Flux-gate magnetometer spin axis offset calibration using the electron drift instrument

被引:11
|
作者
Plaschke, Ferdinand [1 ]
Nakamura, Rumi [1 ]
Leinweber, Hannes K. [2 ]
Chutter, Mark [3 ]
Vaith, Hans [3 ]
Baumjohann, Wolfgang [1 ]
Steller, Manfred [1 ]
Magnes, Werner [1 ]
机构
[1] Austrian Acad Sci, Space Res Inst, A-8010 Graz, Austria
[2] Univ Calif Los Angeles, Dept Earth & Space Sci, Los Angeles, CA 90024 USA
[3] Univ New Hampshire, Durham, NH 03824 USA
基金
奥地利科学基金会;
关键词
flux-gate magnetometer; electron drift instrument; in-flight calibration; spin axis offset; IN-FLIGHT DETERMINATION; SPACECRAFT;
D O I
10.1088/0957-0233/25/10/105008
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Spin-stabilization of spacecraft immensely supports the in-flight calibration of on-board flux-gate magnetometers (FGMs). From 12 calibration parameters in total, 8 can be easily obtained by spectral analysis. From the remaining 4, the spin axis offset is known to be particularly variable. It is usually determined by analysis of Alfvenic fluctuations that are embedded in the solar wind. In the absence of solar wind observations, the spin axis offset may be obtained by comparison of FGM and electron drift instrument (EDI) measurements. The aim of our study is to develop methods that are readily usable for routine FGM spin axis offset calibration with EDI. This paper represents a major step forward in this direction. We improve an existing method to determine FGM spin axis offsets from EDI time-of-flight measurements by providing it with a comprehensive error analysis. In addition, we introduce a new, complementary method that uses EDI beam direction data instead of time-of-flight data. Using Cluster data, we show that both methods yield similarly accurate results, which are comparable yet more stable than those from a commonly used solar wind-based method.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Spin axis offset calibration on THEMIS using mirror modes
    Fruehauff, Dennis
    Plaschke, Ferdinand
    Glassmeier, Karl-Heinz
    ANNALES GEOPHYSICAE, 2017, 35 (01) : 117 - 121
  • [22] Contactless Two-Axis Inclination Measurement System Using Planar Flux-Gate Sensor
    Rovati, Luigi
    Cattini, Stefano
    IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2010, 59 (05) : 1284 - 1293
  • [23] A MULTICHANNEL MAGNETOMETER FOR FIELD STRUCTURE MEASUREMENT BASED ON TIME ENCODED FLUX-GATE SENSORS
    LASSAHN, M
    TRENKLER, G
    IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 1993, 42 (02) : 635 - 639
  • [25] Development of a High Sensitivity Giant Magneto-Impedance Magnetometer: Comparison With a Commercial Flux-Gate
    Dufay, B.
    Saez, S.
    Dolabdjian, C.
    Yelon, A.
    Menard, D.
    IEEE TRANSACTIONS ON MAGNETICS, 2013, 49 (01) : 85 - 88
  • [26] Flux-gate like 2D magnetometer based on a single magnetic tunnel junction
    Malinowski, G
    Hehn, M
    Kammerer, JB
    Sajieddine, M
    Jouguelet, E
    Hébrard, L
    Alnot, P
    Braun, F
    Schuhl, A
    EUROPEAN PHYSICAL JOURNAL-APPLIED PHYSICS, 2005, 30 (02): : 113 - 116
  • [27] Two-axis inclination measurement system based on a planar flux-gate sensor
    Rovati, Luigi
    Cattini, Stefano
    I2MTC: 2009 IEEE INSTRUMENTATION & MEASUREMENT TECHNOLOGY CONFERENCE, VOLS 1-3, 2009, : 1496 - 1500
  • [28] Detection of Magnetomechanical Effect in Structural Steel Using SQUIDs and Flux-gate Sensors
    C. Bonavolontà
    G. Peluso
    M. Valentino
    A. De Iorio
    F. Penta
    Journal of Superconductivity and Novel Magnetism, 2009, 22 : 833 - 839
  • [29] Detection of Magnetomechanical Effect in Structural Steel Using SQUIDs and Flux-gate Sensors
    Bonavolonta, C.
    Peluso, G.
    Valentino, M.
    De Iorio, A.
    Penta, F.
    JOURNAL OF SUPERCONDUCTIVITY AND NOVEL MAGNETISM, 2009, 22 (08) : 833 - 839
  • [30] Rat Magnetocardiography Using a Flux-Gate Sensor Based on Iron Garnet Films
    Vetoshko P.M.
    Gusev N.A.
    Chepurnova D.A.
    Samoilova E.V.
    Zvezdin A.K.
    Korotaeva A.A.
    Belotelov V.I.
    Biomedical Engineering, 2016, 50 (4) : 237 - 240