Fluent Modules Online Courses
Here's every CFD online course related to Fluent Modules category.
Two-Blade Savonius Wind Turbine: 2-D
Beginner, Intermediate, Advanced
Price: $42
This project uses ANSYS Fluent to numerically simulate a Savonius vertical axis wind turbine. The 2D model is built in Design Modeler. The model is meshed in ANSYS Meshing, with an element count of 58,468. The simulation is run as unsteady (transient). The Mesh Motion model is used to define the rotational motion.
Helical Wind Turbine, ANSYS Fluent CFD Simulation Training
Beginner, Intermediate, Advanced
Price: $42
This project uses ANSYS Fluent to numerically simulate a helical wind turbine. The 3D model is built in Design Modeler. The model is meshed in ANSYS Meshing, with an element count of about 2,000,000. The simulation is run as unsteady (transient). The Mesh Motion model is used to define the rotational motion.
Helical Blade Wind Turbine: 5 different RPMs
Beginner, Intermediate, Advanced
Price: $220
This project uses ANSYS Fluent to numerically simulate a helical-blade vertical axis wind turbine. The project investigates the tip speed ratio (TSR) across different blade rotational speeds. The 3D model is built in Design Modeler. The model is meshed in ANSYS Meshing, with a polyhedral element count of 507,457. The simulation is run as unsteady (transient). The Mesh Motion method is used to define the rotational motion in a distinct zone around the blades.
Vertical Axis Wind Turbine (VAWT): Paper Numerical Validation
Beginner, Intermediate, Advanced
Price: $320
This project uses ANSYS Fluent to numerically simulate a vertical axis wind turbine (VAWT). The project is validated against a reference article. The 3D model is built in SpaceClaim. The model is meshed in ANSYS Meshing, with an element count of 1,650,940. The simulation is run as unsteady (transient). The Mesh Motion method is used to define the rotational motion.
Darrieus Wind Turbine
Beginner, Intermediate, Advanced
Price: $42
This project uses ANSYS Fluent to numerically simulate a Darrieus wind turbine. The 3D model is built in Design Modeler. The model is meshed in ANSYS Meshing, with an element count of 2,289,621. The simulation is run as unsteady (transient). The Mesh Motion method is used to define a rotating zone.
Serrated Vs. Plain Airfoil: Darrieus VAWT
Beginner, Intermediate, Advanced
Price: $72
This project uses ANSYS Fluent to numerically simulate and compare a serrated-airfoil and a plain-airfoil turbine. The 3D model is built in Design Modeler. The model is meshed in ANSYS Meshing, with an element count of 1,186,185. The simulation is run as unsteady (transient). The rotating motion of the turbine blades is defined using the Mesh Motion option.
Price: $29
Radiation: Beginner CFD Training Package is a ten-project introduction to thermal radiation simulation in ANSYS Fluent. Starting from a simple solar-heated tank and building through buildings, facades, HVAC-coupled rooms, and a solar collector up to an explicit Discrete Ordinates model study, it gives newcomers a hands-on, application-driven foundation in the CFD techniques behind modern radiation and solar-load engineering — one real engineering case at a time.
Price: $29
Porous Media: Beginner CFD Training Package is a ten-project introduction to porous-media flow simulation in ANSYS Fluent. Starting from the porous-jump and porous-zone models and building through porous heat transfer, infiltration, drying, acoustics, and multiphase flow up to large applied systems, it gives newcomers a hands-on, application-driven foundation in the CFD techniques behind modern porous-media engineering — one real engineering case at a time.
Price: $29
MRF: Beginner CFD Training Package is a ten-project introduction to rotating-machinery simulation in ANSYS Fluent using the Moving Reference Frame (MRF) approach. Starting from a simple mixing tank and building through blowers, fans, compressors, pumps, and turbines, it gives newcomers a hands-on, application-driven foundation in the steady-state CFD techniques behind modern rotating-equipment engineering — one real engineering case at a time.