Affiliation:
1. Institute of Solar Terrestrial Physics SB RAS
2. Baikal state university
Abstract
We present the results of studies showing the presence of simultaneous jumps in the density of protons (N2/N1)p and alpha particles (N2/N1)α at the boundaries of diamagnetic structures (DS) of various types both in the quasi-stationary slow solar wind (SW) and in sporadic SW. For DS of quasi-stationary slow SW, associated with streamer belt or chains, in the statistics considered in the paper there is a single linear dependence of (N2/N1)α on (N2/N1)p. This means that these jumps have the same physical nature and are related to diamagnetism at the boundaries of DS of quasi-stationary SW streams of various types.
At the front of interplanetary shock waves (ISW), the (N2/N1)α jump is approximately twice as large as the (N2/N1)p jump. This reflects the features of the collective collisionless plasma heating at ISW fronts and requires further studies. A maximum excess (almost 3 times) of the increase in the alpha-particle density (N2/N1)α over the increase in the proton density (N2/N1)p is observed in eruptive prominences.
The magnetospheric response in such phenomena as auroras, proton and alpha particle fluxes, geomagnetic field, and geomagnetic pulsations is similar under the influence of DS of various types and ISW. The detected features of the magnetospheric response to the contact with DS of different types and ISW can be interpreted as impulsive passage of the DS matter (plasmoid) into the magnetosphere.
The results of studies of the (N2/N1)α jumps can be used as an additional important argument in identifying cases of impulsive penetration of DS into the magnetosphere and in examining the physical nature of these penetrations.
Publisher
Infra-M Academic Publishing House
Reference36 articles.
1. Бородкова Н.Л. Воздействие больших и резких изменений динамического давления солнечного ветра на магнитосферу Земли. Анализ нескольких событий. Космические исследования. 2010. Т. 48, № 1. С. 1–15., Belian R.D., Gisler G.R., Cayton T.E., Christensen R.A. High-Z energetic particles at geosynchronous orbit during the great solar proton event series of October 1989. J. Geophys. Res. 1992, vol. 97, p.16897.
2. Веселовский И.С., Ермолаев Ю.И. Ионные составляющие солнечного ветра. Плазменная гелиофизика. Т. 1. M.: Физматлит, 2008. С. 313- 325., Borrini G., Wilcox J.M., Gosling J.T., Bame S.J., Feldman W.C. Solar wind helium and hydrogen structure near the heliospheric current sheet
3. a signal of coronal streamer at 1 AU. J. Geophys. Res. 1981, vol. 86, p. 4565.
4. Еселевич В.Г. Диамагнитные структуры — основа квазистационарного медленного солнечного ветра. Солнечно-земная физика. 2019. Т. 5, № 3. С. 36–49. DOI: 10.12737/szf-53201904., Borodkova N.L. The impact of large and abrupt changes in the dynamic pressure of wind energy on the Earth’s magnetosphere. Analysis of several events. Cosmic Research. 2010, vol. 48, no. 1, pp. 1–15.
5. Еселевич М.В., Еселевич В.Г. Проявление лучевой структуры пояса корональных стримеров в виде резких пиков концентрации плазмы солнечного ветра на орбите Земли. Геомагнетизм и аэрономия. 2006а. Т. 46, № 6. С. 811–824., Chen J., Fritz T.A., Sheldon R.B., Spence H.E., Spjeldvik W.N., Fennell J.F., Livi S., et al. Cusp energetic particle events: Implications for a major acceleration region of the magnetosphere. J. Geophys. Res. 1998, vol. 103, iss. A1, pp. 69–78. DOI: 10.1029/97JA02246.