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THz电磁波在时变非磁化等离子体中的传播特性研究 被引量:12

Propagation characteristics of THz electromagnetic waves in time varying un-magnetized plasma
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摘要 本文建立了时变非磁化等离子体平板的一维模型,并采用时域有限差分(FDTD)方法对太赫兹(THz)电磁波在时变等离子体中传播时的反射、透射系数及吸收率进行了计算.然后根据计算结果分析了时变等离子体的上升时间、电子密度、温度以及等离子体平板厚度等参数对不同频段THz波在等离子体中传播特性的影响.分析结果表明:THz波在时变等离子体中传播时,其反射系数受等离子体电子密度和上升时间的影响较大;而吸收率则随着上升时间的减小、电子密度及平板厚度的增加而增大;此外,THz电磁波能够穿透量级为1020m-3的高密度等离子体层,可以作为再入段飞行器通信以及高密度等离子体诊断的理想工具. This paper has built the one-dimensional model of the time-varying un-magnetized plasma, and the finite different time domain(FDTD) algorithm is used to calculate the reflection and transmission coefficients, as well as the absorption rate of terahertz(THz) electromagnetic waves in time-varying plasma. The relation between the frequency of the THz wave and the propagation characteristic influenced by rise time, electron density, temperature, and depth of time-varying plasma plate is analyzed. Results demonstrate that the reflection coefficient is mainly influenced by plasma rise time and electron density. The absorption rate increases with decreasing rise time, increasing depth and electron density.Furthermore, the THz electromagnetic wave is an effective tool for the communication of reentry vehicle and high density plasma diagnosis because of its strong penetrability in high density plasma.
出处 《物理学报》 SCIE EI CAS CSCD 北大核心 2014年第19期74-79,共6页 Acta Physica Sinica
基金 国家自然科学基金(批准号:11375085)资助的课题~~
关键词 THz电磁波 时变等离子体 传输特性 时域有限差分法 THz electromagnetic wave time varying plasma propagation characteristic finite difference time domain algorithm
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  • 1郑奎松,葛德彪,魏兵.导弹目标的FDTD建模与RCS计算[J].系统工程与电子技术,2004,26(7):896-899. 被引量:12
  • 2杨利霞,葛德彪,魏兵.电各向异性色散介质电磁散射的三维递推卷积-时域有限差分方法分析[J].物理学报,2007,56(8):4509-4514. 被引量:17
  • 3EGHLIDI M H, MEHRANY K, RASHIDIAN B. Modified WKB method for solution of wave propaga-tion in inhomogeneous structures with arbitrary per- mittivity and permeability profiles. Proceedings of the 37th European Microwave Conference[C]//Munich: Causal Productions Pty Ltd, 2007.. 1373-1376.
  • 4EGHLIDI M H, MEHRANY K, RASHIDIAN B. Modified differential transfer matrix method for solu-tion of one dimensional linear inhomogeneous optical struetures[J]. J Opt Soe Amer B, Opt Phys, 2005, 22(7) .. 1521-1528.
  • 5GUPTARN, YOSJ M, THOMPSON RA. A re-view of reaction rates and thermodynamic and trans- port properties for an li-species air model for chemi- cal and thermal nonequilibrium calculations to 30000K J-M~. NASA-TM-101528, 1990.
  • 6KHORASANI S, MEHRANY K. Differential trans- fermatrix method for solution of one dimensional line- ar nonhomogeneous optical structures[J]. J Opt Soc Amer B, Opt Phys, 2003, 20(1): 91-96.
  • 7PETRIN A B. Transmission of Microwaves Through Magnetoactive Plasma [J]. IEEE Trans on Plasma Sci, 2000, 29(3):471-478.
  • 8MATHER D E, PASQUAL J M, SILLENCE J P. Radio Frequency (RF) Blackout During Hypersonic Reentry[R]. AIAA/CIRA 13th International Space Planes and Hypersonic Systems and Technologies, 2005.
  • 9SUKHAREVSKY O I, ZALEVSKY G S, NECHI- TAYLO S V, et al. Simulation of scattering charac- teristics of aerial resonant-size obiects in the VHF band[J]. Radioelectronics and Communications Sys- tems, 2010, 53(4): 213-218.
  • 10KIM K H, KIM C, RHO O H. Methods for the accu- rate computations of hypersonic flows I. AUSMPW+ scheme[J]. Journal of Computational Physics, 2001, 174(1) : 38-80.

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