SEP · Study of Solar Eruptive Phenomena: Understand their Early Phases and Determine their Arrival Times to Earth
7РП — „Хора“ (Действия „Мария Кюри“)
- Период
- 2011-01-01 → 2014-12-31
- Финансиране от ЕС
- 100 000 €
- Участници
- 1
- Схема
- MC-IRG
Линиите свързват координатора с партньорите.
Накратко на български
Короналните изхвърляния на маса са гигантски потоци от плазма и магнитни полета, които се изстрелват от слънчевата атмосфера. Разбирането на техните начални фази помага за по-точно определяне на времето, в което те ще достигнат Земята и ще повлияят на технологиите.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Study of Solar Eruptive Phenomena: Understand their Early Phases and Determine their Arrival Times to Earth
The Solar Eruptive Phenomena (SEP) project, http://users.uoi.gr/spatsour/sep/sep.html, aims to enhance our understanding of the initial stages and the Sun-to-Earth propagation of Coronal Mass Ejections (CMEs). CMEs represent gigantic expulsions of plasma and frozen-in magnetic fields from the solar atmosphere, the corona, into the interplanetary medium. CMEs are a main driver of the variable Space Weather which impacts high-tech human activities and infrastructures in both space and Earth. More specifically SEP addresses the following: (1) understand the genesis of CMEs, (2) determine the Flare-CME-Coronal Waves relationships, and (3) determine accurate CME arrival times. A major obstacle in our understanding of CMEs concerns their primordial magnetic structure, i.e. what is the magnetic structure when and before a CME is launched. While it is now widely accepted that most CMEs once in the outer corona and when they impact the Earth, posses a flux rope topology, i.e. coiled magnetic fields along the axis of a current channel, it is a matter of strong debate whether a flux-rope topology exists when a CME is born. Using a combination of imaging observations of hot plasmas (>10 MK) in the corona and magnetic field observations at the photospheric roots of CMEs, we concluded that flux-ropes are a common occurrence before and during CME onsets. In addition, we presented the first observations of a truly pre-existing flux-rope. This structure was formed during a confined (i.e., non-eruptive) solar flare. After almost 7 hours from its formation, the flux-rope erupted as a CME. We therefore conjectured that confined flares of all magnitudes could lead into the formation and the development of flux-ropes. Moreover the role of the background magnetic field in the initiation of CMEs was studied. It is well-known that the tension of the overlying magnetic field lines is the dominant force opposing a CME to take place. When the magnetic field above the rising magnetic flux drops off relatively fast with height, then a CME could take place: otherwise the eruption is confined. Using magnetic field observations at the solar surface, i.e, the photosphere, we calculated the coronal magnetic field above a solar active region which gave rise to several CMEs. The temporal evolution of the rate of the magnetic field decrease (decay-index) above this active region was calculated. The decay index evolution was not the prime factor leading to the observed CMEs, but it was rather the magnetic helicity injection. Frequently and in tandem with eruptive flares large-scale wave disturbances are observed. These so-called EUV waves, sometimes cover the entire solar surface. The nature of the EUV waves is a matter of intense debate with both wave (fast-mode MHD) and non-wave interpretations (disk projection of expanding CME). The exact nature of EUV waves was addressed with a synthesis of the current observational and modeling information of this phenomenon. Understanding this phenomenon has significant implications for both understanding the early evolution of CMEs as well as for gauging coronal conditions. A hybrid picture invoking both wave and non-wave components was found to best reproduce the bulk of the observations recorded by modern instrumentation on-board various satellites (SOHO, TRACE, Hinode, STEREO, SDO). A period of strong lateral expansion that early CMEs undergo is the driver of EUV waves. The initially driven and then freely-propagating EUV wave drives several secondary phenomena along its path (e.g., loop and filament deflections and oscillations) while the erupting CME flux generates several non-wave phenomena like stationary dimmings. Estimates of the energetic content of EUV waves shows they rival the energy of small flares. Analysis of coronal observations of eruptive solar phenomena in various domains of the spectrum (radio, EUV, white-light) showed that the rapid initial expansion of ambient magnetic structures, forming cavities, driven from below by erupting flux-ropes, is responsible for the generation of wave and shock phenomena in the inner corona. In addition, and further away in the outer corona, CME-driven shocks observed in the white-light connect both spatially and temporally with the sites of release and acceleration of geoeffective solar energetic particles. We found that shocks formed around fast CMEs represent a crucial parameter in the description and modeling of their propagation in the interplanetary medium. Inclusion of shocked solar wind conditions upstream the propagating CMEs into the corresponding equation of motion leads to significant improvements in the prediction of their arrival times and speeds at Earth. In addition, rather excessive departures of CME shapes from sphericity are required in order to obtain significant changes in the anticipated arrival times and speeds of CMEs when they reach the Earth's space environment.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Our Sun is a violent star. Frequently the solar atmosphere is the set of gigantic eruptions. These can be either confined (flares) or ejective (Coronal Mass Ejections; CMEs). Flares release huge amounts of energy while CMEs launch several billion tons of mass into the interplanetary space. Sometimes large scale coronal waves are observed in association with the above phenomena. Flares and CMEs represent the major drivers of intense Space Weather Phenomena, a number of phenomena in the Earth magnetic environment and upper atmosphere whichcan impact technological systems on Earth and in Space as well as humans in space. Currently, our understanding of these important solar phenomena is limited by the very nature of our observations which are taken from one viewpoint. This gives only 2D projections of intrinsically 3D objects. Moreover, single viewpoint observations could be always prone to projection effects which could mislead the analysis. The situation changed dramatically with the launch in late 2006 of the STEREO mission which supplies the first ever 3D views of the Sun and of the Heliosphere.STEREO consists of two identical satellites which observe the Sun and the Heliosphere from two distinct vantage points. Using the unique and novel 3D aspect of the STEREO data we will address (1) the genesis of CMEs, (2) the relationships between flares-CMEs-Coronal Waves and (3) more accurate determinations of CME arrival times to Earth. I'm a member of the US-based team of the main STEREO instrument and an expert in the analysis of STEREO imaging data. The proposed research will allow to decide between competing models/theories on CME initiation and determine what is the exact relationships between flares-CMES-Coronal Waves. It will also supplythe basis of a space weather tool for predicting accurate CME arrival times to Earth. The proposal will enhance my chances of getting tenure and will help setting up a research center at my host.
Оригинален текст от CORDIS (на английски).
Участници
- PANEPISTIMIO IOANNINON · IOANNINAКоординаторГърция
Връзки
Данни: CORDIS, © Европейски съюз
