Course detail
Selected Chapters of Metal-forming
FSI-HVTAcad. year: 2023/2024
The course provides information from the areas of strength design and dimensioning of metal-forming tools. The second part includes the theory and technology of metal-forming by high strain rates and energies. This specialized instruction includes, among other things, combined reforging, impact indentation, bulk renovation of machine parts and tools, high-rate die forging, explosive, electrohydraulic and electromagnetic metal forming. Also dealt with are cavity shooting, application of explosion energy, dynamic compacting of metallic and non-metallic powders. Modelling of high strain-rate processes is demonstrated. In the third part, students are confronted with the latest results of research.
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Entry knowledge
Rules for evaluation and completion of the course
The exam has a written and an oral part, based on a set of lot-drawn questions.
Attendance in lectures is recommended.
Attendance in exercises is compulsory.
The attendance to the seminar is regularly checked and the participation in the lesson is recorded.
Absence from laboratory exercises is compensated for via make-up topics of exercises and consultations.
Aims
Students majoring in metal forming will have an overview of the methods and selected calculation models for dimensioning metal-forming tools. They will be made familiar with the theory and technologies of high strain-rate metal-forming methods, as well as with the latest knowledge in the field.
Study aids
Prerequisites and corequisites
Basic literature
MEYERS, Marc A. Dynamic behavior of materials. New York: John Wiley and Sons., c1994. 668 p. ISBN 0-471-58262-X (EN)
MIELNIK, Edward M. Metalworking science and engineering. New York: McGraw-Hill, c1991, 976 p. McGraw-Hill. ISBN 00-704-1904-3. (EN)
ZHERNOKLETOV, Mikhail V.; GLUSHAK, Boris L.; ANDERSON, William W.; CHERNE, Frank J. and ZOCHER, Marvin A.. Material properties under intensive dynamic loading. New York: Springer, c2006. 422 p. ISBN 978-3-540-36844-1. (EN)
Recommended reading
Forejt, Milan. Proceedings of International Conference FORM´95,´97, ´98, 2000, 2002, 2004, 2006, 2008, 2010. (CS)
FOREJT, Milan; KREJČÍ, Jan a BUCHAR, Jaroslav. Teorie a technologie tváření vysokými deformačními rychlostmi a energiemi: Vybrané statě z tváření. 2. vyd. Brno: VUT FSI. 1994. Sylabus. FRVŠ (CS)
Elearning
Classification of course in study plans
Type of course unit
Lecture
Teacher / Lecturer
Syllabus
- Limit states of forming processes, limit diagrams of plastic deformation.
- Limit states of stress, conditions of free and minimum security.
- Analysis of damage to metal forming tools, problems of durability, service life and reliability.
- Analytical procedures in strength design of forming tools.
- Approximate stress-strain curves in the calculation models.
- Application of the FEM in analysis of large plastic deformation.
- Application of the FEM in the analysis of stress and deformation tools.
- Theory and technology of metal forming in conditions of real strain rates.
- Significant factors of high-speed deformation, define of relations.
- Influence of strain-rate to the deformation resistance, the critical impact speed.
- Evaluation of dynamic mechanical properties under impact – Taylor Anvil Test-TAT.
- Evaluation of dynamic mechanical properties of materials by the Split Hopkinson Pressure Bar Test-SHPBT.
- Review of forming methods using high-speed deformation.
Laboratory exercise
Teacher / Lecturer
Syllabus
- Limit states of stress during upsetting and extrusion, conditions of free and minimum security.
- Procedure in dimensioning complex dies by the MPIN method.
- Procedure in dimensioning complex dies by the MPIN method.
- Solving the contact problem by the FEM program, punch and die application, comparison with conventional solution.
- Solving the contact problem by the FEM program, punch and die application, comparison with conventional solution.
- Simulation of the forming process in real viscoplastic conditions.
- Evaluation of mechanical properties at high strain rates.
- Determining mechanical properties by the method of Hopkinson bar.
- Evaluation of dynamic mechanical properties under impact, using the Taylor Anvil Test.
- Structural analyses of experimental specimens and real products, explosion forming.
- Simulation of metal-forming processes in conditions of high strain-rates.
- Calculation of the dependence of stress function on deformation, temperature and strain rate.
- Conclusion of exercises, discussion of reports. Course-unit credit.
Elearning