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The WIND magnetic field investigation

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Abstract

The magnetic field experiment on WIND will provide data for studies of a broad range of scales of structures and fluctuation characteristics of the interplanetary magnetic field throughout the mission, and, where appropriate, relate them to the statics and dynamics of the magnetosphere. The basic instrument of the Magnetic Field Investigation (MFI) is a boom-mounted dual triaxial fluxgate magnetometer and associated electronics. The dual configuration provides redundancy and also permits accurate removal of the dipolar portion of the spacecraft magnetic field. The instrument provides (1) near real-time data at nominally one vector per 92 s as key parameter data for broad dissemination, (2) rapid data at 10.9 vectors s−1 for standard analysis, and (3) occasionally, snapshot (SS) memory data and Fast Fourier Transform data (FFT), both based on 44 vectors s−1. These measurements will be precise (0.025%), accurate, ultra-sensitive (0.008 nT/step quantization), and where the sensor noise level is <0.006 nT r.m.s. for 0–10 Hz. The digital processing unit utilizes a 12-bit microprocessor controlled analogue-to-digital converter. The instrument features a very wide dynamic range of measurement capability, from ±4 nT up to ±65 536 nT per axis in eight discrete ranges. (The upper range permits complete testing in the Earth's field.) In the FTT mode power spectral density elements are transmitted to the ground as fast as once every 23 s (high rate), and 2.7 min of SS memory time series data, triggered automatically by pre-set command, requires typically about 5.1 hours for transmission. Standard data products are expected to be the following vector field averages: 0.0227-s (detail data from SS), 0.092 s (‘detail’ in standard mode), 3 s, 1 min, and 1 hour, in both GSE and GSM coordinates, as well as the FFT spectral elements. As has been our team's tradition, high instrument reliability is obtained by the use of fully redundant systems and extremely conservative designs. We plan studies of the solar wind: (1) as a collisionless plasma laboratory, at all time scales, macro, meso and micro, but concentrating on the kinetic scale, the highest time resolution of the instrument (=0.022 s), (2) as a consequence of solar energy and mass output, (3) as an external source of plasma that can couple mass, momentum, and energy to the Earth's magnetosphere, and (4) as it is modified as a consequence of its imbedded field interacting with the moon. Since the GEOTAIL Inboard Magnetometer (GIM), which is similar to the MFI instrument, was developed by members of our team, we provide a brief discussion of GIM related science objectives, along with MFI related science goals.

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References

  • Acuña, M. H.: 1974,IEEE Trans. Magnetics MAG-10, 519.

    Google Scholar 

  • Acuña, M. H. and Ness, N. F.: 1976a, in T. Gehrels (ed.),Jupiter, University of Arizona Press, Tucson, p. 830.

    Google Scholar 

  • Acuña, M. H. and Ness, N. F.: 1976b,J. Geophys. Res. 81, 2917.

    Google Scholar 

  • Baker, D. N., Akasofu, S. I., Baumjohann, W., Bieber, J. W., Fairfield, D. H., Hones, E. W., Jr., Mauk, B. H., McPherron, R. L., and Moore, T. E.: 1984,Solar Terrestrial Physics—Present and Future, 8–1 to 8–55.

  • Burlaga, L. F.: 1991, in L. Lanzerotti, R. Schwenn, and E. Marsch (eds.),Physics of the Inner Heliosphere, Ch. 6, Springer-Verlag, New York.

    Google Scholar 

  • Burlaga, L. F., Sittler, E. C., Jr., Mariani, F., and Schwenn, R.: 1981,J. Geophys. Res. 86, 6673.

    Google Scholar 

  • Burlaga, L. F., Behannon, K. W., and Klein, L. W.: 1987,J. Geophys. Res. 92, 5725.

    Google Scholar 

  • Burlaga, L. F., Lepping, R. P., and Jones, J.: 1990, in C. T. Russell, E. R. Priest, and L. C. Lee (eds.),Geophys. Monogr. Ser., Physics of Flux Ropes, AGU, Washington, D.C., Vol. 58, p. 373.

    Google Scholar 

  • Dessler, A. J.: 1958,J. Geophys. Res. 63, 405.

    Google Scholar 

  • Fairfield, D. H.: 1991, ‘Advances in Magnetospheric Storm and Substorm Research: 1989–1991’, Review presented at the IAGA Meeting Vienna, Austria.

  • Farrell, W. M., Thompson, R. F., Lepping, R. P., and Byrnes, J. B.: 1994,IEEE Magnetics, in press.

  • Farrugia, C. J., Freeman, M. P., and Burlaga, L. F.: 1992,Proceedings of the International Conference on Substorms (ICS-1), Kiruna, Sweden ESA SP-335, p. 371.

  • Farrugia, C. J., Richardson, I. G., Burlaga, L. F., Osherovich, V. A., and Lepping, R. P.: 1993a,J. Geophys. Res. 98, 15497.

    Google Scholar 

  • Farrugia, C. J., Fitzenreiter, R. J., Burlaga, L. F., Erkaev, N. V., Osherovich, V. A., Biemat, H. K., and Fazakerly, A.: 1993b,Adv. Space Res. 14(7), 105.

    Google Scholar 

  • Farrugia, C. J., Freeman, M. P., and Burlaga, L. F., Takahashi, K.: 1993c,J. Geophys. Res. 98, 7657.

    Google Scholar 

  • Farrugia, C. J., Sandholt, P. E., and Burlaga, L. F.: 1993d,J. Geophys. Res., submitted.

  • Feldman, W. C., Tokar, R. L., Birn, J., Hones, E. W., Jr., Bame, S. J., and Russell, C. T.: 1987,J. Geophys. Res. 92, 83.

    Google Scholar 

  • Freeman, M. P., Farrugia, C. J., Burlaga, L. F., Lepping, R. P., and Greenspan, M.: 1993,J. Geophys. Res. 98, 7633.

    Google Scholar 

  • Gloeckler, G., Geiss, J., Fisk, L., Glavin, A., and Ipavich, F.: 1993,Detection of Interstellar Pick-up Hydrogen in the Solar System, submitted.

  • Goertz, C. K. and Smith, R. A.: 1989,J. Geophys. Res. 94, 6581.

    Google Scholar 

  • Goldstein, H.: 1983,Solar Wind Five, NASA Conference Publ. 2280, 731.

    Google Scholar 

  • Gonzalez, W. D. and Tsurutani, B. T.: 1987,Planetary Space Sci. 35, 1101.

    Google Scholar 

  • Gosling, J. T., McComas, D. J., Phillips, J. L., and Bame, S. J.: 1991,J. Geophys. Res. 96, 7831.

    Google Scholar 

  • Hilchenbach, M.et al.: 1992,COSPAR, Program Book, p. 260.

  • Joselyn, J. A. and Tsurutani, B. T.: 1990,EOS, Transactions of Am. Geophys. Union, p. 1809.

  • Kahler, S. W.: 1992,Ann. Rev. Astron. Astrophys. 30, 113.

    Google Scholar 

  • Kokubun, S.et al.: 1990,GEOTAIL Interim Report, Institute of Space and Astronautical Science, p. 55.

  • Lee, L. C., Yan, M., and Hawkins, J. G.: 1991,Geophys. Res. Letters 18, 381.

    Google Scholar 

  • Lee, M. A. and Ip, W. H.: 1987,J. Geophys. Res. 92, 11, 041.

    Google Scholar 

  • Lepping, R. P., Vinas, A. F., Lazarus, A. J., Sugiura, M., Araki, T., Kokubun, S., Stahara, S. S., and Spreiter, J. R.: 1992,EOS, Transactions of Am. Geophys. Union, p. 251.

  • Lui, A. T. Y.: 1991,J. Geophys. Res. 96, 1849.

    Google Scholar 

  • Mish, W. H. and Lepping, R. P.: 1976, NASA/GSFC X-694-76-158.

  • Moldwin, M. B. and Hughes, W. J.: 1991,EOS, Transactions AGU, p. 242 (SME32E-3).

  • Moldwin, M. B. and Hughes, W. J.: 1992,Geophys. Res. Letters 19, No. 11, 1081.

    Google Scholar 

  • Ness, N. F.: 1970,Space Sci. Rev. 11, 111.

    Google Scholar 

  • Ness, N. F., Behannon, K. W., Lepping, R. P., and Schatten, K. H.: 1971,J. Geophys. Res. 76, 3564.

    Google Scholar 

  • Panetta, P. V. and Acuña, M. H.: 1991,WIND MFI FFTP Processor Requirements Document, Rev. 10.

  • Panetta, P. V.: 1992a,WIND MFI Telemetry Bits Definition Document, Rev. 1.

  • Panetta, P. V.: 1992b,WIND MFI Flight Software Description Document, Rev. 2.

  • Richardson, I. G. et al.: 1987,J. Geophys. Res. 92, 9997.

    Google Scholar 

  • Slavin, J. A., Lepping, R. P., and Baker, D. N.: 1990,Geophys. Res. Letters 17, 913.

    Google Scholar 

  • Smith, E. J.: 1993,EOS Transactions AGU (Abstract SH 11 A-9) 234.

  • Smith, E. J., Slavin, J. A., Zwickl, R. D., and Bame, S. J.: 1986,Solar Wind-Magnetosphere Coupling, Tokyo, p. 345.

  • Sugiura, M.: 1965,Radio Science 69D, 1133.

    Google Scholar 

  • Tsurutani, B. T., Gonzalez, W. D., Tang, F., Akasofu, S.-I., and Smith, E. J.: 1988,J. Geophys. Res. 93, 8519.

    Google Scholar 

  • Tsurutani, B. T., Gonzalez, W. D., Tang, F., and Lee, Y. T.: 1992,Geophys. Res. Letters 19, 73.

    Google Scholar 

  • Vinas, A. F. and Scudder, J. D.: 1986,J. Geophys. Res. 91, 39.

    Google Scholar 

  • Whang, Y. C.: 1991,Astrophys. J. 377, 255.

    Google Scholar 

  • Wilken, B., Goertz, C. K., Baker, D. N., Higbie, P. R., and Fritz, T. A.: 1982,J. Geophys. Res. 87, 5901.

    Google Scholar 

  • Wilson, C. R. and Sugiura, M.: 1961,J. Geophys. Res. 66, 4097.

    Google Scholar 

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Lepping, R.P., Acũna, M.H., Burlaga, L.F. et al. The WIND magnetic field investigation. Space Sci Rev 71, 207–229 (1995). https://doi.org/10.1007/BF00751330

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