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Analysis of human brain exposure to low-frequency magnetic fields: A numerical assessment of spatially averaged electric fields and exposure limits

机译:人脑在低频磁场中的暴露分析:空间平均电场和暴露极限的数值评估

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Compliance with the established exposure limits for the electric field (E-field) induced in the human brain due to low-frequency magnetic field (B-field) induction is demonstrated by numerical dosimetry. The objective of this study is to investigate the dependency of dosimetric compliance assessments on the applied methodology and segmentations. The dependency of the discretization uncertainty (i.e., staircasing and field singularity) on the spatially averaged peak E-field values is first determined using canonical and anatomical models. Because spatial averaging with a grid size of 0.5mm or smaller sufficiently reduces the impact of artifacts regardless of tissue size, it is a superior approach to other proposed methods such as the 99th percentile or smearing of conductivity contrast. Through a canonical model, it is demonstrated that under the same uniform B-field exposure condition, the peak spatially averaged E-fields in a heterogeneous model can be significantly underestimated by a homogeneous model. The frequency scaling technique is found to introduce substantial error if the relative change in tissue conductivity is significant in the investigated frequency range. Lastly, the peak induced E-fields in the brain tissues of five high-resolution anatomically realistic models exposed to a uniform B-field at ICNIRP and IEEE reference levels in the frequency range of 10Hz to 100kHz show that the reference levels are not always compliant with the basic restrictions. Based on the results of this study, a revision is recommended for the guidelines/standards to achieve technically sound exposure limits that can be applied without ambiguity.
机译:通过数值剂量法证明了对由于低频磁场(B场)感应而在人脑中感应的电场(E场)建立的暴露极限的遵守。本研究的目的是调查剂量学依从性评估对所应用方法和细分的依赖性。首先使用规范和解剖模型确定离散化不确定性(即阶梯和场奇异性)对空间平均峰值E场值的依赖性。由于网格大小为0.5mm或更小的空间平均可以充分减少假影的影响,而与组织大小无关,因此它是对其他拟议方法(如第99个百分位数或电导率对比的拖影)的一种较好方法。通过规范模型证明,在相同的均匀B场曝光条件下,同质模型可以大大低估异构模型中的峰值空间平均E场。如果组织电导率的相对变化在研究的频率范围内很明显,则发现频率缩放技术会引入很大的误差。最后,在10Hz至100kHz频率范围内,在ICNIRP和IEEE参考水平上暴露于均匀B场的五个高分辨率解剖逼真模型在脑组织中的峰值感应电场表明,这些参考水平并不总是符合标准有基本限制。根据这项研究的结果,建议对指南/标准进行修订,以达到技术上合理的声暴露限制,并且可以毫无歧义地适用。

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