Expansion of magnetic clouds in the outer heliosphere
arXiv:1206.1532 · doi:10.1051/0004-6361/201118748
Abstract
A large amount of magnetized plasma is frequently ejected from the Sun as coronal mass ejections (CMEs). Some of these ejections are detected in the solar wind as magnetic clouds (MCs) that have flux rope signatures. Magnetic clouds are structures that typically expand in the inner heliosphere. We derive the expansion properties of MCs in the outer heliosphere from one to five astronomical units to compare them with those in the inner heliosphere. We analyze MCs observed by the Ulysses spacecraft using insitu magnetic field and plasma measurements. The MC boundaries are defined in the MC frame after defining the MC axis with a minimum variance method applied only to the flux rope structure. As in the inner heliosphere, a large fraction of the velocity profile within MCs is close to a linear function of time. This is indicative of} a self-similar expansion and a MC size that locally follows a power-law of the solar distance with an exponent called zeta. We derive the value of zeta from the insitu velocity data. We analyze separately the non-perturbed MCs (cases showing a linear velocity profile almost for the full event), and perturbed MCs (cases showing a strongly distorted velocity profile). We find that non-perturbed MCs expand with a similar non-dimensional expansion rate (zeta=1.05+-0.34), i.e. slightly faster than at the solar distance and in the inner heliosphere (zeta=0.91+-0.23). The subset of perturbed MCs expands, as in the inner heliosphere, at a significantly lower rate and with a larger dispersion (zeta=0.28+-0.52) as expected from the temporal evolution found in numerical simulations. This local measure of the expansion also agrees with the distribution with distance of MC size,mean magnetic field, and plasma parameters. The MCs interacting with a strong field region, e.g. another MC, have the most variable expansion rate (ranging from compression to over-expansion).
References in corpus (7)
- Progressive transformation of a flux rope to an ICME
- Global and local expansion of magnetic clouds in the inner heliosphere
- Linking two consecutive nonmerging magnetic clouds with their solar sources
- Dynamical evolution of a magnetic cloud from the Sun to 5.4 AU
- Magnetohydrodynamic simulation of the interaction between two interplanetary magnetic clouds and its consequent geoeffectiveness
- Magnetohydrodynamic Simulation of the Interaction between Interplanetary Strong Shock and Magnetic Cloud and its Consequent Geoeffectiveness
- Magnetohydrodynamic Simulation of the Interaction between Interplanetary Strong Shock and Magnetic Cloud and its Consequent Geoeffectiveness 2: Oblique Collision
Cited by in corpus (22)
- Generic magnetic field intensity profiles of interplanetary coronal mass ejections at Mercury, Venus and Earth from superposed epoch analyses
- A STEREO Survey of Magnetic Cloud Coronal Mass Ejections Observed at Earth in 2008--2012
- Investigating plasma motion of magnetic clouds at 1 AU through a velocity-modified cylindrical force-free flux rope model
- CME -- HSS interaction and characteristics tracked from Sun to Earth
- Heliospheric Evolution of Magnetic Clouds
- An Analytical Diffusion-Expansion Model for Forbush Decreases Caused by Flux Ropes
- Characterization of the Turbulent Magnetic Integral Length in the Solar Wind: From 0.3 to 5 Astronomical Units
- Prediction of Geomagnetic Storm Strength from Inner Heliospheric In Situ Observations
- Deriving CME density from remote sensing data and comparison to in-situ measurements
- In Situ Properties of Small and Large Flux Ropes in the Solar Wind
- Unusual plasma and particle signatures at Mars and STEREO-A related to CME-CME interaction
- Exploring the radial evolution of Interplanetary Coronal Mass Ejections using EUHFORIA
- Evolution of coronal mass ejections and the corresponding Forbush decreases: modelling vs multi-spacecraft observations
- Radial Evolution of the April 2020 Stealth Coronal Mass Ejection between 0.8 and 1 AU -- A Comparison of Forbush Decreases at Solar Orbiter and Earth
- Contribution of the aging effect to the observed asymmetry of interplanetary magnetic clouds
- Tracking magnetic flux and helicity from Sun to Earth -- Multi-spacecraft analysis of a magnetic cloud and its solar source
- Writhed Analytical Magnetic Flux Rope Model
- Using Coordinated Observations in Polarised White Light and Faraday Rotation to Probe the Spatial Position and Magnetic Field of an Interplanetary Sheath
- Exploring the biases of a new method based on minimum variance for interplanetary magnetic clouds
- Evolution of coronal mass ejections with and without sheaths from the inner to the outer heliosphere -- statistical investigation for 1975-2022
- Space weather: the solar perspective -- an update to Schwenn (2006)
- Analysis of Voyager 1 and Voyager 2 in situ CME observations