@article{
	11589_70521,
	author = { De Marinis  Dario  and  De Tullio  Marco Donato  and  Napolitano  Michele  and  Pascazio  Giuseppe },
	title = {Improving a conjugate-heat-transfer immersed-boundary method},
	year = {2016},
	journal = {INTERNATIONAL JOURNAL OF NUMERICAL METHODS FOR HEAT & FLUID FLOW},
	volume = {26},
	keywords = {Conjugate heat transfer; Immersed boundary method; URANS; Mechanical Engineering; Mechanics of Materials; Computer Science Applications1707 Computer Vision and Pattern Recognition; Applied Mathematics},
	url = {http://www.emeraldinsight.com/info/journals/hff/hff.jsp},
	doi = {10.1108/HFF-11-2015-0473},	
	pages = {1272--1288}
}
@conference{
	11589_62872,
	author = { De Marinis  D  and  De Tullio  M D  and  Napolitano  M  and  Pascazio  G },
	title = {A conjugate-heat-transfer immersed-boundary method for turbine cooling},
	year = {2015},
	publisher = {Elsevier Ltd},
	journal = {ENERGY PROCEDIA},
	volume = {82},
	booktitle = {Energy Procedia},
	keywords = {Conjugate heat transfer; Immersed boundary method; Turbine cooling; URANS; Energy (all)},
	url = {http://www.sciencedirect.com/science/journal/18766102},
	doi = {10.1016/j.egypro.2015.12.025},	
	pages = {215--221}
}
@conference{
	11589_18219,
	author = { NAPOLITANO M},
	title = {CFD in Europe, a personal perspective},
	year = {2014},
	booktitle = {Computational Fluid Dynamics 2014}
}
@conference{
	11589_18370,
	author = { DE MARINIS D  and  DE TULLIO M D  and  PASCAZIO G  and  NAPOLITANO M },
	title = {An immersed boundary method for fluid-structure interactions},
	year = {2014},
	publisher = {Politecnico di Bari},
	address = {BARI},
	booktitle = {Proceedings of Score@poliba},
	abstract = {This paper provides some  recent results obtained in the development of Immersed Boundary (IB) methods at the Politecnico di Bari: in particular, the development and testing of one such method—using a versatile Moving Least Squares approach, coupled with a very efficient solver for solving fluid-structure interaction problems in
incompressible laminar flows—will be addressed. Such a method allows one to solve complex
three-dimensional solid-fluid interaction problems within reasonable computer times.
The solver is validated versus: the free fall of a sphere within a fluid at
rest and jellyfish propulsion. Such results demonstrate the accuracy, efficiency, and versatility of the proposed  method.},
	keywords = {IB method; fluid; structure}
}
@conference{
	11589_18220,
	author = { DE MARINIS D  and  DE TULLIO M D  and  PASCAZIO G  and  NAPOLITANO M },
	title = {An Immersed boundary method for coupled multi-physics simulations},
	year = {2014},
	booktitle = {Computational Fluid Dynamics 2014}
}
@conference{
	11589_52561,
	author = { de Tullio M D  and  Pascazio G  and  Napolitano M },
	title = {Arbitrarily Shaped Particles in Shear Flow},
	year = {2012},
	booktitle = {Seventh International Conference on Computational Fluid Dynamics (ICCFD7), Big Island, Hawaii, July 9-13, 2012}
}
@conference{
	11589_52768,
	author = { de Tullio M D  and  De Palma P  and  Napolitano M  and  Pascazio G },
	title = {Recent advances in the development of an immersed boundary method for industrial applications},
	year = {2011},
	publisher = {Springer-Verlag},
	address = {Berlin},
	booktitle = {COMPUTATIONAL FLUID DYNAMICS 2010},
	abstract = {This paper provides some recent developments of an immersed boundary method for solving flows of industrial interest at arbitrary Mach numbers. The method is based on the solution of the preconditioned compressible Favre-averaged Navier - Stokes equations closed by the k-ω low Reynolds number turbulence model. A flexible local grid refinement technique is implemented on parallel machines using a domain-decomposition approach and an edge-based data structure. Thanks to the efficient grid generation process, based on the ray-tracing technique, and the use of the METIS software, it is possible to obtain the partitioned grids to be assigned to each processor with a minimal effort by the user. This allows one to by-pass the very time consuming generation process of a body-fitted grid.},
	doi = {10.1007/978-3-642-17884-9_76},	
	pages = {601--606}
}
@conference{
	11589_52676,
	author = { de Tullio M D  and  Afferrante L  and  Napolitano M  and  Pascazio G  and  Verzicco R },
	title = {Fluid mechanics in aortic prostheses after a Bentall procedure},
	year = {2011},
	publisher = {Springer-Verlag},
	address = {Berlin},
	booktitle = {COMPUTATIONAL FLUID DYNAMICS 2010},
	abstract = {The simultaneous replacement of a diseased aortic valve, aortic root and ascending aorta with a composite graft equipped with a prosthetic valve is a nowadays standard surgical approach, known as the Bentall procedure: the Valsalva sinuses of the aortic root are sacrificed and the coronary arteries are reconnected directly to the graft. In practice, two different composite-material prostheses are largely used by surgeons: a standard straight graft and the Valsalva graft with a bulged portion that better reproduces the aortic root anatomy. The aim of the present investigation is to study the effect of the graft geometry on the the flowfield as well as on the stress concentration at the level of coronary-root anastomoses during the cardiac cycle. An accurate three-dimensional numerical method, based on the immersed boundary technique, is proposed to study the flow inside moving and deformable geometries. Direct numerical simulations of the flow inside the two prostheses, equipped with a bileaflet mechanical valve with curved leaflets, under physiological pulsatile inflow conditions show that, when using the Valsalva graft, the stress level near the coronary-root anastomoses is about half that obtained using the standard straight graft.},
	doi = {10.1007/978-3-642-17884-9_46},	
	pages = {371--376}
}
@conference{
	11589_15484,
	author = { DE TULLIO M  D  and  LATORRE S  S  and  DE PALMA P  and  NAPOLITANO M  and  PASCAZIO G },
	title = {An Immersed-boundary method for solving conjugate heat transfer problems in turbomachinery},
	year = {2010},
	booktitle = {ECCOMAS-CFD, 5th European Conference on Computational Fluid Dynamics}
}
@article{
	11589_2090,
	author = { CUTRONE L  and  DE PALMA P  and  PASCAZIO G  and  NAPOLITANO M },
	title = {A RANS flamelet-progress-variable method for computing reacting flows of real-gas mixtures},
	year = {2010},
	journal = {COMPUTERS & FLUIDS},
	volume = {39},
	abstract = {This paper provides an efficient numerical method for solving reacting flows of industrial interest in the presence of significant real-gas effects. The method combines a state-of-the-art solver of the Reynolds-averaged Navier-Stokes equations - equipped with the low-Reynolds number k - ω turbulence closure - with a combustion flamelet-progress-variable approach. A real-gas model as well as a detailed kinetic scheme are used to generate the flamelet library. The method is tested versus several applications chosen to demonstrate the importance of the real-gas effects and of the kinetic scheme for computing high-pressure combustion. The major contribution of the paper is to provide a single-phase approach which solves turbulent reacting real-gas flows at a computational cost comparable with that of the simulation of a non-reacting flow thanks to the use of the flamelet library.},
	keywords = {Combustion chambers, High-pressure combustion, Liquid-rocket engine, Single-phase approach},
	doi = {10.1016/j.compfluid.2009.10.001},	
	pages = {485--498}
}
@article{
	11589_6317,
	author = { ROSSIELLO G  and  DE PALMA P  and  PASCAZIO G  and  NAPOLITANO M },
	title = {Analysis of high-order-accurate fluctuation splitting schemes for steady advection},
	year = {2010},
	journal = {INTERNATIONAL JOURNAL OF COMPUTATIONAL FLUID DYNAMICS},
	volume = {24},
	abstract = {This article provides an analysis of high-order-accurate two-dimensional fluctuation splitting schemes for steady advection. Using Lagrangian elements, a residual distribution scheme is formulated and its properties are assessed. Distributing the residuals over the sub-triangles of each element allows one to obtain a well-posed scheme. It is also shown that the standard elemental approach is ill-posed, insofar as it produces an undetermined linear system. A steady scalar-advection problem is used to verify that the numerical schemes do obey the analysis.},
	keywords = {Conservation laws; Fluctuation splitting; Lagrangian elements; Residual distribution; Steady advection},
	doi = {10.1080/10618562.2010.521651},	
	pages = {217--225}
}
@conference{
	11589_17853,
	author = { de Tullio M D  and  Latorre S S  and  De Palma P  and  Napolitano M  and  Pascazio G },
	title = {An immersed boundary method for conjugate heat transfer problems},
	year = {2010},
	publisher = {ASME},
	volume = {1},
	booktitle = {PROCEEDINGS OF THE ASME FLUIDS ENGINEERING DIVISION SUMMER CONFERENCE - 2010},
	doi = {10.1115/FEDSM-ICNMM2010-30694},	
	pages = {2393--2399}
}
@conference{
	11589_23479,
	author = { de Tullio M D  and  Latorre S S  and  De Palma P  and  Pascazio G  and  Napolitano M },
	title = {An immersed boundary method for turbomachinery conjugate-heat-transfer problems},
	year = {2010},
	booktitle = {65° Congresso nazionale Associazione Termotecnica Italiana ATI. Domus de Maria (CA), 13-17 Settembre 2010}
}
@conference{
	11589_17937,
	author = { Pascazio G  and  de Tullio M D  and  De Palma P  and  Napolitano M },
	title = {Wall modeling challenges for the Immersed boundary method},
	year = {2010},
	booktitle = {Workshop on Numerical methods for the solution of PDEs on non-body fitted grids}
}
@inbook{
	11589_13427,
	author = { G  ROSSIELLO  and  DE PALMA P  and  G  PASCAZIO  and  M  NAPOLITANO },
	title = {Recent Developments in High-Order-Accurate Fluctuation Splitting Schemes},
	year = {2010},
	publisher = {World Scientific},
	booktitle = {Computational Fluid Dynamics Review 2010},
	pages = {221--240}
}
@inbook{
	11589_13446,
	author = { DE TULLIO M D  and  DE PALMA P  and  IACCARINO G  and  PASCAZIO G  and  NAPOLITANO M },
	title = {Immersed boundary technique for compressible flow simulations on semi-structured grids},
	year = {2009},
	publisher = {Springer Verlag},
	address = {BERLIN HEIDELBERG},
	booktitle = {Computational Fluid Dynamics 2006},
	doi = {10.1007/978-3-540-92779-2 56},	
	pages = {365--370}
}
@inbook{
	11589_12821,
	author = { ROSSIELLO G  and  DE PALMA P  and  PASCAZIO G  and  NAPOLITANO M },
	title = {High-order-accurate fluctuation splitting schemes for unsteady hyperbolic problems using Lagrangian elements},
	year = {2009},
	publisher = {Springer Verlag},
	address = {BERLIN HEIDELBERG},
	booktitle = {Computational Fluid Dynamics 2008},
	doi = {10.1007/978-3-642-01273-0},	
	pages = {405--410}
}
@inbook{
	11589_12378,
	author = { RUBINO D T  and  DE PALMA P  and  PASCAZIO G  and  NAPOLITANO M },
	title = {Solution of the steady Euler equations using Fluctuation Splitting schemes on quadrilateral elements},
	year = {2009},
	publisher = {Springer Verlag},
	address = {BERLINO},
	booktitle = {Computational Fluid Dynamics 2006 H. Deconinck, E. Dick Eds.)},
	doi = {10.1007/978-3-540-92779-2},	
	pages = {101--106}
}
@conference{
	11589_15307,
	author = { de Tullio M D  and  De Palma P  and  Pascazio G  and  Napolitano M },
	title = {Wall Stress Models for an Immersed Boundary Method},
	year = {2009},
	booktitle = {Academy Colloquium: Immersed Boundary Methods, Current Status and Future Research Directions}
}
@article{
	11589_5475,
	author = { ROSSIELLO G  and  DE PALMA P  and  PASCAZIO G  and  NAPOLITANO M },
	title = {Second-order-accurate explicit fluctuation splitting schemes for unsteady problems},
	year = {2009},
	journal = {COMPUTERS & FLUIDS},
	volume = {38},
	doi = {10.1016/j.compfluid.2008.01.021},	
	pages = {1384--1393}
}
