Course detail
Aerodynamics I
FSI-OA1-AAcad. year: 2024/2025
Fundamentals of fluid mechanics – Atmosphere and its properties, fluid properties, fundamental laws of fluid mechanics (recapitulate) – kinematics, dynamics of flow field, viscous effects (state equation, conservation of mass – eq. of continuity, Bernoulli’s eq., Euler’s eq., Navier-Stokes eq.). Airfoil and its aerodynamic properties – origination of aerodynamic forces – physical principle, aerodynamic forces acting on body in moving fluid and their mathematical model, force and moments coefficients, similarity numbers,  - theorem, aircraft wing section. Wing and its aerodynamic properties – wing section – development of airfoils, their marking and classification, structural, operational and technology requirements. High-lift devices. Lift distribution along wingspan, induced drag, total lift, drag and moments of finite span wing. Aerodynamic properties of aircraft – Stability requirements, aerodynamic forces equilibrium. Wing-body combination effects, lift, drag and moment of aircraft, drag polar in detail. Propulsion and its influence. Aerodynamic design and analysis of aircraft.
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Department
Offered to foreign students
Entry knowledge
Rules for evaluation and completion of the course
Student have to solve all problems presented at exercises. If presence at exercises is less then 50 % student has to compensate missed exercises individually.
Aims
Students will acquire the knowledge of aircraft aerodynamics. Students will be able to solve problems of flow around bodies-outer aerodynamics and problems of flow inside bodies-inner aerodynamics.
Study aids
Prerequisites and corequisites
Basic literature
Houghton E. L., Carpenter P. W., Aerodynamics for Engineering Students
Recommended reading
J. D. Anderson, jr.: Fundamentals of Aerodynamics, , 0
Elearning
Classification of course in study plans
- Programme N-AST-A Master's 1 year of study, winter semester, compulsory
- Programme N-LKT-P Master's
specialization STL , 1 year of study, winter semester, compulsory
specialization TLT , 1 year of study, winter semester, compulsory - Programme N-ENG-Z Master's 1 year of study, winter semester, recommended course
- Programme C-AKR-P Lifelong learning
specialization CZS , 1 year of study, winter semester, elective
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
1.1 Atmosphere and its properties
1.2 Fluid properties
1.3 Fundamental laws of fluid mechanics (recapitulate)
- fluid kinematics, dynamics, viscosity effects
2. Airfoil and its aerodynamic properties
2.1 Origination of aerodynamic forces – physical principle
2.2Aerodynamic forces and moments acting on body in moving fluid – mathematical model
2.3 Aircraft wing section in particular.
3. Finite wing and its aerodynamic properties
3.1 Wing section
3.2 Development of airfoil, marking and classification
3.3 Airfoil requirements
3.3.1 Aerodynamic properties
3.3.2 Operation and technology
3.3.3 Structural requirements
3.4 Finite wing
3.4.1 Lift distribution
3.4.2 Induced drag
3.4.3 Lift, drag and moment
4. Aerodynamic characteristics of complete aircraft
4.1 Stability requirements, aerodynamic forces equilibrium
4.2 Wing-body effects on lift and other aerodynamic properties
4.3 Lift, drag and moment of aircraft, drag polar in detail
4.4 Propulsion unit and its effect on aerodynamic properties of aircraft
4.4 Aerodynamic design and analysis of aircraft
Laboratory exercise
Teacher / Lecturer
Syllabus
2. Determination of lift coefficient value from pressure coefficent distribution
Exercise
Teacher / Lecturer
Syllabus
2. International Standard Atmosphere
3. Incompressible fluid flow along stream line, measurement of flow velocity
4. Compressible 1D flow. Rocket motor, gas flow in nozzles
5. Joukowski's transformation and airfoils
6. Velocity and pressure distribution in potential vortex
7. Approximate methods of flow solution around airfoils
8. Boundary layer depths at flat plate
9. Recalculation of incompressible fluid flow at airfoil to subsonic speeds
10. Finite span wing, basic and additional lift distribution along span
11. Panel methods 2D und 3D
Elearning