| Course Name |
General Physics I
|
|
Code
|
Semester
|
Theory
(hour/week) |
Application/Lab
(hour/week) |
Local Credits
|
ECTS
|
|
PHYS 100
|
Fall
|
2
|
2
|
3
|
6
|
| Prerequisites |
None
|
|||||
| Course Language |
English
|
|||||
| Course Type |
Required
|
|||||
| Course Level |
First Cycle
|
|||||
| Mode of Delivery | - | |||||
| Teaching Methods and Techniques of the Course | DiscussionProblem SolvingApplication: Experiment / Laboratory / WorkshopLecture / Presentation | |||||
| National Occupation Classification | - | |||||
| Course Coordinator | ||||||
| Course Lecturer(s) | ||||||
| Assistant(s) | ||||||
| Course Objectives | The purpose of this course is to teach the fundamental laws of mechanics and introduce students to the basic applications of these laws. |
| Learning Outcomes |
The students who succeeded in this course;
|
| Course Description | In this course, we will discuss the subjects of motion along a straight line, motion in two and three dimensions, Newton’s laws, work and kinetic energy, potential energy and conservation of energy, momentum, collisions, dynamics of rotations, gravitation and periodic motion. |
| Related Sustainable Development Goals |
|
|
Core Courses | |
| Major Area Courses | ||
| Supportive Courses | ||
| Media and Management Skills Courses | ||
| Transferable Skill Courses |
| Week | Subjects | Related Preparation |
| 1 | Introduction, measurement, estimating | university physics volume 1, openstax.org, chapter 1 |
| 2 | Vectors | university physics volume 1, openstax.org, chapter 2 |
| 3 | Kinematics in one dimension | university physics volume 1, openstax.org, chapter 3 |
| 4 | Kinematics in two and three dimensions | university physics volume 1, openstax.org, chapter 4 |
| 5 | Newton’s laws | university physics volume 1, openstax.org, chapter 5 |
| 6 | Applications of Newton’s laws | university physics volume 1, openstax.org, chapter 6 |
| 7 | Gravitations | university physics volume 1, openstax.org, chapter 13 |
| 8 | Work and Kinetic energy | university physics volume 1, openstax.org, chapter 7 |
| 9 | Midterm Exam | - |
| 10 | Potential energy and conservation of energy - energy efficiency measures | university physics volume 1, openstax.org, chapter 8 |
| 11 | Linear momentum conservation | university physics volume 1, openstax.org, chapter 9 |
| 12 | Linear momentum and collisions | university physics volume 1, openstax.org, chapter 9 |
| 13 | Rotational motion | university physics volume 1, openstax.org, chapter 10 |
| 14 | Angular momentum | university physics volume 1, openstax.org, chapter 11 |
| 15 | Semester review | |
| 16 | Final exam |
| Course Notes/Textbooks |
Free University Physics Volume 1 Book for Download - OpenStax |
| Suggested Readings/Materials |
| Semester Activities | Number | Weigthing |
| Participation | ||
| Laboratory / Application |
1
|
25
|
| Field Work | ||
| Quizzes / Studio Critiques | ||
| Portfolio | ||
| Homework / Assignments | ||
| Presentation / Jury | ||
| Project | ||
| Seminar / Workshop | ||
| Oral Exams | ||
| Midterm |
1
|
30
|
| Final Exam |
1
|
45
|
| Total |
| Weighting of Semester Activities on the Final Grade |
3
|
55
|
| Weighting of End-of-Semester Activities on the Final Grade |
1
|
45
|
| Total |
| Semester Activities | Number | Duration (Hours) | Workload |
|---|---|---|---|
| Theoretical Course Hours (Including exam week: 16 x total hours) |
16
|
2
|
32
|
| Laboratory / Application Hours (Including exam week: '.16.' x total hours) |
16
|
2
|
32
|
| Study Hours Out of Class |
14
|
4
|
56
|
| Field Work |
0
|
||
| Quizzes / Studio Critiques |
0
|
||
| Portfolio |
0
|
||
| Homework / Assignments |
0
|
||
| Presentation / Jury |
-
|
0
|
|
| Project |
0
|
||
| Seminar / Workshop |
0
|
||
| Oral Exam |
0
|
||
| Midterms |
1
|
28
|
28
|
| Final Exam |
1
|
32
|
32
|
| Total |
180
|
|
#
|
Program Competencies/Outcomes |
* Contribution Level
|
|||||
|
1
|
2
|
3
|
4
|
5
|
|||
| 1 |
To have theoretical and practical knowledge that have been acquired in the area of Mathematics, Natural Sciences, and Aerospace Engineering. |
-
|
-
|
-
|
-
|
X
|
|
| 2 |
To be able to assess, analyze and solve problems by using the scientific methods in the area of Aerospace Engineering. |
-
|
-
|
-
|
-
|
-
|
|
| 3 |
To be able to design a complex system, process or product under realistic limitations and requirements by using modern design techniques. |
-
|
-
|
-
|
-
|
-
|
|
| 4 |
To be able to develop, select and use novel tools and techniques required in the area of Aerospace Engineering. |
-
|
-
|
-
|
-
|
-
|
|
| 5 |
To be able to design and conduct experiments, gather data, analyze and interpret results. |
-
|
-
|
-
|
-
|
-
|
|
| 6 |
To be able to develop communication skills, ad working ability in multidisciplinary teams. |
-
|
-
|
-
|
-
|
-
|
|
| 7 |
To be able to communicate effectively in verbal and written Turkish; writing and understanding reports, preparing design and production reports, making effective presentations, giving and receiving clear and understandable instructions. |
-
|
-
|
-
|
-
|
-
|
|
| 8 |
To have knowledge about global and social impact of engineering practices on health, environment, and safety; to have knowledge about contemporary issues as they pertain to engineering; to be aware of the legal ramifications of Aerospace Engineering solutions. |
-
|
-
|
-
|
-
|
-
|
|
| 9 |
To be aware of professional and ethical responsibility; to have knowledge about standards utilized in engineering applications. |
-
|
-
|
-
|
-
|
-
|
|
| 10 |
To have knowledge about industrial practices such as project management, risk management, and change management; to have awareness of entrepreneurship and innovation; to have knowledge about sustainable development. |
-
|
-
|
-
|
-
|
-
|
|
| 11 |
To be able to collect data in the area of Aerospace Engineering, and to be able to communicate with colleagues in a foreign language (‘‘European Language Portfolio Global Scale’’, Level B1). |
-
|
-
|
-
|
-
|
-
|
|
| 12 |
To be able to speak a second foreign language at a medium level of fluency efficiently. |
-
|
-
|
-
|
-
|
-
|
|
| 13 |
To recognize the need for lifelong learning; to be able to access information, to be able to stay current with developments in science and technology; to be able to relate the knowledge accumulated throughout the human history to Aerospace Engineering. |
-
|
-
|
-
|
-
|
-
|
|
*1 Lowest, 2 Low, 3 Average, 4 High, 5 Highest
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