Veidlapa Nr. M-3 (8)
Study Course Description

Biomechanics

Main Study Course Information

Course Code
REK_277
Branch of Science
Biomechanics; Medical engineering
ECTS
4.00
Target Audience
Rehabilitation
LQF
Level 6
Study Type And Form
Full-Time

Study Course Implementer

Course Supervisor
Structure Unit Manager
Structural Unit
Department of Rehabilitation
Contacts

Riga, Anninmuizas boulevard 26a, rk@rsu.lv, +371 20271291

About Study Course

Objective

To promote knowledge of key issues in medical biomechanics. To promote understanding of the role of biomechanical laws in the diagnostic principles of human movement and in the diagnosis of abnormal movement patterns. To learn the types of biomechanical problems covered in the course and how to solve them using the knowledge acquired. To learn the types of biomechanics problems covered in the course and the methodology for solving them.

Preliminary Knowledge

Human anatomy. Knowledge of physics and mathematics.

Learning Outcomes

Knowledge

1.Upon successful completion of the course, students identify the main biomechanical properties of soft and hard biological tissues; define the behaviour of biological tissues when subjected to loading. Calculate the main mechanical parameters of biological tissues; distinguish between passive and active structures of the human musculoskeletal system. Analyse the biomechanics of physiologically normal movement; distinguish between the physiology and pathology of gait. Identifies biomechanical problems in prosthetics and orthotics.

Skills

1.Successful completion of the course will result in students being able to locate scientific research in the field of biomechanics. They can calculate the main parameters of biomechanics: maximum stress, deformation and elastic modulus of biomaterials, forces and support reaction forces in different joints. Be able to analyse the movement of one or more segments of the human body and their interaction during physiologically normal and abnormal gait.

Competences

1.As a result of successful completion of the course, students analyse and justify normal and abnormal variations in biomechanical parameters during gait.

Assessment

Individual work

Title
% from total grade
Grade
1.

Individual work

-
-
Practical work: Analysis of gait for one case. Execution of the algorithm in the branching scenario, interactive lecture and 3 interactive video exercises. Preparation for the mid-term test and the final exam. Preparation for the oral questions at the beginning of the lectures on the topics covered in the previous lectures. In order to evaluate the quality of the study course as a whole, the student must fill out the study course evaluation questionnaire on the Student Portal.

Examination

Title
% from total grade
Grade
1.

Examination

-
-
Cumulative grade in the first semester (50%): 1) attendance of all lectures (10%); 2) independent practical work: analysis of one case study (20%); 3) completion of the algorithm for the analysis of an observation in a branching scenario, the interactive lecture and the 3 interactive video assignments, obtaining the maximum score (10%); 4) midterm: multiple-choice test (10%). Second semester exam (50%): 40 multiple-choice questions on all topics covered in the course. Where half of the questions are related to the assessment of biomechanical parameters during the course.

Study Course Theme Plan

FULL-TIME
Part 1
  1. Lecture

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Biomechanics. Directional and rotational movement. Human skeleton. Levers and connections. Equilibrium conditions of the human body.
  1. Lecture

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Biomechanics. Directional and rotational movement. Human skeleton. Levers and connections. Equilibrium conditions of the human body.
  1. Lecture

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Biomechanics. Directional and rotational movement. Human skeleton. Levers and connections. Equilibrium conditions of the human body.
  1. Lecture

Modality
Location
Contact hours
On site
Other
2

Topics

-
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Theory of elasticity. Deformation. Viscose elastic structures, their types and properties. Mechanical fluctuations. Basics of Human tissue biomechanics. Biomechanics of movement in the spine and extremities.
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Theory of elasticity. Deformation. Viscose elastic structures, their types and properties. Mechanical fluctuations. Basics of Human tissue biomechanics. Biomechanics of movement in the spine and extremities.
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Theory of elasticity. Deformation. Viscose elastic structures, their types and properties. Mechanical fluctuations. Basics of Human tissue biomechanics. Biomechanics of movement in the spine and extremities.
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Theory of elasticity. Deformation. Viscose elastic structures, their types and properties. Mechanical fluctuations. Basics of Human tissue biomechanics. Biomechanics of movement in the spine and extremities.
  1. Lecture

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Motion research methods. Analysis of human progress.
  1. Lecture

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Motion research methods. Analysis of human progress.
Total ECTS (Creditpoints):
2.00
Contact hours:
20 Academic Hours
Final Examination:
Test (Semester)
Part 2
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Motion research methods. Analysis of human progress.
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Motion research methods. Analysis of human progress.
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Motion research methods. Analysis of human progress.
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Motion research methods. Analysis of human progress.
  1. Lecture

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Role of biomechanics in prosthetic manufacturing field.
  1. Lecture

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Role of biomechanics in prosthetic manufacturing field.
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Changes in gait due to lower limb prosthetics. Prosthetics component biomechanics. Biomechanics principles of upper limb orthoses. Problems in prosthetic manufacturing.
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Changes in gait due to lower limb prosthetics. Prosthetics component biomechanics. Biomechanics principles of upper limb orthoses. Problems in prosthetic manufacturing.
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Changes in gait due to lower limb prosthetics. Prosthetics component biomechanics. Biomechanics principles of upper limb orthoses. Problems in prosthetic manufacturing.
  1. Class/Seminar

Modality
Location
Contact hours
On site
Auditorium
2

Topics

Changes in gait due to lower limb prosthetics. Prosthetics component biomechanics. Biomechanics principles of upper limb orthoses. Problems in prosthetic manufacturing.
Total ECTS (Creditpoints):
2.00
Contact hours:
20 Academic Hours
Final Examination:
Exam (Written)

Bibliography

Required Reading

1.

J. Hamill, K.M. Knutzen. Biomechanical Basis of Human Movement. Lippincott Williams & Wilkins, 2022, 491 p.

2.

Nihat Ozkaya, Margareta Nordin. Fundamentals of Biomechanics. Equilibrium, Motion, and Deformation. Springer-Verlag, 2012, 393 p.

3.

Duane Knudson. Fundamental of Biomechanics. Springer, 2021, 298 p.

4.

Pitkin, Mark R. Biomechanics of Lower Limb Prosthetics. 2010, Springer. (akceptējams izdevums)

5.

Lower-limb prosthetics and orthotics : clinical concepts / Joan E. Edelstein, Alex Moroz, SLACK Incorporated, 2011. (akceptējams izdevums)

6.

Atlas of Orthoses and Assistive Devices, 5th ed. Joseph B. Webster, Douglas P. Murphy, 2019, Elsevier

Additional Reading

1.

Foot and ankle motion analysis : clinical treatment and technology / edited by Gerald F. Harris, Peter A Smith, Richard M. Marks, CRC Press/Taylor & Francis Group, 2019.

2.

Rossmann J.S., Dym C.L. Introduction to Engineering Mechanics. CRC Press, 2009, 472 p.

3.

Biomaterial Science. An Introduction to Material in Medicine. Ed. by B.D. Ratner and A.S. Hoffman, Academic Press, 2012, 484 p.

4.

Biomechanics. Principles and Applications. Ed. by D.J. Schneck and J.D. Bronzino, CRC Press, NY, 2008, 393 p.

5.

Routledge Handbook of Biomechanics and Human Movement Science. Edited by Youlian Hong and Roger Bartlett. Taylor and Francis Group, 2010.

6.

Biomechanics of the musculo-skeletal system, 3rd ed. / ed. by Benno M. Nigg, Walter Herzog, John Wiley & Sons, 2007.