal Effects of Implantable Magnetic Stimulation Based on Planar Coils

机译:基于平面线圈的植入式磁刺激热效应的计算研究

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Micromagnetic stimulation using coils sufficiently small to be implanted has been suggested as a potential method to overcome the limitations of electrical stimulation. We investigated the temperature increases in the brain implanted with planar coils. We conducted computational simulations on the thermal effects of implantable magnetic stimulation in a brain model using finite-element analysis, by varying geometric parameters of planar spiral coils, and repetitive stimulation pulse patterns. It was revealed that the temperature increase in the brain can be controlled by a careful design of coils to implant. The coil diameter greater than 8 mm was required to induce a temperature rise in the brain of less than 1 °C. If the coil diameter was larger than 10 mm, the subsequent temperature rises in the brain tissue was maintained consistently at about 0.24 °C or lower. Selection of the number of coil turns must rely on tradeoffs between the required current and voltage that the implanted source can generate, as the required voltage increases while the required current decreases with increasing number of coil turns. Additionally, the coil insulation with a thickness of a few micrometers was found to suppress the temperature rise in the brain effectively. Although these simulations employed only one threshold value of 10 V/m, which is rather on the lower end of stimulation threshold, the simulation results are expected to serve as guidelines for designing planar coils to be implanted in the brain for magnetic stimulation.
机译:已经提出了使用足够小以被植入的线圈的微磁刺激作为克服电刺激的局限性的潜在方法。我们研究了植入平面线圈的大脑温度升高。通过改变平面螺旋线圈的几何参数和重复刺激脉冲模式,我们使用有限元分析对植入式磁刺激在脑模型中的热效应进行了计算模拟。据透露,可以通过精心设计植入线圈来控制大脑中的温度升高。需要线圈直径大于8毫米才能使大脑中的温度升高小于1°C。如果线圈直径大于10毫米,则随后脑组织中的温度升高将始终保持在约0.24°C或更低。线圈匝数的选择必须依赖于所需电流与植入源可产生的电压之间的权衡,因为所需电压增加而所需电流随线圈匝数增加而减少。另外,发现厚度为几微米的线圈绝缘可以有效地抑制大脑中的温度升高。尽管这些模拟仅使用一个10 V / m的阈值,而该阈值恰好在刺激阈值的下端,但该模拟结果有望作为设计要植入大脑以进行磁刺激的平面线圈的指南。

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