Area of research
Computational Mechanics · Aerospace Engineering
Research interest
Research interests include Mechanics, Reynolds number, Vibration, Wake, Physics, and Vortex.
Marine Scrubbers vs Low-Sulfur Fuels: A Comprehensive Well-To-Wake Life Cycle Assessment Supported by Measurements Aboard an Ocean-Going Vessel
Deep learning vortex-induced vibrations: Time-space forecasting with transformers
DeepVIVONet: Using deep neural operators to optimize the location of sensors with application to vortex-induced vibrations
Mapping the properties of wake-induced vibration on a circular cylinder
Deep reinforcement transfer learning of active control for bluff body flows at high Reynolds number
A large-eddy simulation study on the similarity between free vibrations of a flexible cylinder and forced vibrations of a rigid cylinder
Electroactive Morphing Vibrating Trailing Edge of a Cambered Wing: PIV, Turbulence Manipulation and Velocity Effects
Reinforcement learning for bluff body active flow control in experiments and simulations
Mapping the properties of the vortex-induced vibrations of flexible cylinders in uniform oncoming flow
A robotic Intelligent Towing Tank for learning complex fluid-structure dynamics
A numerical study on the enhanced drag reduction and wake regime control of a square cylinder using dual splitter plates
Flow control with rotating cylinders
Optimal dynamic soaring consists of successive shallow arcs
Biomimetic hydrogel-CNT network induced enhancement of fluid-structure interactions for ultrasensitive nanosensors
Tuna fin hydraulics inspire aquatic robotics
Consolidation of Empirics for Calculation of VIV Response
Vortex-Induced Vibrations
Biomimetic Microsensors Inspired by Marine Life
Artificial fish skin of self-powered micro-electromechanical systems hair cells for sensing hydrodynamic flow phenomena
Biomimetic Survival Hydrodynamics and Flow Sensing
Wake-induced ‘slaloming’ response explains exquisite sensitivity of seal whisker-like sensors
Ultra-fast escape maneuver of an octopus-inspired robot
A novel degree of freedom in flapping wings shows promise for a dual aerial/aquatic vehicle propulsor
A self stabilizing underwater sub-surface inspection robot using hydrodynamic ground effect
Validation of Computational Fluid-Structure Interaction Analysis Methods to Determine Hydrodynamic Coefficients of a BOP Stack
Adding in-line motion and model-based optimization offers exceptional force control authority in flapping foils
On fatigue damage of long flexible cylinders due to the higher harmonic force components and chaotic vortex-induced vibrations
Design for precision multi-directional maneuverability: Egg-shaped underwater robots for infrastructure inspection
Coupled Inline-Cross Flow VIV Hydrodynamic Coefficients Database
Distributed lock-in drives broadband vortex-induced vibrations of a long flexible cylinder in shear flow