Javier Fernández-Fidalgo

ORCID: 0000-0002-9715-0173
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About
Contact & Profiles
Research Areas
  • Computational Fluid Dynamics and Aerodynamics
  • Fluid Dynamics and Turbulent Flows
  • Service-Learning and Community Engagement
  • Lattice Boltzmann Simulation Studies
  • E-Learning and Knowledge Management
  • Higher Education and Sustainability
  • Numerical methods for differential equations
  • Fluid Dynamics Simulations and Interactions
  • Gas Dynamics and Kinetic Theory
  • Geotechnical Engineering and Underground Structures
  • Plasma and Flow Control in Aerodynamics
  • Enhanced Oil Recovery Techniques
  • Meteorological Phenomena and Simulations
  • Flood Risk Assessment and Management
  • Theoretical and Computational Physics
  • Numerical methods in engineering
  • Aerodynamics and Acoustics in Jet Flows
  • Hydrology and Watershed Management Studies
  • Nuclear reactor physics and engineering
  • Fluid Dynamics and Heat Transfer
  • Advanced Numerical Methods in Computational Mathematics
  • Urban Stormwater Management Solutions

Universidad Politécnica de Madrid
2024-2025

Universidade da Coruña
2018-2023

Hydrology science provides different methods to estimate infiltration: physically based, semi-empiric, and empiric models. Several researchers have compared the adequacy of these models conditions, such as soil types land uses. Most them were applied agriculture natural/forest lands. One main conclusions provided by studies is that cover most relevant factor, even more than texture. As a result, infiltration estimates in urban areas are subject significant uncertainty. Some employed...

10.5194/egusphere-egu25-7259 preprint EN 2025-03-14

Surface tension plays a crucial role in determining the interfacial behavior between partially miscible fluid systems, and affects overall dynamics of phase transition processes. Accurate modeling surface is for understanding predicting various phenomena, such as capillary-driven flows, droplet formation, dynamics. Cubic equations state (EoS), van der Waals (vdW) model, incorporate two corrective terms to account intermolecular interactions. These improve predictions equation at high...

10.1016/j.cma.2024.117072 article EN cc-by-nc Computer Methods in Applied Mechanics and Engineering 2024-05-30

10.1016/j.camwa.2024.05.031 article EN cc-by Computers & Mathematics with Applications 2024-06-07

A highly accurate SPH method with a new stabilization paradigm has been introduced by the authors in recent paper aimed to solve Euler equations for ideal gases. We present here extension of viscous incompressible flow. Incompressibility is tackled assuming weakly compressible approach. The adopts SPH-ALE framework and improves accuracy taking high-order variable reconstruction Riemann states at midpoints between interacting particles. moving least squares technique used estimate derivatives...

10.3390/w13030245 article EN Water 2021-01-20

Abstract Given the small wavelengths and wide range of frequencies acoustic waves involved in Aeroacoustics problems, use very accurate, low-dissipative numerical schemes is only valid option to accurately capture these phenomena. However, as order scheme increases, computational time also increases. In this work, we propose a new high-order flux reconstruction framework finite volume (FV) for linear problems. particular, it applied solve Linearized Euler Equations, which are widely used...

10.1007/s00366-024-02039-2 article EN cc-by Engineering With Computers 2024-08-06

In this work, a generalized framework for the numerical computations of compressible Euler and Navier-Stokes equations is presented in order to increase accuracy any scheme that uses flux can be rewritten as central term plus some dissipation term.The key idea regulate introduced by real-time according estimate high-frequency content flow.This technique called adaptive dissipation, has been applied successfully calculation incompressible turbulent flows.In present case, due compressibility...

10.2495/afm200011 article EN WIT transactions on engineering sciences 2020-10-16
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