Course detail
Multiphysical Simmulation in Automotive Industry
FSI-QMO Acad. year: 2024/2025 Winter semester
The course will provide an overview of contemporary computational simulations of fluid mechanics and fluid-structure interactions used in the development of modern vehicles. Within the course, selected physical processes including a basic mathematical description are introduced. Preference is given to practical knowledge including lubrication and computational fluid dynamics (CFD). Emphasis is placed on the practical use of simulations within commercial software. Computational simulations are applied to typical tasks occurring in the automotive industry, such as hydrodynamic bearings, vehicle aerodynamics or rotor-fluid interactions.
Supervisor
Department
Learning outcomes of the course unit
Prerequisites
Knowledge of mathematics taught at the bachelor’s degree level and necessarily includes linear algebra (matrices, determinants, systems of linear equations), differential and integral calculus, and ordinary differential equations.
Knowledge of basic principles of hydrodynamics and thermodynamics taught at the bachelor’s degree level.
Planned learning activities and teaching methods
Assesment methods and criteria linked to learning outcomes
The course-unit credit is conditioned by active participation in the seminars, proper preparation of the semester work and fulfillment of the conditions of the control tests. The exam verifies the knowledge gained during lectures and seminars and is divided into a written theoretical part, part of the computational solution of lubrication, fluid flow and heat transfer, and an oral part. The exam considers the work of the student in the exercise. The student must score more than one-half of the total points for the successful completion of the test. An oral examination can test the student's knowledge of the subject and influence the final grade.
Exercises are compulsory, and the form of replacing the missed lessons is solved individually by the lecturer or with the course guarantor. Lectures are optional but strongly recommended.
Language of instruction
Czech
Aims
The objective of the course is to provide basic knowledge in the problems of multiphysics simulations using computational fluid dynamics (CFD), which are applied in the development of motor vehicles and powertrains. The objective is also to obtain knowledge applicable in practice in the areas of external vehicle aerodynamics, internal aerodynamics of rotary machines, lubrication of hydrodynamic bearings or piston and turbocharger seals.
The student will acquire the skills of the practical application of modern methods supported by knowledge of the necessary theoretical principles. The student will apply these skills in the development of motor vehicles in areas such as external vehicle aerodynamics, internal fluid dynamics, and heat transfer in rotary machines or powertrain cooling and lubrication.
Specification of controlled education, way of implementation and compensation for absences
The study programmes with the given course
Programme N-AAE-P: Advanced Automotiv Engineering, Master's
branch ---: no specialisation, 5 credits, compulsory-optional
Programme N-ADI-P: Automotive and Material Handling Engineering, Master's
branch ---: no specialisation, 6 credits, compulsory-optional
Programme C-AKR-P: , Lifelong learning
branch CZS: , 6 credits, elective
Type of course unit
Lecture
26 hours, optionally
Teacher / Lecturer
Syllabus
- Basic concepts in multiphysical simulations
- Advanced volume discretization methods with applications to motor vehicles and powertrains
- Fundamentals of fluid flow and heat transfer using computational fluid dynamics (CFD)
- Fluid flow domain and boundary condition modelling by CFD
- Numeric solution of transport equations
- Modelling of turbulent fluid flow by CFD
- Modelling of transient turbulent fluid flow by CFD
- Modelling of heat transfer by CFD
- Component lubrication description
- Modelling of hydrodynamic lubrication with application to turbocharger bearings
- Lubrication modelling of highly loaded contact pairs with application to powertrains
- Modelling of external aerodynamics with application to passenger vehicles
- Modelling of thermodynamics with application to centrifugal compressors of turbochargers
Computer-assisted exercise
26 hours, compulsory
Teacher / Lecturer
Syllabus
- Introduction of tools for CFD application
- Application of mesh generation methods for solids and domains
- Application of mesh generation methods for CFD simulations
- Creation of computational models for CFD simulations
- Application basics for CFD tools
- Simulation of component lubrication using CFD
- Simulation of flow in a turbocharger compressor
- Simulation and analysis of component lubrication
- Simulation of oil flow in the lubrication system
- Simulation and analysis of external aerodynamics of vehicle components
- Simulation of the vehicle external aerodynamics
- Simulation of gas flow through a thin gap
- Test in the form of a practical application of a CFD tool