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Numerical evaluation of the electric field induced in a cubic phantom by different antennas at 2.45 GHz

机译:在2.45 GHz下不同天线在立方幻影中感应电场的数值评估

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Previous studies evidenced that probes used to measure the electric field in the air are affected by an additional uncertainty, which increases as the field level grows, when measuring numerically modulated signals, such as those typical of the Wi-Fi standard at 2.45 GHz. To reliably evaluate the electromagnetic power absorbed by a body exposed to such signals, the behavior of the probes used for measuring the electric field inside biological media has to be characterized as well. To do this, one must have antennas able to induce high electric field values inside dissipative materials placed in the near field region. In this study numerical simulations have been carried out on two different antenna models (horn and loop) in order to evaluate the electric field distribution inside a cubic phantom. Results indicate that the printed loop antenna is more efficient than the horn one in inducing high values of electric field (tens of V/m) inside the phantom. Therefore, it can be efficiently used for the characterization of the electric field probes in the presence of digitally modulated signals at 2.45 GHz.
机译:先前的研究证明,用于测量空气中电场的探头会受到附加不确定性的影响,在测量数字调制信号(例如2.45 GHz的Wi-Fi标准典型信号)时,不确定性会随着场强的增加而增加。为了可靠地评估暴露于此类信号的人体吸收的电磁功率,还必须对用于测量生物介质内部电场的探针的行为进行表征。为此,必须将天线放置在近场区域内的耗散材料内,从而能够感应出高电场值。在这项研究中,已经对两种不同的天线模型(喇叭和环形)进行了数值模拟,以评估立方体模型内部的电场分布。结果表明,印刷环形天线在诱导人体模型内的高电场值(数十V / m)方面比号角天线更有效。因此,在存在2.45 GHz数字调制信号的情况下,它可以有效地用于电场探头的表征。

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