DarkGalaxies · Dark galaxies: Probing the ΛCDM cosmological model on unprecedented scales
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2022-09-01 → 2024-08-31
- Финансиране от ЕС
- 183 473 €
- Участници
- 1
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
Тъмната материя и нейните свойства се изследват чрез наблюдение на космически структури, в които не се формират галактики. Това помага да се провери дали водещият космологичен модел прави правилни предсказания за разпределението на материята във Вселената.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Dark galaxies: Probing the ΛCDM cosmological model on unprecedented scales
A fundamental challenge in modern physics is identifying the nature of dark matter (DM). Nearly a century after this particle's existence was first inferred from its gravitational influence on large cosmic structures, it has yet to be directly detected on Earth. The leading model for interpreting observations is Λ-Cold Dark Matter (ΛCDM), which has been instrumental for over 40 years in explaining how structures and galaxies form. In this model, "dark energy" (Λ) drives the universe's accelerated expansion, while "cold" dark matter (CDM) governs the gravitational collapse of structures. This model is testable, as it predicts the distribution, structure, and abundance of collapsed halos, the sites where galaxies form. However, these predictions are largely influenced by the complex physics governing galaxy formation and evolution. These issues pose a significant challenge and hamper the steady progress that has defined cosmology over the past decades. While the comparison between simulation results and observations continues to face scrutiny, it is clear that simulations allow a high degree of freedom to "accommodate" their outcomes to observations. Given these issues, a natural question arises: can competing DM models be tested, constrained, or ruled out through comparisons between observations and simulations of galaxies? The flexibility in galaxy formation models makes it difficult to argue in favour of this. Our project explored observational probes at scales where galaxies do not form. On these scales, DM-dominated halos’ properties are robust. The existence of these systems is well justified. Observationally, reconciling ΛCDM with the abundance of galaxies requires galaxies to form predominantly in halos above a characteristic mass of about 5 billion solar masses. Theoretically, efficient gas cooling and cosmic reionization dictate a similar mass scale value. ΛCDM predicts myriads of halos below this mass, which, while devoid of stars, should contain neutral hydrogen. The gas in these systems should be in hydrostatic equilibrium with their underlying DM halo and in thermal equilibrium with the external ultraviolet background radiation field. By studying the gas distribution of these systems one can probe the clustering properties of DM, and thus constrain its nature. We shall refer to these systems as REionization-Limited HI Clouds (RELHICs).
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The currently favoured Lambda-Cold-Dark-Matter (ΛCDM) cosmological model makes specific predictions about theabundance, structure and clustering of dark matter halos (DMHs), the sites where galaxies form. These predictions areaccurate at describing large scale observations. On smaller scales, the agreement between ΛCDM and observations ofdwarf galaxies is unclear because (i) the structure of DMHs depends on particularities of different galaxy formation models,and (ii) observations of dwarfs suffer from sizable uncertainties. Is ΛCDM successful on small scales? A definite answer tothis major open question may either reveal the nature of DM or change dramatically our understanding of structure formationin the Universe. My research will deliver the foundations to probe ΛCDM on unprecedented small scales by exploiting afundamental prediction of the model: the existence of nearby DM-dominated “dark” galaxies (so-called RELHICs). RELHICsare pristine collapsed DMHs that contain sufficient gas leftover from the epoch of reionization to recombine and emitradiation that can be observed in 21 cm (or recombination lines) but without becoming self-shielding and forming stars.Firstly, I will develop and analyse high-resolution hydrodynamical simulations performed with state-of-the-art numericalcodes that include cutting-edge galaxy formation and radiative-transfer (RT) models to predict the abundance and clusteringof RELHICs. Secondly, I will design robust survey strategies targeted at detecting RELHICs with current and upcomingobserving facilities (e.g., ALMA, FAST, MEERKAT, WALLABY). The detection and characterization of REHICs will offer anunprecedented and clean probe to ΛCDM on scales that have not yet been probed.My extensive expertise in numerical simulations, cosmology and galaxy formation, combined with that of Prof. MicheleFumagalli in RT and physics of the interstellar medium will enable me to materialize my predictions into observational probes.
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSITA' DEGLI STUDI DI MILANO-BICOCCA · MilanoКоординаторИталия
Връзки
Данни: CORDIS, © Европейски съюз
