Spatial Confinement of the IBEX Ribbon: A Dominant Turbulence Mechanism
arXiv:1404.2170 · doi:10.1088/0004-637X/787/1/76
Abstract
The narrow ribbon of enhanced energetic neutral atom flux observed by the Interstellar Boundary Explorer (IBEX) spacecraft has prompted numerous ideas to explain its structure and properties. One of these ideas is the "neutral solar wind" scenario, which identifies the source particles as pickup protons in the local interstellar medium originating in solar wind charge-exchange interactions. This scenario has been thought to require unrealistically weak pitch-angle scattering of the pickup protons to explain the narrow structure. Recently, Schwadron & McComas (2013) suggested that this structure could result from a spatial retention of the pickup protons, rather than from a restricted pitch-angle distribution. Here, we present a physically motivated, quantitative mechanism to produce such a spatial configuration. This mechanism is based on the "dominant turbulence" assumption, which can be applied where the production of new pickup protons is slow, and has been used to successfully explain the level of turbulent heating observed in the outer solar wind. This formalism predicts a pickup isotropization process which adds or subtracts energy from the ambient turbulent fluctuations, depending on the initial pitch angle of the pickup protons. We show that a simple model of this process can yield a ribbon structure in qualitative agreement with the observations. The results of this simple model are not yet quantitatively satisfactory, but we suggest several improvements which may reduce the quantitative discrepancy.
to be published in The Astrophysical Journal
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- The infrared view of dust and molecules around V4334 Sgr (Sakurai's Object): a 20-year retrospective
- Investigating the IBEX Ribbon Structure a Solar Cycle Apart
- Understanding the IBEX ribbon using the kinetic model of pickup proton transport in a scatter-free limit
- Variations in the pickup ion density structure in response to the growth of the Kelvin--Helmholtz instability along the heliopause