Lecturer(s)
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Ponížil Petr, prof. RNDr. Ph.D.
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Course content
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- Kinematics of motion (velocity, acceleration) - Dynamics of motion (transformations of forces and moments) - Bioenergetics (work, heat, energy, entropy, chemical potentials) - Experimental methods of biomechanics (strain gauging, electromyography) - Biomechanics of the musculoskeletal system I (stress and strain) - Biomechanics of the musculoskeletal system II (methods of loading and deformation, solution of FFM stresses) - Biomechanics of the musculoskeletal system III (material properties of bone and cartilage) - Biomechanics of the musculoskeletal system IV (material properties of muscles and tendons) - Rheological tissue models - Biomechanics of the respiratory system - Biomechanics of the cardiovascular system - Orthotics and Prosthetics - Intelligent bioprosthetics - Bioacoustics, sound perception, ultrasound (effects of ultrasound, imaging methods)
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Learning activities and teaching methods
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- Preparation for course credit
- 120 hours per semester
- Preparation for course credit
- 120 hours per semester
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prerequisite |
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Knowledge |
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Knowledge of a basic physics course. |
Knowledge of a basic physics course. |
learning outcomes |
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summarise the basic concepts of mechanics |
summarise the basic concepts of mechanics |
describe the biomechanics of the musculoskeletal system |
describe the biomechanics of the musculoskeletal system |
explain rheological models of tissues |
explain rheological models of tissues |
classify rheological models of tissues |
classify rheological models of tissues |
describe the principles of orthotics and prosthetics |
describe the principles of orthotics and prosthetics |
Skills |
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analyse the relationships between mechanical quantities |
analyse the relationships between mechanical quantities |
apply rheological tissue models |
apply rheological tissue models |
measure the viscoelastic properties of the material |
measure the viscoelastic properties of the material |
design materials for prosthetic devices |
design materials for prosthetic devices |
create a model of tissue behaviour |
create a model of tissue behaviour |
teaching methods |
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Knowledge |
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Monologic (Exposition, lecture, briefing) |
Monologic (Exposition, lecture, briefing) |
Dialogic (Discussion, conversation, brainstorming) |
Dialogic (Discussion, conversation, brainstorming) |
Skills |
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Practice exercises |
Practice exercises |
assessment methods |
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Knowledge |
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Analysis of the student's performance |
Analysis of the student's performance |
Grade (Using a grade system) |
Grade (Using a grade system) |
Recommended literature
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Čapek Lukáš, Hájek Petr a kol. Biomechanika člověka. Praha, 2019. ISBN 978-80-271-0367-6.
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Konvičková, Svatava. Biomechanika člověka. Vyd. 2. Praha : Česká technika - nakladatelství ČVUT, 2006. ISBN 8001034240.
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Tracy L. Markley. Biomechanics of Your Body. 2022. ISBN 979-8801944609.
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