UniCHydro · Universal properties of Chaos and Hydrodynamics
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2021-02-01 → 2025-05-25
- Финансиране от ЕС
- 269 003 €
- Участници
- 2
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
Хидродинамиката на течностите се изследва чрез нови физични модели, приложени например към кварк-глуонната плазма при сблъсъци в CERN. Това помага за разбирането на случайните термични флуктуации и локализирането на критичната точка при фазовите преходи на материята.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Universal properties of Chaos and Hydrodynamics
Fluid dynamics is a well-established field with roots going back to Archimedes. Yet, its theoretical foundations continue to evolve, especially as new challenges and perspectives emerge. In recent years, modern techniques from theoretical physics have led to a reformulation of fluid dynamics from first principles, moving beyond traditional approaches that relied primarily on empirical observations. Crucially, this new framework enables the systematic inclusion of stochastic thermal fluctuations—tiny, random variations in the medium that can significantly influence the large-scale properties of the fluid, such as its viscosity. Understanding these effects is essential for accurately describing complex systems, particularly near phase transitions and in turbulent flows. A striking real-world application appears in high-energy heavy-ion collisions at CERN’s Large Hadron Collider. In these extreme events, quarks and gluons are liberated from their parent nuclei and form a hot, dense, and strongly interacting fluid known as the quark-gluon plasma. As the plasma expands and cools, the quarks and gluons recombine into hadrons. Depending on the system’s energy and conserved charges, this recombination can happen smoothly or via a first-order phase transition, much like the freezing of water into ice. This behavior suggests the possible existence of a critical point—a special region in the QCD phase diagram where the smooth and abrupt transitions meet, and where fluctuations play a significant role. Locating this critical point is a major goal of current experimental and theoretical research. This project has two main objectives. First, it aims to construct explicit scenarios where the new formulation of fluid dynamics can be applied—for example, in spin hydrodynamics, to study globally rotating plasmas. These spinning fluids naturally arise in non-central heavy-ion collisions, where the fluid’s internal spin and rotational motion become important and interact in subtle ways. The project also aims to develop a comprehensive framework for describing the physics near the QCD critical point using this modern fluid dynamics approach, thereby contributing directly to ongoing efforts to experimentally discover the critical point The second goal is to explore deep and surprising connections between this reformulated fluid dynamics and the physics of black holes. In theoretical physics, black holes are not just astrophysical objects but also powerful tools for probing ideas in quantum gravity. Remarkably, black holes behave like thermodynamic systems—they have temperature and entropy—and, in certain contexts, they even exhibit fluid-like behavior near their horizons. This is especially apparent in the framework of the Anti-de Sitter/Conformal Field Theory (AdS/CFT) correspondence, which links a gravitational theory in a higher-dimensional space to a quantum field theory without gravity in lower dimensions. This project has made significant progress in applying the new formulation of fluid dynamics to physical systems relevant to heavy-ion phenomenology, while also uncovering deep connections between the symmetries of black hole horizons and those of hydrodynamic and chaotic systems. These results not only advance our theoretical understanding but also open new avenues for exploring the interplay between quantum gravity, fluid dynamics, and many-body quantum physics.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Fluid dynamics is an effective description that applies to a variety of physical systems such as the quark-gluon plasma produced in heavy-ion collisions at RHIC and LHC. Recently, it has become of foremost importance to develop a hydrodynamic theory that incorporates the effects of statistical thermal fluctuations of the background. With such a framework at hand, it would be possible to analytically access many physical situations where statistical fluctuations are dominant such as in turbulent flows and, for example, around the putative critical point in the phase space of Quantum Chromodynamics (QCD) at finite temperature and finite baryon density. Another place where such considerations become relevant is in the physics of Quantum Chaos. Recent developments have shed new light into manifestations of many-body quantum chaos and have lead to the formulation of an effective theory for chaotic systems, albeit with a large number of degrees of freedom. Deviations from this limit seem to strongly indicate the necessity of including statistical fluctuations. Understanding these effects would help to classify the different universality classes of chaos to complete the survey of its manifestations.The research proposal “UniCHydro” addresses several strategic aspects mentioned above related to universal properties of fluid dynamics and quantum chaos. The Experienced Researcher is an expert on Schwinger-Keldysh effective field theory techniques which constitute the starting point for developing this research proposal. The stimulating environments of MIT and the University of Florence will allow then the Experienced Researcher to acquire the new set of skills in analyzing statistical fluctuations and new competencies in quantum chaos which will be fundamental to enhance its career prospects and to become a mature and independent scientist.
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSITA DEGLI STUDI DI FIRENZE · FlorenceКоординаторИталия
- MASSACHUSETTS INSTITUTE OF TECHNOLOGY · CambridgeСъединени щати
Връзки
Данни: CORDIS, © Европейски съюз
