Current Distribution and Input Impedance of an Insulated Linear Antenna in an Anisotropic Plasma

被引:13
作者
Zeng, Hui Ran [1 ]
He, Tong [2 ]
Li, Kai [1 ]
机构
[1] Zhejiang Univ, Coll Informat Sci & Elect Engn, Hangzhou 310027, Peoples R China
[2] Intelligent Network Res Ctr, Zhejiang Lab, Hangzhou 311100, Peoples R China
基金
美国国家科学基金会;
关键词
Anisotropic plasma; input impedance; insulated linear antenna; very low-frequency (VLF) electromagnetic (EM) wave; CYLINDRICAL-ANTENNA; RADIATION-RESISTANCE; WAVE-PROPAGATION; ELECTRIC-DIPOLE; CONDUCTING WIRE; VLF RADIATION;
D O I
10.1109/TAP.2019.2951531
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this article, a new analytical method is proposed to solve the current distribution and input impedance of an insulated linear antenna in a homogeneous anisotropic ionosphere over a very low-frequency (VLF: 3-30 kHz) range. Due to the presence of the insulating layer, both the boundary conditions and the kernel function of the antenna are more complicated. The determination of the wave number k(L) requires extra analytical techniques, as the pole equation satisfied by k(L) will include both the ordinary and extraordinary waves. Computations show that for insulating layers of small thickness, the amplitude coefficient increases with the plasma density. However, if the insulation is sufficiently thick, then the coefficient will only be slightly affected by the plasma parameters. It is, thus, inferred that an insulating layer tends to make the antenna characteristics less dependent on the ambient plasma and, thus, more predictable. In addition, it is found that the input impedance of the antenna significantly increases with the insulation thickness. Calculations of driving-point admittances are presented for two case studies and compared with existing analytical work and the simulation results. Finally, this article may provide some heuristic support for designing VLF space-borne insulated linear antennas.
引用
收藏
页码:2541 / 2549
页数:9
相关论文
共 50 条
[41]   Input Impedance Model of Planar Dipole Antenna for Wireless Body Area Network (WBAN) [J].
Pramudita, A. A. .
2016 22ND ASIA-PACIFIC CONFERENCE ON COMMUNICATIONS (APCC), 2016, :66-69
[42]   Input impedance of a cylindrical microstrip antenna with an arbitrary geometry radiator excited by a coaxial line [J].
Svezhentsev A.E. .
Telecommunications and Radio Engineering (English translation of Elektrosvyaz and Radiotekhnika), 2010, 69 (17) :1499-1515
[43]   New analytical input impedance calculation for fast design of printed narrow slot antenna [J].
Akan, Volkan ;
Yazgan, Erdem .
INTERNATIONAL JOURNAL OF ELECTRONICS, 2011, 98 (09) :1229-1237
[44]   Input impedance of a microstrip antenna with a chiral substrate based on left-handed spirals [J].
Abramov, Vladimir Y. ;
Klyuev, Dmitriy S. ;
Neshcheret, Anatoly M. ;
Osipov, Oleg V. ;
Potapov, Alexander A. .
JOURNAL OF ENGINEERING-JOE, 2019, 2019 (19) :6218-6221
[45]   Input impedance of a probe-fed cylindrical annular-ring microstrip antenna [J].
Huang, CY ;
Chen, WS .
MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 1997, 16 (01) :41-44
[46]   Low Input Impedance Current Comparator Using in Pulse-Width Modulation [J].
Lin, Chun Wei ;
Lin, Sheng Feng .
2010 THIRD INTERNATIONAL CONFERENCE ON COMMUNICATIONS AND ELECTRONICS (ICCE), 2010, :127-130
[47]   A ROBUST HIGH-SPEED LOW INPUT IMPEDANCE CMOS CURRENT COMPARATOR [J].
Kasemsuwan, Varakorn ;
Khucharoensin, Surachet .
JOURNAL OF CIRCUITS SYSTEMS AND COMPUTERS, 2008, 17 (06) :1139-1149
[48]   A new and explicit matrix input impedance formula for the H-shaped microstrip patch antenna [J].
Ooi, S. F. ;
Lee, S. K. ;
Sambell, A. ;
Korolkiewicz, E. ;
Scott, S. .
MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2007, 49 (07) :1756-1759
[49]   Accurate measurement of the input impedance of bow-tie antenna by the S-parameter method [J].
Endo, Kazuma ;
Sasamori, Takayuki ;
Tobana, Teruo ;
Isota, Yoji .
IEICE COMMUNICATIONS EXPRESS, 2016, 5 (06) :158-162
[50]   A Low-Profile Unidirectional Antenna That Uses Folded Dipole With High Input Impedance as the Radiator [J].
Liu, Yan ;
Huang, He ;
Shi, Lei ;
Li, Xiaoping .
MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2025, 67 (03)