Gorst Aleksandr, Zavyalova Kseniya, Yakubov Vladimir, Mironchev Aleksandr, Zapasnoy Andrey
Radiophysics Faculty, Tomsk State University, Tomsk 634050, Russia.
Bioengineering (Basel). 2020 Nov 19;7(4):149. doi: 10.3390/bioengineering7040149.
The article presents the design of the near-field probe, which is a combined emitter (a combination of a symmetric dipole and an annular frame). The design of the probe allows forming a prolonged zone of the near-field. This effect can be used for in-depth penetration of the field in media with high absorption, without loss of information. Particular attention in this article is given to a detailed study of the interaction of the field created by this probe on plane-layered biological media. A theoretical analysis of the interaction of the electromagnetic field was carried out in a wide frequency band with a model plane-layer biological medium containing blood vessels of shallow depth using the proposed probe design. Conclusions are drawn about the depth of penetration of a useful signal into different media-analogs of biological tissue. This study is necessary to consider the possibility of using this probe for non-invasive measurements of blood glucose concentration. The studies were carried out using numerical simulation in the CST (Computer Simulation Technology) Microwave Studio environment. All biological tissues were simulated over a wide frequency range from 10 MHz to 10 GHz.
本文介绍了近场探头的设计,它是一种组合发射器(对称偶极子和环形框架的组合)。探头的设计允许形成一个延长的近场区域。这种效应可用于在高吸收介质中实现场的深度穿透,而不会损失信息。本文特别关注对该探头在平面分层生物介质上产生的场的相互作用进行详细研究。利用所提出的探头设计,在一个宽频带内对含有浅深度血管的模型平面分层生物介质进行了电磁场相互作用的理论分析。得出了有用信号在不同生物组织模拟介质中的穿透深度的结论。这项研究对于考虑使用该探头进行无创血糖浓度测量的可能性是必要的。这些研究是在CST(计算机模拟技术)微波工作室环境中使用数值模拟进行的。所有生物组织都在从10 MHz到10 GHz的宽频率范围内进行了模拟。