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Title: | Heliospheric plasma sheet (HPS) impingement onto the magnetosphere as a cause of relativistic electron dropouts (REDs) via coherent EMIC wave scattering with possible consequences for climate change mechanisms |
Authors: | Tsurutani, B.T. Hajra, R. Tanimori, T. Takada, A. Bhanu, R. Mannucci, A.J. Lakhina, G.S. Kozyra, J.U. Shiokawa, K. Lee, L.C. Echer, E. Reddy, R.V. Gonzalez, W.D. |
Keywords: | Magnetosphere Climate change Heliospheric Plasma sheet Wilcox effect Tinsley effect Energetic electron loss |
Issue Date: | 2016 |
Citation: | JGR, 121, doi: 10.1002/2016JA022499 |
Abstract: | A new scenario is presented for the cause of magnetospheric relativistic electron decreases (REDs) and potential effects in the atmosphere and on climate. High-density solar wind heliospheric plasmasheet (HPS) events impinge onto the magnetosphere, compressing it along with remnant noon-sector outer-zone magnetospheric ~10-100 keV protons. The betatron accelerated protons generate coherent electromagnetic ion cyclotron (EMIC) waves through a temperature anisotropy (T⊥/T||>1) instability. The waves in turn interact with relativistic electrons and cause the rapid loss of these particles to a small region of the atmosphere. A peak total energy deposition of ~3 × 1020 ergs is derived for the precipitating electrons. Maximum energy deposition and creation of electron-ion pairs at 30-50 km and at<30 km altitude are quantified. We focus the readers' attention on the relevance of this present work to two climate change mechanisms. Wilcox et al. (1973) noted a correlation between solar wind heliospheric current sheet (HCS) crossings and high atmospheric vorticity centers at 300 mb altitude. Tinsley et al. (1994) has constructed a global circuit model which depends on particle precipitation into the atmosphere. Other possible scenarios potentially affecting weather/climate change are also discussed. |
URI: | http://localhost:8080/xmlui/handle/123456789/1077 |
Appears in Collections: | UAS_Reprints |
Files in This Item:
File | Description | Size | Format | |
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LakhinaGS_etal_JGR_2016.pdf | 3.36 MB | Adobe PDF | View/Open |
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