Carlo Massimo Casciola

Pubblicazioni

Titolo Pubblicato in Anno
Perspectives on cavitation enhanced endothelial layer permeability COLLOIDS AND SURFACES. B, BIOINTERFACES 2018
Thermally activated vapor bubble nucleation: The Landau-Lifshitz--Van der Waals approach PHYSICAL REVIEW FLUIDS 2018
Vapor nucleation paths in lyophobic nanopores THE EUROPEAN PHYSICAL JOURNAL. E, SOFT MATTER 2018
A T-junction device allowing for two simultaneous orthogonal views: application to bubble formation and break-up MICROFLUIDICS AND NANOFLUIDICS 2018
The detailed acoustic signature of a micro-confined cavitation bubble SOFT MATTER 2018
Laser Induced Breakdown and Bubble Cavitation Proceedings of the 10th International Symposium on Cavitation (CAV2018) 2018
Intrusion and extrusion of a liquid on nanostructured surfaces JOURNAL OF PHYSICS. CONDENSED MATTER 2017
Turbulence modulation in heavy-loaded suspensions of tiny particles PHYSICAL REVIEW FLUIDS 2017
Effect of geometry and Reynolds number on the turbulent separated flow behind a bulge in a channel JOURNAL OF FLUID MECHANICS 2017
Collapse of superhydrophobicity on nanopillared surfaces PHYSICAL REVIEW FLUIDS 2017
Intrusion and extrusion of water in hydrophobic nanopores PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA 2017
Shock-induced collapse of a vapor nanobubble near solid boundaries INTERNATIONAL JOURNAL OF MULTIPHASE FLOW 2016
Wetting and cavitation pathways on nanodecorated surfaces SOFT MATTER 2016
Hydrodynamics of flagellated microswimmers near free-slip interfaces JOURNAL OF FLUID MECHANICS 2016
Focus Article: Theoretical aspects of vapor/gas nucleation at structured surfaces THE JOURNAL OF CHEMICAL PHYSICS 2016
Cascades and wall-normal fluxes in turbulent channel flows JOURNAL OF FLUID MECHANICS 2016
Energy fluxes in turbulent separated flows XXVII IUPAP Conference on Computational Physics (CCP2015) 2016
Exact regularized point particle method for multi-phase flows in the two-way coupling regime JOURNAL OF FLUID MECHANICS 2015
Curvature effects in turbulent premixed flames of H2/air: a DNS study with reduced chemistry FLOW TURBULENCE AND COMBUSTION 2015
Mechanism of the Cassie-Wenzel transition via the atomistic and continuum string methods THE JOURNAL OF CHEMICAL PHYSICS 2015

ERC

  • PE8_5

KET

  • Nanotecnologie
  • Big data & computing

Interessi di ricerca

CMC coordinates a research group operating in the field of complex fluids. Under the PI’s guidance, the group dealt with theoretical, numerical, and experimental aspects of fluid mechanics, to be understood in a wide sense, ranging from scaling laws in turbulence, viscoelasticity, particle transport in turbulence, microfluidics, nanofluidics, Direct Numerical Simulations, phase transition and nucleation problems, cavitation, wettability,  biological barriers permeabilization. 

Research activity and publications include molecular dynamics, free-energy and rare event methods, phase-field approaches for mesoscale modeling, fluctuating hydrodynamics, specialized numerical techniques, micro-fabrication, and design of microfluidic chips, also for biological and biomedical applications. The activity is strongly multidisciplinary, involving disciplines such as fluid mechanics, statistical mechanics, applied mathematics, experimental physics, fabrication technology, material science, biology, and medicine.

During these years the PI gained substantial experience in the field of High-Performance Computing, initially as an awardee of PRACE (Partnership for advanced computing in Europe) peer-reviewed computational grants for computational resources on Tier0 European HPC infrastructures, and successively as a member of the PRACE scientific committee and, quite recently, as a member of the EuroHPC Access Resource Committee. He has been consulted by the CINECA HPC infrastructure for the acquisition of pre-exascale machines.

In the 2013 call, the PI was awarded the prestigious ERC Advanced Grant for the project BIC (Cavitation across scales: following Bubble from Inception to Collapse, agreement # 339446–BIC), where multi-scale simulation techniques were conceived and developed to address the elusive problem of bubble nucleation addressed from the fundamental perspective of atomistic simulation to innovative mesoscale techniques. Besides direct application to cavitation, unexpected results dealt with nucleation in nanoscale confinement and intrusion extrusion mechanics in nanoporous materials. The results obtained in the BIC context received attention also from non-specialized media, with TV, radio, and newspaper interviews.

As a follow-up project BIC, the PI obtained funding from the ERC Proof-of-Concept (2017 call) for developing the INVICTUS (IN VItro Cavitation Through UltraSound, proposal  # 779751) platform for the study of cavitation enhanced endothelial permeability. The idea was to realize a standardized platform hosting a living and biologically functional endothelial layer to mimic a blood vessel on a chip, to understand the effect of ultrasound irradiated microbubbles in increasing the endothelial layer permeability in view of target drug delivery, and brain blood barrier opening.

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