Lecturer(s)
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Králová Libuše, Ing. Ph.D.
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Benda Luboš, doc. Ing. Ph.D.
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Suchánek Ondřej, Ing. Ph.D.
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Course content
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1. Physical principles of metal cutting 2. Mechanics of chip formation 3. Mechanics of chip formation, methods of experimental process study 4. Dynamic phenomena in metal cutting 5. Cutting forces and methods of their estimation 6. Chatter in machining 7. Heat phenomena in machining 8. Tool wear 9. Tool life 10. Machinability of metals, coolants 11. Process optimalization 12. Process optimalization, metal removal rate 13. Process optimalization, development directions in metal cutting (HSC)
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Learning activities and teaching methods
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Lecture supplemented with a discussion, Lecture with a video analysis, Multimedia supported teaching, Laboratory work, Skills demonstration, Task-based study method, Lecture, Practicum
- Preparation for formative assessments (2-20)
- 20 hours per semester
- Preparation for comprehensive test (10-40)
- 30 hours per semester
- Practical training (number of hours)
- 5 hours per semester
- Contact hours
- 60 hours per semester
- Preparation for an examination (30-60)
- 60 hours per semester
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prerequisite |
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Knowledge |
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To describe the basic conventional and unconventional machining methods. |
To describe the fundamentals of machining of metallic materials and the cutting tools. |
To describe the tool geometry and cutting process parameters. |
To describe the basics of the cutting process of machining. |
To describe the basics of cutting machining optimization. |
Skills |
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To apply conventional and unconventional machining methods to a defined area of required precision and quality of machined surface. |
To carry out the optimization of cutting conditions (cutting speed) when turning according to the basic criteria. |
Competences |
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N/A |
learning outcomes |
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Knowledge |
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To describe the physical base of the cutting process. |
To describe the mechanics of the chip formation. |
To describe dynamic phenomena and stability in the cutting process. |
To describe the thermal effects of the cutting process. |
To describe the cutting edge of the cutting tool and its measurements according to the ISO standard. |
To describe cutting edge durability, cutting fluid environment, cutting materials and their influence on the cutting process. |
To describe the machinability of metallic materials and the ways of its specification. |
To describe optimization of the cutting process, optimization criteria and ways of optimizing cutting conditions. |
Skills |
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To apply knowledge in the field of cutting process, accompanying phenomena and stability and machining optimization. |
Competences |
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N/A |
N/A |
teaching methods |
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Knowledge |
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Lecture |
Lecture with a video analysis |
Lecture supplemented with a discussion |
Practicum |
Laboratory work |
Multimedia supported teaching |
Task-based study method |
Skills demonstration |
Skills |
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Lecture |
Lecture with a video analysis |
Lecture supplemented with a discussion |
Practicum |
Laboratory work |
Task-based study method |
Skills demonstration |
Multimedia supported teaching |
Competences |
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Practicum |
Task-based study method |
assessment methods |
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Knowledge |
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Combined exam |
Test |
Skills demonstration during practicum |
Individual presentation at a seminar |
Skills |
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Combined exam |
Test |
Skills demonstration during practicum |
Individual presentation at a seminar |
Competences |
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Combined exam |
Skills demonstration during practicum |
Recommended literature
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AB Sandvik Coromant. Technical Guide. Sweden, 2010.
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Kráľ, Ján. Technologické a informačné činitele obrábania. Vyd. 1. Košice : Technická univerzita, Strojnícka fakulta, Centrum informatiky, 2009. ISBN 978-80-553-0381-9.
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Liemert, Gaston. Obrábění. Vyd. 1. Praha : SNTL, 1974.
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Mádl, Jan; Schubert, Vilém. Základy experimentálních metod a optimalizace v teorii obrábění : Určeno pro posl. fak. strojní. [2.], přeprac. vyd. Praha : ČVUT, 1974.
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Přikryl, Zdeněk; Musílková, Rosa. Teorie obrábění. Vyd. 1. Praha : SNTL, 1971.
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