High-z & Multi-λ · Multi-wavelength study of accretion onto black holes and its evolution during cosmic times
7РП — „Хора“ (Действия „Мария Кюри“)
- Период
- 2013-03-01 → 2015-02-28
- Финансиране от ЕС
- 161 969 €
- Участници
- 1
- Схема
- MC-IEF
Линиите свързват координатора с партньорите.
Накратко на български
Черните дупки и неутронните звезди се изследват чрез рентгенови лъчи, като например се наблюдава как свръхмасивната черна дупка в центъра на Млечния път поглъща материя. Това помага да се разбере как еволюират тези обекти и как работят техните газови изхвърляния.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Multi-wavelength study of accretion onto black holes and its evolution during cosmic times
The Universe observed with human eyes is dominated by stars and Galaxies surrounding us. X-ray astronomy opened a new window to explore the Cosmo and showed that the X-ray Universe is dominated by the radiation from accreting compact objects (e.g., black holes and neutron stars). During the Marie Curie fellowship we investigated the supermassive black hole residing at the center of the Milky Way and we lead the European effort to monitor its X-ray activity. We investigated the X-ray emission from the central degree of the Galaxy, discovering new features produced by past events of accretion onto the black hole (Ponti et al. sub.1). We have been leading several multi-wavelength campaigns to monitor the pericenter passage of a small cloud in a collision course with the supermassive black hole, discovering variations in its typical properties (Ponti et al. sub.2). We have been awarded long monitoring programs to observe with the best European X-ray telescope ever made. Dr. Ponti has been invited to be part of the science team (for the Galactic center) of the new hard X-ray focussing telescope lead by Caltech. The connection between the soft X-ray data from the European telescope XMM-Newton with the ones from NuSTAR allowed us to perform a revolution in our understanding of the Galactic center (Mori et al. in prep.; Shuo et al. in prep.). It is observationally established that outflows are associated to accreting sources. We recently discovered (during the previous Marie Curie fellowship) that stellar mass accreting black holes show powerful winds only during some moments of their life (Ponti et al. 2012). During this fellowship we demonstrated that this behaviour is not a peculiarity accreting black holes, but it extends to accreting neutron stars too (Ponti et al. 2014; 2015). In particular, the same wind properties and phenomenology is observed in the two best studied accreting neutron stars. This has strong implications for the entire field of accretion physics. One strong implication (prediction) of this study is that the same wind should be present in every accreting source. We have also discovered a new cosmological distance measure, using AGN variability (Ponti et al. 2012; La Franca et al. 2014). Thanks to this discovery and to this fellowship, I have been in the position to take a leading role in the study of accretion onto supermassive black holes within the eROSITA collaboration. eROSITA is the next X-ray satellite that will be launched by an European country (designed and build at the host institution). This European fellowship allowed me to take an leading role in the proposal of new European missions. We successfully proposed the Athena mission that is now an approved cornerstone in the European Space Agency (ESA) vision. Athena will be the next generation large area X-ray observatory. This fellowship has been instrumental to become the chair of one of the science panels (Science Working Group 2.3: Feedback in local AGN and star forming galaxies) appointed by the Athena Science Study Team and ESA.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The beginning of this century can be considered a golden age for X-ray astronomy, with the launch of XMM-Newton, Chandra and Suzaku, three cornerstones of the ESA, NASA and JAXA space programs. These observatories, although more than 10yr old, still deliver excellent science and X-ray astronomy now leads many fields of astronomical investigation. However, only small-medium class X-ray missions are planned to be launched in the next 10-15yr, thus shrinking the space for new discoveries in X-rays alone.The two years at MPE will allow to diversify my scientific expertise by: i) expanding my research field into: a) Optical-Infra Red (IR) bands; b) evolution of Active Galactic Nuclei (AGN) variability through cosmic time; ii) being granted access to Optical-IR facilities and new X-ray missions. The proposed project will allow to:1) measure the evolution of AGN variability over cosmic time using large AGN samples, thus also assessing whether AGN can be used as standard candles;2) measure SgrA*'s duty cycle, its past activity, the Molecular Cloud (MC) Galactic Center (GC) distribution, the level of GC cosmic rays, the irradiation induced MC chemistry;3) if SgrA* will go into outburst (a gas cloud will reach SgrA* in mid 2013) we will lead the X-ray investigation of this major event (e.g. the switching on of an AGN, jet-disc creation) that will remain in astronomy records;4) link (thanks to NuSTAR, the new NASA X-ray mission) the variability properties of the Compton reflection hump, the FeK line and the soft excess in AGN, to finally understand the origin of these components;5) monitoring the evolution of the cross-correlation function and the spectral energy distribution, during an entire Galactic Black Hole (GBH) outburst, to echo-map and determine the transformation of the disc-jet-corona system geometry;6) understand if GBH winds can keep the alpha-disc stable, constrain the connections between wind-jet-state in GBH and the connections between GBH and AGN winds.
Оригинален текст от CORDIS (на английски).
Участници
- MAX-PLANCK-GESELLSCHAFT ZUR FORDERUNG DER WISSENSCHAFTEN EV · MUNCHENКоординаторГермания
Връзки
Данни: CORDIS, © Европейски съюз
