| name | cfd-analysis |
| description | Deep integration with computational fluid dynamics tools for aerodynamic analysis across all flight regimes |
| allowed-tools | ["Read","Write","Glob","Grep","Edit","WebFetch","WebSearch","Bash"] |
| metadata | {"version":"1.0","category":"aerospace-engineering","tags":["aerodynamics","cfd","simulation","fluid-dynamics"]} |
| graph | {"domains":["domain:aerospace-engineering"],"specializations":["specialization:aerospace-engineering"],"skillAreas":["skill-area:physics-simulation","skill-area:mathematical-reasoning","skill-area:computational-geometry"],"roles":["role:research-engineer","role:computational-scientist"]} |
CFD Analysis Skill
Purpose
Provide deep integration with computational fluid dynamics tools for comprehensive aerodynamic analysis across subsonic, transonic, supersonic, and hypersonic flight regimes.
Capabilities
- ANSYS Fluent, OpenFOAM, Star-CCM+ workflow automation
- Mesh generation and quality assessment
- Turbulence model selection and configuration
- Boundary condition specification for various flow regimes
- Post-processing and force/moment extraction
- Mesh independence study automation
- Flow visualization and contour generation
- Convergence monitoring and criteria definition
Usage Guidelines
- Select appropriate turbulence models based on flow regime and Reynolds number
- Ensure mesh quality metrics meet industry standards before running simulations
- Perform mesh independence studies to validate solution accuracy
- Use appropriate boundary conditions for the specific flight condition
- Monitor residuals and force/moment convergence during simulations
- Document all simulation parameters for traceability and reproducibility
Dependencies
- ANSYS Fluent
- OpenFOAM
- Star-CCM+
- ParaView
- Tecplot
Process Integration
- AE-001: CFD Analysis Workflow
- AE-002: Wind Tunnel Test Correlation
- AE-003: Aerodynamic Database Generation