Course detail
Mechanics of Composite Materials
FSI-RMOAcad. year: 2018/2019
Introduction, basic terminology. Mechanical properties of the most used fibres and matrix materials. Stiffness of unidirectional fibre composites (lamina) in longitudinal and transversal direction. Critical and minimum fibre volume fraction. Short fibre composites, theory of load transport. Transport and critical fibre length. Siffness and strength. Orthotropic behaviour as a result of the fibre composite structure. Hooke's law of the anisotropic, orthotropic and transversal orthotropic material in principal material directions. Hooke's law for 2-D fibre composite (lamina) in arbitrary direction, strength conditions. Constitutive relations of the laminated thin wall and thin plate. Construction of stiffness matrix, strength analysis. Application to the thin-wall pressure vessel.
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Learning outcomes of the course unit
Prerequisites
Co-requisites
Planned learning activities and teaching methods
Assesment methods and criteria linked to learning outcomes
Course curriculum
Work placements
Aims
Specification of controlled education, way of implementation and compensation for absences
Recommended optional programme components
Prerequisites and corequisites
Basic literature
Jones,R.M.: Mechanics of composite materials. Hemisphere Publishing Corporation, New York, 1975
Krishan K. Chawla: Composite materials. Science and Engineering. Springer-Verlag, New York, Berlin, Heidelberg, 1998
Recommended reading
Classification of course in study plans
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
2.Mechanical properties of typical fibres and of matrix materials. Chemical composition, way of production.
3.Unidirectional long-fibre composite. Elasticity modulus and strength in longitudinal direction.
Critical and minimal volume of fibres.
4.Unidirectional long-fibre composite. Elasticity modulus and strength in transversal direction.Shear modulus and Poisson’s ratio.
5.Failure mechanisms of long-fibre composites under longitudinal and transversal, tensional and compressive loading.
6.Short-fibre unidirectional composite. Theory of load transfer. Stress distribution in fibres. Transmission and critical length.
7.Short-fibre unidirectional composite. Elasticity modulus and strength in transversal and longitudinal directions. Strength in transversal and longitudinal directions.
8.Modelling of mechanical properties of composites within the framework of solid mechanics. 9.Principal axes of orthotropy. Hook’s law for isotropic, orthotropic and transversally isotropic materials in principal material directions.
10.Hook’s law for plane orthotropic material in general directions. Directional stiffness matrix. Balanced oriented lamina.
11.Strength conditions for a plane composite material: maximal stress, maximal strain and Tsai-Hill energetic conditions.
12.Constitutive relations for a composed laminate wall and plate.
13.Calculation of stresses and strength control of a cylindrical laminate wall.
Computer-assisted exercise
Teacher / Lecturer
Syllabus
2.FEM simulation bending of more complex geometry consisting of sandwich shells.
3.FEM simulation of tensile test of fibre composite specimen in longitudinal direction-verification of analytical equations.
4.FEM simulation of tensile test of composite specimen in transversal direction-verification of analytical equations.
5.FEM simulation of shear test of fibre composite specimen-verification of analytical equations.
6. FEM simulation of longitudinal, tranversal and shear test of fibre composite specimen with exploiting homogenization.
7.Practical demonstration of production and testing of composite materials.
8.FEM simulation of pressure cylinder made of composite materials. Using of layered version of elements.
9.FEM computation of stress concentration factor in composite materials.
10.FEM simulation of bending of fibre composite with analysis of failure states via maximal stress criterion.
11.FE analysis of fibre composite. Analysis of failure states with using TSAI-WU criterion. Effect of shear stress on a strength of fibre composite
12.FEM simulation of fibre composite layer delamination. Formulation of final projects.
13.Evaluation of final projects, credit.
E-learning texts
FSI-UMT-ucebni text-Mechanika kompozitů-121217.pdf 4.03 MB