Magnetic antenna excitation of whistler modes. I. Basic properties

被引:18
作者
Urrutia, J. M. [1 ]
Stenzel, R. L. [1 ]
机构
[1] Univ Calif Los Angeles, Dept Phys & Astron, Los Angeles, CA 90095 USA
基金
美国国家科学基金会;
关键词
RADIATION-PATTERNS; HELICITY; DENSITY; PROPAGATION; WAVES;
D O I
10.1063/1.4904354
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Properties of magnetic loop antennas for exciting electron whistler modes have been investigated in a large laboratory plasma. The parameter regime is that of large plasma frequency compared to the cyclotron frequency and signal frequency below half the cyclotron frequency. The antenna diameter is smaller than the wavelength. Different directions of the loop antenna relative to the background magnetic field have been measured for small amplitude waves. The differences in the topology of the wave magnetic field are shown from measurements of the three field components in three spatial directions. The helicity of the wave magnetic field and of the hodogram of the magnetic vector in space and time are clarified. The superposition of wave fields is used to investigate the properties of two antennas for small amplitude waves. Standing whistler waves are produced by propagating two wave packets in opposite directions. Directional radiation is obtained with two phased loops separated by a quarter wavelength. Rotating antenna fields, produced with phased orthogonal loops at the same location, do not produce directionality. The concept of superposition is extended in a Paper II to generate antenna arrays for whistlers. These produce nearly plane waves, whose propagation angle can be varied by the phase shifting the currents in the array elements. Focusing of whistlers is possible. These results are important for designing antennas on spacecraft or diagnosing and heating of laboratory plasmas. (C) 2014 AIP Publishing LLC.
引用
收藏
页数:12
相关论文
共 25 条
[1]   Whistler Wave Resonances in Laboratory Plasma [J].
Amatucci, W. E. ;
Blackwell, David D. ;
Tejero, Erik M. ;
Cothran, Christopher D. ;
Rudakov, L. ;
Ganguli, Gurudas I. ;
Walker, David N. .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2011, 39 (02) :637-643
[2]   Whistler wave propagation and whistler wave antenna radiation resistance measurements [J].
Amatucci, WE ;
Blackwell, DD ;
Walker, DN ;
Gatling, G ;
Ganguli, G .
IEEE TRANSACTIONS ON PLASMA SCIENCE, 2005, 33 (02) :637-646
[3]   DIRECT MEASUREMENT OF PROPAGATION OF WHISTLER WAVE PACKETS [J].
BAKER, DR ;
HALL, TA .
PLASMA PHYSICS AND CONTROLLED FUSION, 1974, 16 (10) :901-&
[4]  
Barkhausen H, 1919, PHYS Z, V20, P401
[5]  
Berger MA, 1999, GEOPH MONOG SERIES, V111, P1
[6]  
BOSWELL RW, 1984, PLASMA PHYS CONTR F, V26, P1147, DOI 10.1088/0741-3335/26/10/001
[7]   Physics of helicon discharges [J].
Chen, FF .
PHYSICS OF PLASMAS, 1996, 3 (05) :1783-1793
[8]   Measurements of spatial structures of different discharge modes in a helicon source [J].
Franck, CM ;
Grulke, O ;
Stark, A ;
Klinger, T ;
Scime, EE ;
Bonhomme, G .
PLASMA SOURCES SCIENCE & TECHNOLOGY, 2005, 14 (02) :226-235
[9]   LE GUIDAGE DES WHISTLERS PAR LE CHAMP MAGNETIQUE [J].
GENDRIN, R .
PLANETARY AND SPACE SCIENCE, 1961, 5 (04) :274-+
[10]   Control of whistler radiation efficiency of a loop antenna by generation of ambient magnetic field irregularities [J].
Gushchin, M. E. ;
Korobkov, S. V. ;
Kostrov, A. V. ;
Strikovsky, A. V. ;
Zaboronkova, T. M. ;
Krafft, C. ;
Koldanov, V. A. .
PHYSICS OF PLASMAS, 2008, 15 (05)