高碰撞等离子体对人脑辐射防护的影响

Yuhuan Liu, T. Guo, Chaoxiang Guo, Yingqin Zeng, Xiangrui He, Songliu Yuan
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摘要

目的:寻找一种合理的电磁保护装置复合结构,特别是等离子体参数的分布特征和运行条件。方法:高压放电等离子体因其碰撞频率高,可作为填充介质,起到电磁防护作用。提出了求解复杂介电常数等离子体中电磁波传播特性的策略和算法。当介电常数的实部和虚部在同一数量级时,虚部的值会影响等离子体介电常数的特性,也会影响EMW的传播行为。采用时域有限差分方法研究了EMW在虚拟人脑模型中的传播过程。通过优化等离子体层和空气层的布局,构建了有效的相位调节器,大大降低了反射波的振幅。结果:仿真结果表明,等离子体使VHB中的电磁场振幅有不同程度的降低。在1.8 ~ 3.6 ghz频率范围内,其最大平均降低约25%,相应的SAR值降低超过40%。结论:等离子体的存在可使头皮和肌肉具有优异的抗EMW入射性能,使脑体内电磁场振幅较小,从而有效保护脑组织。这些研究成果对高频EMW防护设备的结构设计具有很好的参考价值和工程适用性。
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Effects of High-collision Plasma on Radiation Protection of Human Brain
Objective: The purpose of this paper is to find a reasonable composite structure of electromagnetic protection device, especially the distribution characteristics of plasma parameters and operation conditions. Methods: Due to its high collision frequency, the high-pressure discharge plasma can be usedas a filling medium to take the electromagnetic protection effect. The strategies and algorithmsare presented to solve the propagation characteristics of electromagnetic wave (EMW) in plasma with complex dielectric constant. When the real and imaginary part of permittivity are of the same order of magnitude, the imaginary part value will impact on the feature of plasma dielectric constant, also affect the behavior of propagation of EMW. The propagation process of EMW in virtual human brain (VHB) model is investigated by finite difference time domain method. By optimizing the layout of plasma layer and air layer, an effective phase regulator is constructed, and the reflected wave amplitude is greatly reduced. Results: The simulation results show that plasma makes the amplitude of the electromagnetic fields in VHB decrease to different degrees. their maximum average decrease is about 25% and the corresponding reduction of SAR value is more than 40% in the frequency range of 1.8-3.6GHz. Conclusion: The existence of plasma can make the scalp and muscle possess the excellent performance in resisting the incident of EMW, so that the amplitude of the electromagnetic field inside the brain body is small, so as to effectively protect the brain tissue. These research results have good reference value and engineering applicability for the structure design of protection equipment with high frequency of EMW.
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