Narang N, Dubey S K, Negi P S, Ojha V N
AcSIR, NPL Campus, New Delhi 110012, India.
Apex Level Standards and Industrial Metrology, National Physical Laboratory, New Delhi 110012, India.
Rev Sci Instrum. 2016 Dec;87(12):124703. doi: 10.1063/1.4971316.
An Electric (E-) field sensor based on coplanar waveguide-fed microstrip antenna to measure E-field strength for dual-band operation at 914 MHz and 2.1 GHz is proposed, designed, and characterized. The parametric optimization of the design has been performed to obtain resonance at global system for mobile communication and universal mobile telecommunication system frequency band. Low return loss (-17 dB and -19 dB), appropriate gain (0.50 dB and 1.55 dB), and isotropic behaviour (directivity ∼ 1 dB), respectively, at 914 MHz and 2.1 GHz, are obtained for probing application. Antenna factor (AF) is used as an important parameter to characterize the performance of the E-field sensor. The AF measurement is explained in detail and results are reported. Finally, using the designed E-field sensor, the E-field strength measurements are carried out in a transverse electromagnetic cell. The key sources of uncertainties in the measurement are identified, evaluated, and incorporated into the final results. The measurement results are compared with theoretical values, which are found in good agreement. For comparative validation, the results are evaluated with reference to an already calibrated commercially available isotropic probe.
本文提出、设计并表征了一种基于共面波导馈电微带天线的电场(E 场)传感器,用于在 914 MHz 和 2.1 GHz 双频段测量电场强度。已对该设计进行参数优化,以在全球移动通信系统和通用移动通信系统频段实现谐振。对于探测应用,在 914 MHz 和 2.1 GHz 时分别获得了低回波损耗(-17 dB 和 -19 dB)、适当的增益(0.50 dB 和 1.55 dB)以及各向同性特性(方向性约为 1 dB)。天线因子(AF)被用作表征电场传感器性能的重要参数。详细解释了 AF 测量并报告了结果。最后,使用所设计的电场传感器在横向电磁室中进行电场强度测量。确定、评估了测量中不确定性的关键来源,并将其纳入最终结果。将测量结果与理论值进行比较,发现两者吻合良好。为进行比较验证,参考已校准的市售各向同性探头对结果进行了评估。