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SECTION I: GENERAL INFORMATION ABOUT THE COURSE

Course Code Course Name Year Semester Theoretical Practical Credit ECTS
60533TAEOZ-PHY3031 Physics I 1 Fall 2 2 3 5
Course Type : Compulsory
Cycle: Bachelor      TQF-HE:6. Master`s Degree      QF-EHEA:First Cycle      EQF-LLL:6. Master`s Degree
Language of Instruction: English
Prerequisities and Co-requisities: N/A
Mode of Delivery: Face to face
Name of Coordinator: Dr. Öğr. Üyesi ERGUN ERAY AKKAYA
Dersin Öğretim Eleman(lar)ı: Dr. Öğr. Üyesi İNAL BEGÜM TURNA DEMİREL
Dr. Öğr. Üyesi ERGUN ERAY AKKAYA
Dersin Kategorisi: Field Specific

SECTION II: INTRODUCTION TO THE COURSE

Course Objectives & Content

Course Objectives: Objective of this course is to introduce to the basic concept of physics, to develop skills formulating certain physical quantities in areas of the mechanics and solving the problems. To illustrate the necessity and importance of physics for other branches of natural sciences and engineering through applications in real life, and industry and technology.
This course will partly follow the so-called Project-Based Learning (PBL). Each student will do two projects, each on a different topic. Students will be assigned projects from a list of projects. Projects will be done by a group of two students.
Course Content: This course employs the project-based learning approach. In this respect aside from the conventional content the course has a project-based learning component. The project based-learning component aims realising one or more projects designed for learning purposes involving the development of certain intermediary and final deliverables in a step-by-step mannerby the students individually or in project teams. The evaluation of the project-based learning component involves grading the project deliverables and the project works by the instructor and/or a jury.

Course Learning Outcomes (CLOs)

Course Learning Outcomes (CLOs) are those describing the knowledge, skills and competencies that students are expected to achieve upon successful completion of the course. In this context, Course Learning Outcomes defined for this course unit are as follows:
Knowledge (Described as Theoritical and/or Factual Knowledge.)
  1) Understand motion of bodies in a system by the Newton's Motion Laws, work, work-energy, conservation of energy and translational motion of the bodies in the systems.
  2) Know the linear momentum and conservation of the momentum.
  3) Determine circular motion of rigid object about fixed axis.
Skills (Describe as Cognitive and/or Practical Skills.)
  1) Make vectoral processing and solve problems related to one- and two- dimensional motions.
  2) Calculate mass center and inertia moment, define motion of the rotating bodies about a certain axis.
Competences (Described as "Ability of the learner to apply knowledge and skills autonomously with responsibility", "Learning to learn"," Communication and social" and "Field specific" competences.)

Weekly Course Schedule

Week Subject
Materials Sharing *
Related Preparation Further Study
1) Introduction and Project I Kickoff: Project Topics Announcement Reading assignment Preparatory study Project work Homework assignment
2) Assignment of projects. Physics and Measurement Reading assignment Preparatory study Project work Homework assignment
3) Vectors Reading assignment Preparatory study Project work Homework assignment
4) One dimensional motion Reading assignment Preparatory study Project work Homework assignment
5) Two dimensional motion Reading assignment Preparatory study Project work Homework assignment
6) Newton’s Laws of Motion Reading assignment Preparatory study Project work Homework assignment
7) Submission of the first delivery of the project Reading assignment Preparatory study Project work Homework assignment
8) Midterm
9) Circular Motion and Other Application of Newton’s Laws Reading assignment Preparatory study Project work Homework assignment
10) Work and Kinetic Energy Reading assignment Preparatory study Project work Homework assignment
11) Potantial energy and conservation of energy Reading assignment Preparatory study Project work Homework assignment
12) Submission of the first delivery of the project Reading assignment Preparatory study Project work Homework assignment
13) Heat and Thermodynamics Reading assignment Preparatory study Project work Homework assignment
14) Heat and thermodynamic Reading assignment Preparatory study Project work Homework assignment
15) Submission of the final delivery of the project and presentation Reading assignment Preparatory study Project work Homework assignment
*These fields provides students with course materials for their pre- and further study before and after the course delivered.

Recommended or Required Reading & Other Learning Resources/Tools

Course Notes / Textbooks: Fen ve Mühendislik İçin FİZİK I , A. Raymond SERWAY, J. Robert BEICHNER, Palmiye Yayıncılık, Ankara 2002.

Physics for Scientist and Engineers, I, A. Raymond Serway, John W. Jewett, International Edition, 9th Edition, Brooks/Cole Cengace learning.
References: Temel Fizik -I, P.M. Fishbane, S. Gasiorowicz, S.T. Thornton (2003). Çeviri (C.Yalçın) Arkadaş Yayınevi, Ankara
Üniversite Fiziği , H. D. Young and R. A. Freedman (12. baskı) Pearson/Addison Wesley.
Fen Bilimcileri ve Mühendisler İçin FİZİK, D.C.GIANCOLI Çeviri Akademi Yayıncılık, 2009

Fundamentals of Physics, Fundamentals of Physics: Mechanics, Relativity, and Thermodynamics, R. Shankar, The Open Yale Courses Series.
University Physics, H. D. Young and R. A. Freedman, Pearson/Addison Wesley.
Fundamentals of Physics 9th Ed. I David Halliday, Robert Resnick, Jearl Walker

SECTION III: RELATIONSHIP BETWEEN COURSE UNIT AND COURSE LEARNING OUTCOMES (CLOs)

(The matrix below shows how the course learning outcomes (CLOs) associates with programme learning outcomes (both KPLOs & SPLOs) and, if exist, the level of quantitative contribution to them.)

Relationship Between CLOs & PLOs

(KPLOs and SPLOs are the abbreviations for Key & Sub- Programme Learning Outcomes, respectively. )
CLOs/PLOs KPLO 1 KPLO 2 KPLO 3 KPLO 4 KPLO 5
1 1 2 3 4 1 2 3 4 5 6 7 8 9 10 1 2 3 4 1 2 3 4 5 6 7 8 9 10 11 12
CLO1
CLO2
CLO3
CLO4
CLO5

Level of Contribution of the Course to PLOs

No Effect 1 Lowest 2 Low 3 Average 4 High 5 Highest
           
Programme Learning Outcomes Contribution Level (from 1 to 5)
1) Uses and applies theoretical and applied sciences in the field of basic science subjects for the solution of computer engineering problems. 5
2) Analyzes computer engineering applications, designs and develops models to meet specific requirements under realistic constraints and conditions. For this purpose, selects and uses appropriate methods, tools and technologies. 4
3) Owns the competencies required by the constantly developing field of computer engineering and the global competitive environment.
4) Applies the theoretical knowledge in business life during a semester.
5) S/he acquires the competencies that develop by the expectations of business world and the society defined as the institutional outcomes of our university on the advanced level in relation with his/her field. 3

SECTION IV: TEACHING-LEARNING & ASSESMENT-EVALUATION METHODS OF THE COURSE

Teaching & Learning Methods of the Course

(All teaching and learning methods used at the university are managed systematically. Upon proposals of the programme units, they are assessed by the relevant academic boards and, if found appropriate, they are included among the university list. Programmes, then, choose the appropriate methods in line with their programme design from this list. Likewise, appropriate methods to be used for the course units can be chosen among those defined for the programme.)
Teaching and Learning Methods defined at the Programme Level
Teaching and Learning Methods Defined for the Course
Lectures
Discussion
Case Study
Problem Solving
Demonstration
Views
Laboratory
Reading
Homework
Project Preparation
Thesis Preparation
Peer Education
Seminar
Technical Visit
Course Conference
Brain Storming
Questions Answers
Individual and Group Work
Role Playing-Animation-Improvisation
Active Participation in Class

Assessment & Evaluation Methods of the Course

(All assessment and evaluation methods used at the university are managed systematically. Upon proposals of the programme units, they are assessed by the relevant academic boards and, if found appropriate, they are included among the university list. Programmes, then, choose the appropriate methods in line with their programme design from this list. Likewise, appropriate methods to be used for the course units can be chosen among those defined for the programme.)
Aassessment and evaluation Methods defined at the Programme Level
Assessment and Evaluation Methods defined for the Course
Midterm
Presentation
Final Exam
Quiz
Report Evaluation
Homework Evaluation
Oral Exam
Thesis Defense
Jury Evaluation
Practice Exam
Evaluation of Implementation Training in the Workplace
Active Participation in Class
Participation in Discussions

Relationship Between CLOs & Teaching-Learning, Assesment-Evaluation Methods of the Course

(The matrix below shows the teaching-learning and assessment-evaluation methods designated for the course unit in relation to the course learning outcomes.)
LEARNING & TEACHING METHODS
COURSE LEARNING OUTCOMES
ASSESMENT & EVALUATION METHODS
CLO1 CLO2 CLO3 CLO4 CLO5
-Lectures -Midterm
-Discussion -Presentation
-Case Study -Final Exam
-Problem Solving -Quiz
-Demonstration -Report Evaluation
-Views -Homework Evaluation
-Laboratory -Oral Exam
-Reading -Thesis Defense
-Homework -Jury Evaluation
-Project Preparation -Practice Exam
-Thesis Preparation -Evaluation of Implementation Training in the Workplace
-Peer Education -Active Participation in Class
-Seminar - Participation in Discussions
-Technical Visit
-Course Conference
-Brain Storming
-Questions Answers
-Individual and Group Work
-Role Playing-Animation-Improvisation
-Active Participation in Class

Contribution of Assesment & Evalution Activities to Final Grade of the Course

Measurement and Evaluation Methods # of practice per semester Level of Contribution
Quizzes 2 % 10.00
Project 2 % 20.00
Midterms 1 % 20.00
Semester Final Exam 1 % 50.00
Total % 100
PERCENTAGE OF SEMESTER WORK % 50
PERCENTAGE OF FINAL WORK % 50
Total % 100

SECTION V: WORKLOAD & ECTS CREDITS ALLOCATED FOR THE COURSE

WORKLOAD OF TEACHING & LEARNING ACTIVITIES
Teaching & Learning Activities # of Activities per semester Duration (hour) Total Workload
Course 14 2 28
Laboratory 0 0 0
Application 14 2 28
Special Course Internship (Work Placement) 0 0 0
Field Work 0 0 0
Study Hours Out of Class 14 2 28
Presentations / Seminar 4 1 4
Project 4 5 20
Homework Assignments 0 0 0
Total Workload of Teaching & Learning Activities - - 108
WORKLOAD OF ASSESMENT & EVALUATION ACTIVITIES
Assesment & Evaluation Activities # of Activities per semester Duration (hour) Total Workload
Quizzes 3 2 6
Midterms 1 6 6
Semester Final Exam 1 12 12
Total Workload of Assesment & Evaluation Activities - - 24
TOTAL WORKLOAD (Teaching & Learning + Assesment & Evaluation Activities) 132
ECTS CREDITS OF THE COURSE (Total Workload/25.5 h) 5