H. F. Wang

ORCID: 0009-0003-0946-8179
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About
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Research Areas
  • Quantum Information and Cryptography
  • Quantum Mechanics and Applications
  • Combustion and flame dynamics
  • Coastal and Marine Dynamics
  • Robotic Mechanisms and Dynamics
  • Plasma and Flow Control in Aerodynamics
  • Mechanical Engineering and Vibrations Research
  • Real-time simulation and control systems
  • Fluid Dynamics and Vibration Analysis
  • Radiative Heat Transfer Studies
  • Wave and Wind Energy Systems
  • Quantum Computing Algorithms and Architecture
  • Fluid Dynamics and Turbulent Flows
  • Advanced Combustion Engine Technologies
  • Nonlinear Optical Materials Studies

Harbin Institute of Technology
2009-2024

State Key Laboratory of Robotics and Systems
2024

Nanjing University of Aeronautics and Astronautics
2024

To conduct high-precision and high-resolution numerical simulation of complex flow structures in turbomachinery, a high-order finite volume weighted essentially non-oscillatory (WENO) scheme for the large eddy (LES) is improved embedded into three-dimensional viscous unsteady CFD solver NUAA-Turbo. Firstly, spectral characteristics convergence WENO are studied. Compared with classical scheme, has better dissipation dispersion faster speed. Then, coefficient CW Wall-Adapting Local...

10.20944/preprints202404.0830.v1 preprint EN 2024-04-12

In numerical simulations, achieving high accuracy without significantly increasing computational costs is often challenging. To address this, this paper presents an improved finite volume weighted essentially non-oscillatory (WENO) scheme tailored for applicability in fluid dynamics (CFD) and implemented the flow solver NUAA-Turbo simulating turbomachinery flows using both RANS RANS/LES coupling. Firstly, new WENO validated against classic test cases to assess its stability reliability...

10.20944/preprints202405.0050.v1 preprint EN 2024-05-01

The tension-leg platform (TLP) supporting structure is a good choice for floating offshore wind turbines because TLP has superior motion dynamics. This study investigates the effects of spoke dimensions on turbine system (FOWT). Spoke dimension and were subjected to irregular wave excitation evaluate FOWT. research been divided into two parts: (1) Five models designed based different dimensions, aerohydroservo-elastic coupled analyses conducted using finite element method. (2) Considering...

10.1155/2016/8913873 article EN cc-by Shock and Vibration 2016-01-01
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