| Course Name |
Coastal and Harbor Engineering
|
|
Code
|
Semester
|
Theory
(hour/week) |
Application/Lab
(hour/week) |
Local Credits
|
ECTS
|
|
CIVE 450
|
FALL
|
3
|
0
|
3
|
5
|
| Prerequisites | CIVE 208 To get a grade of at least FD | |||||
| Course Language | English | |||||
| Course Type | ELECTIVE_COURSE | |||||
| Course Level | First Cycle | |||||
| Mode of Delivery | Face-To-Face | |||||
| Teaching Methods and Techniques of the Course |
Problem Solving Lecture / Presentation |
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| National Occupational Classification Code | - | |||||
| Course Coordinator |
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| Course Lecturer(s) |
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| Assistant(s) |
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| Course Objectives | The course covers the management and hydrodynamics of coastal zones, hydrodynamics of seabed, evaluation of environmental impacts, wave prediction and analysis, design of sea structures, port planning and design, seismic behavior of waves. | |||||||||||||||||||||||||||||||||||||||||||||||||||||
| Learning Outcomes |
The students who succeeded in this course;
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| Course Description | This course explains the concepts of coastal structures and their conservation to the students. It also gives detailed information about waveforms, effects on coastal structures and hydrodynamics. | |||||||||||||||||||||||||||||||||||||||||||||||||||||
| Related Sustainable Development Goals |
-
|
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|
Core Courses |
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| Major Area Courses |
X
|
|
| Supportive Courses |
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| Media and Managment Skills Courses |
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| Transferable Skill Courses |
|
| Week | Subjects | Required Materials | Learning Outcome |
| 1 | Coastal Engineering Main Topics: Coastal Environment, Coastal Definition, Behavior of Coastal Systems | Chapter 1: 1.1-1.3; Coastal System; Coastal Engineering; Ayşen Ergin (2015) | LO1 |
| 2 | Introduction to Wave Theory: Basic Concepts | Chapter 1: 1.4-1.6; Chapter 2: 2.1-2.3; Coastal Engineering; Ayşen Ergin (2015) | LO1 |
| 3 | Wave Theory: Wave Properties, Wave Propagation and Group Velocity | Chapter 3&4; Coastal Engineering; Ayşen Ergin (2015) | LO2 |
| 4 | Wave Theory: Wave Transformation, Wave Energy | Chapter 5&6&7&8&9; Coastal Engineering; Ayşen Ergin (2015) | LO2 |
| 5 | Wave Theory: Wave Transformation, Wave Energy | Chapter 5&6&7&8&9; Coastal Engineering; Ayşen Ergin (2015) | LO3 |
| 6 | Wave Climate | Chapter 10; Coastal Engineering; Ayşen Ergin (2015) | LO3 |
| 7 | Design Wave | Chapter 11; Coastal Engineering; Ayşen Ergin (2015) | LO3 |
| 8 | Midterm Exam | - | |
| 9 | Discharge System on the Coast | Chapter 12; Coastal Engineering; Ayşen Ergin (2015) | LO4 |
| 10 | Sediment Transport | Chapter 13; Coastal Engineering; Ayşen Ergin (2015) | LO4 |
| 11 | Sediment Budget | Chapter 13; Coastal Engineering; Ayşen Ergin (2015) | LO4 |
| 12 | Coastal Protection Structures: Planning | Chapter 14; Coastal Engineering; Ayşen Ergin (2015) | LO5 |
| 13 | Coastal Protection Structures: Design | Chapter 15&16; Coastal Engineering; Ayşen Ergin (2015) | LO5 |
| 14 | Field Studies: Sampling and Analysis | Chapter 17; Coastal Engineering; Ayşen Ergin (2015) | LO5 |
| 15 | Semester Review | - | |
| 16 | Final Exam | - |
| Course Notes/Textbooks | Ayşen Ergin (2015) Coastal Engineering METU Press Ankara. ISBN 978-9944-344-82-1 |
| Suggested Readings/Materials |
Yalçın Yüksel. Esin Özkan Çevik (2013). Kıyı Mühendisliği. Beta Yayımcılık. İstanbul. ISBN 10: 9944322520 M. Grant Gross (1995). Principles of Oceanography. Prentice Hall. USA. ISBN 10: 0023479817 Open University (1989). Waves Tides and Shallow Water Processes. 1st Edition. Butterworth-Heinemann USA. ISBN: 9781483292717 US Army Corps of Engineers (1984). Shore Protection Manual Vol.1-2. 4th Edition. USA. ISBN 10: 0894991760 |
| Semester Activities | Number | Weighting | LO1 | LO2 | LO3 | LO4 | LO5 |
| Quizzes / Studio Critiques | 1 | 10 | X | X | |||
| Homework / Assignments | 1 | 20 | X | X | X | ||
| Midterm | 1 | 30 | X | X | X | ||
| Final Exam | 1 | 40 | X | X | X | X | |
| Total | 4 | 100 |
| Semester Activities | Number | Duration (Hours) | Workload |
|---|---|---|---|
| Participation | - | - | - |
| Theoretical Course Hours | 16 | 3 | 48 |
| Laboratory / Application Hours | - | - | - |
| Study Hours Out of Class | 14 | 2 | 28 |
| Field Work | - | - | - |
| Quizzes / Studio Critiques | 1 | 5 | 5 |
| Portfolio | - | - | - |
| Homework / Assignments | 1 | 5 | 5 |
| Presentation / Jury | - | - | - |
| Project | - | - | - |
| Seminar / Workshop | - | - | - |
| Oral Exams | - | - | - |
| Midterms | 1 | 30 | 30 |
| Final Exam | 1 | 34 | 34 |
| Total | 150 |
| # | PC Sub | Program Competencies/Outcomes | * Contribution Level | ||||
| 1 | 2 | 3 | 4 | 5 | |||
| 1 |
Engineering Knowledge: Knowledge of mathematics, science, basic engineering, computation, and related engineering discipline-specific topics; the ability to apply this knowledge to solve complex engineering problems. |
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| 1 |
Mathematics |
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| 2 |
Science |
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| 3 |
Basic Engineering |
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| 4 |
Computation |
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| 5 |
Related engineering discipline-specific topics |
LO1 | |||||
| 6 |
The ability to apply this knowledge to solve complex engineering problems |
LO5 | |||||
| 2 |
Problem Analysis: Ability to identify, formulate and analyze complex engineering problems using basic knowledge of science, mathematics and engineering, and considering the UN Sustainable Development Goals relevant to the problem being addressed. |
LO2 LO3 LO4 | |||||
| 3 |
Engineering Design: The ability to devise creative solutions to complex engineering problems; the ability to design complex systems, processes, devices or products to meet current and future needs, considering realistic constraints and conditions. |
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| 1 |
Ability to design creative solutions to complex engineering problems |
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| 2 |
Ability to design complex systems, processes, devices or products to meet current and future needs, considering realistic constraints and conditions |
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| 4 |
Use of Techniques and Tools: Ability to select and use appropriate techniques, resources, and modern engineering and computing tools, including estimation and modeling, for the analysis and solution of complex engineering problems, while recognizing their limitations. |
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| 5 |
Research and Investigation: Ability to use research methods to investigate complex engineering problems, including literature research, designing and conducting experiments, collecting data, and analyzing and interpreting results. |
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| 1 |
Literature research for the study of complex engineering problems |
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| 2 |
Designing experiments |
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| 3 |
Ability to use research methods, including conducting experiments, collecting data. analyzing and interpreting results |
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| 6 |
Global Impact of Engineering Practices: Knowledge of the impacts of engineering practices on society, health and safety, economy, sustainability, and the environment, within the context of the UN Sustainable Development Goals; awareness of the legal implications of engineering solutions. |
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| 1 |
Knowledge of the impacts of engineering practices on society, health and safety, economy, sustainability, and the environment, within the context of the UN Sustainable Development Goals |
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| 2 |
Awareness of the legal implications of engineering solutions |
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| 7 |
Ethical Behavior: Acting in accordance with the principles of the engineering profession, knowledge about ethical responsibility; awareness of being impartial, without discrimination, and being inclusive of diversity. |
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| 1 |
Acting in accordance with the principles of the engineering profession, knowledge about ethical responsibility ethical responsibility |
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| 2 |
Awareness of being impartial and inclusive of diversity, without discriminating on any subject |
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| 8 |
Individual and Teamwork: Ability to work effectively, individually and as a team member or leader on interdisciplinary and multidisciplinary teams (face-to-face, remote or hybrid). |
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| 1 |
Ability to work individually and within the discipline |
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| 2 |
Ability to work effectively as a team member or leader in multidisciplinary teams (face-to-face, remote or hybrid) |
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| 9 |
Verbal and Written Communication: Taking into account the various differences of the target audience (such as education, language, profession) on technical issues. |
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| 1 |
Ability to communicate verbally |
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| 2 |
Ability to communicate effectively in writing |
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| 10 |
Project Management: Knowledge of business practices such as project management and economic feasibility analysis; awareness of entrepreneurship and innovation. |
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| 1 |
Knowledge of business practices such as project management and economic feasibility analysis |
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| 2 |
Awareness of entrepreneurship and innovation |
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| 11 |
Lifelong Learning: Lifelong learning skills that include being able to learn independently and continuously, adapting to new and developing technologies, and thinking questioningly about technological changes. |
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*1 Lowest, 2 Low, 3 Average, 4 High, 5 Highest
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