A New Method to Calculate the Fluxgate Magnetometer Offset in the Interplanetary Magnetic Field: 1. Using Alfven Waves

被引:12
作者
Wang, Guoqiang [1 ]
Pan, Zonghao [2 ,3 ]
机构
[1] Harbin Inst Technol, Inst Space Sci & Appl Technol, Shenzhen, Peoples R China
[2] Univ Sci & Technol China, CAS Key Lab Geospace Environm, Hefei, Anhui, Peoples R China
[3] Univ Sci & Technol China, CAS Ctr Excellence Comparat Planetol, Hefei, Anhui, Peoples R China
关键词
fluxgate magnetometer; in‐ flight calibration; solar wind; the interplanetary magnetic field; zero offet; IN-FLIGHT DETERMINATION; PLASMA SHEET; FREQUENCY WAVES; SOLAR-WIND; SPACECRAFT; MAGNETOSPHERE;
D O I
10.1029/2020JA028893
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Magnetic field measurements are essential to explore space. However, the measurement of the fluxgate magnetometer (FGM) is not zero in the null magnetic field. Three methods have been provided to calculate the zero offset of the FGM on-board spacecraft in the solar wind based on the assumption that the fluctuations are Alfven waves. Here, we develop a new method to calculate the zero offset O based on the characteristic of Alfven waves. We first build an offset cube based on the possible range of O since the strength of the interplanetary magnetic field is limited. The variance of the modified B-T (marked as delta) at a point in the offset cube can be obtained. We find that the point with the minimum delta in each plane along a certain axis forms a straight line, which is referred to as the optimal offset line. Interestingly, this line crosses the point with a value equal to O, and its direction is associated with the ambient magnetic field of Alfven waves. We also find that different optimal offset lines have an intersection with a value of O, suggesting that these characteristics of the optimal offset line can be used to determine the zero offset of the FGM. The test results show that our method can get a zero offset with a high accuracy. We suggest that the new method is a useful technique to find the zero offset of the magnetometer for solar wind monitors.
引用
收藏
页数:9
相关论文
共 34 条
  • [1] The STEREO/IMPACT magnetic field experiment
    Acuna, M. H.
    Curtis, D.
    Scheifele, J. L.
    Russell, C. T.
    Schroeder, P.
    Szabo, A.
    Luhmann, J. G.
    [J]. SPACE SCIENCE REVIEWS, 2008, 136 (1-4) : 203 - 226
  • [2] Space-based magnetometers
    Acuña, MH
    [J]. REVIEW OF SCIENTIFIC INSTRUMENTS, 2002, 73 (11) : 3717 - 3736
  • [3] Planetary Magnetic Field Measurements: Missions and Instrumentation
    Balogh, Andre
    [J]. SPACE SCIENCE REVIEWS, 2010, 152 (1-4) : 23 - 97
  • [4] VARIATION OF DAVIS-SMITH METHOD FOR IN-FLIGHT DETERMINATION OF SPACECRAFT MAGNETIC-FIELDS
    BELCHER, JW
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH, 1973, 78 (28): : 6480 - 6490
  • [5] Magnetospheric Multiscale Overview and Science Objectives
    Burch, J. L.
    Moore, T. E.
    Torbert, R. B.
    Giles, B. L.
    [J]. SPACE SCIENCE REVIEWS, 2016, 199 (1-4) : 5 - 21
  • [6] Characteristics of ionospheric flux rope at the terminator observed by Venus Express
    Chen, Y. Q.
    Zhang, T. L.
    Xiao, S. D.
    Wang, G. Q.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2017, 122 (08) : 8858 - 8867
  • [7] Small Spatial-Scale Field-Aligned Currents in the Plasma Sheet Boundary Layer Surveyed by Magnetosphere Multiscale Spacecraft
    Chen, Yuanqiang
    Zhang, Tielong
    Wu, Mingyu
    Wang, Guoqiang
    Schmid, Daniel
    Baumjohann, Wolfgang
    Nakamura, Rumi
    Russell, Christopher T.
    Giles, Barbara J.
    Burch, James L.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SPACE PHYSICS, 2019, 124 (12) : 9976 - 9985
  • [8] DAVIS L, 1968, EOS T AM GEOPHYS UN, V49, P257
  • [9] Hedgecock P. C., 1975, Space Science Instrumentation, V1, P83
  • [10] Alfv,n Waves and Their Roles in the Dynamics of the Earth's Magnetotail: A Review
    Keiling, Andreas
    [J]. SPACE SCIENCE REVIEWS, 2009, 142 (1-4) : 73 - 156