Civil Engineering (English) | |||||
Bachelor | TR-NQF-HE: Level 6 | QF-EHEA: First Cycle | EQF-LLL: Level 6 |
Course Code: | GIT351 | ||||||||
Course Name: | Creative Print Making I | ||||||||
Course Semester: | Spring | ||||||||
Course Credits: |
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Language of instruction: | TR | ||||||||
Course Requisites: | |||||||||
Does the Course Require Work Experience?: | No | ||||||||
Type of course: | University Elective | ||||||||
Course Level: |
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Mode of Delivery: | Face to face | ||||||||
Course Coordinator : | Öğr.Gör. Belirsiz Personel | ||||||||
Course Lecturer(s): | |||||||||
Course Assistants: |
Course Objectives: | Learns basic original printing techniques based on graphics. |
Course Content: | A. Recognizes the original printing date and printing materials. B. Discovers different shapes and textures. C. Can edit different shapes and textures of different values. D. Can develop personal interpretation based on his own aesthetic taste. E. Can use different materials and create analytical solutions to create visual language. |
The students who have succeeded in this course;
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Week | Subject | Related Preparation |
1) | Introduction - Information about the course description, content and History of Original Printing | ... |
2) | Creating a collage | ... |
3) | Continue collage work | ... |
4) | Molding and carving the collage | ... |
5) | Carving process | ... |
6) | Printing stage | ... |
7) | Creating a sketch for visa file submission and original works | ... |
8) | Create a sketch | ... |
9) | Molding and engraving work | ... |
10) | Carving process | ... |
11) | Printing stage | ... |
12) | Experimental printing study, explanation on explanation and visuals | ... |
13) | Deneysel baskı çalışmaları | ... |
14) | Experimental printing studies | ... |
15) | final | ... |
16) | final | .... |
Course Notes / Textbooks: | • HAYTER, William; About Prints, 1962, Oxford University Press • COVEY, Silvia; Modern Printmaking: A Guide to Traditional and Digital Techniques, 2016, Watson-Guptill Publications Inc.,U.S. • HAYTER, William; New ways of gravure, 1966, Oxford University Press • VOLLMER, April; Japanese Woodblock Print Workshop: A Modern Guide to the Ancient Art of Mokuhanga, 2015, Watson-Guptill Publications Inc.,U.S. • Fick, Bill; Printmaking: A Complete Guide to Materials & Process, 2015, Laurence King Press |
References: | .... |
Learning Outcomes | 1 |
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Program Outcomes | ||||||||||
1) Adequate knowledge in mathematics, science and engineering subjects pertaining to the relevant discipline; ability to use theoretical and applied information in these areas to model and solve engineering problems. | ||||||||||
2) Ability to identify, formulate, and solve complex engineering problems; ability to select and apply proper analysis and modelling methods for this purpose. | ||||||||||
3) Ability to design a complex system, process, device or product under realistic constraints and conditions, in such a way so as to meet the desired result; ability to apply modern design methods for this purpose. (Realistic constraints and conditions may include factors such as economic and environmental issues, sustainability, manufacturability, ethics, health, safety issues, and social and political issues according to the nature of the design.) | ||||||||||
4) Ability to select and use modern techniques and tools needed for analyzing and solving complex problems encountered in engineering practice; ability to employ information technologies effectively. | ||||||||||
5) Ability to design and conduct experiments, gather data, analyze and interpret results for investigating complex engineering problems or discipline specific research questions. | ||||||||||
6) Ability to work efficiently in intra-disciplinary and multi-disciplinary teams; ability to work individually. | ||||||||||
7) Ability to communicate effectively, both orally and in writing; knowledge of a minimum of one foreign language; ability to write effective reports and comprehend written reports, prepare design and production reports, make effective presentations, and give and receive clear and intelligible instructions. | ||||||||||
8) Recognition of the need for lifelong learning; ability to access information, to follow developments in science and technology, and to continue to educate him/herself. | ||||||||||
9) Knowledge on behavior according ethical principles, professional and ethical responsibility and standards used in engineering practices. | ||||||||||
10) Knowledge about business life practices such as project management, risk management, and change management; awareness in entrepreneurship, innovation; knowledge about sustainable development. | ||||||||||
11) Knowledge about contemporary issues and the global and societal effects of engineering practices on health, environment, and safety; awareness of the legal consequences of engineering solutions. |
No Effect | 1 Lowest | 2 Low | 3 Average | 4 High | 5 Highest |
Program Outcomes | Level of Contribution | |
1) | Adequate knowledge in mathematics, science and engineering subjects pertaining to the relevant discipline; ability to use theoretical and applied information in these areas to model and solve engineering problems. | |
2) | Ability to identify, formulate, and solve complex engineering problems; ability to select and apply proper analysis and modelling methods for this purpose. | |
3) | Ability to design a complex system, process, device or product under realistic constraints and conditions, in such a way so as to meet the desired result; ability to apply modern design methods for this purpose. (Realistic constraints and conditions may include factors such as economic and environmental issues, sustainability, manufacturability, ethics, health, safety issues, and social and political issues according to the nature of the design.) | |
4) | Ability to select and use modern techniques and tools needed for analyzing and solving complex problems encountered in engineering practice; ability to employ information technologies effectively. | |
5) | Ability to design and conduct experiments, gather data, analyze and interpret results for investigating complex engineering problems or discipline specific research questions. | |
6) | Ability to work efficiently in intra-disciplinary and multi-disciplinary teams; ability to work individually. | |
7) | Ability to communicate effectively, both orally and in writing; knowledge of a minimum of one foreign language; ability to write effective reports and comprehend written reports, prepare design and production reports, make effective presentations, and give and receive clear and intelligible instructions. | |
8) | Recognition of the need for lifelong learning; ability to access information, to follow developments in science and technology, and to continue to educate him/herself. | |
9) | Knowledge on behavior according ethical principles, professional and ethical responsibility and standards used in engineering practices. | |
10) | Knowledge about business life practices such as project management, risk management, and change management; awareness in entrepreneurship, innovation; knowledge about sustainable development. | |
11) | Knowledge about contemporary issues and the global and societal effects of engineering practices on health, environment, and safety; awareness of the legal consequences of engineering solutions. |
Expression | |
Individual study and homework | |
Lesson | |
Lab | |
Homework | |
Application (Modelling, Design, Model, Simulation, Experiment etc.) |
Application | |
Presentation |
Semester Requirements | Number of Activities | Level of Contribution |
Midterms | 1 | % 40 |
Final | 1 | % 60 |
total | % 100 | |
PERCENTAGE OF SEMESTER WORK | % 40 | |
PERCENTAGE OF FINAL WORK | % 60 | |
total | % 100 |
Activities | Number of Activities | Duration (Hours) | Workload |
Course Hours | 5 | 0 | 0 |
Application | 2 | 0 | 0 |
Field Work | 5 | 4 | 20 |
Presentations / Seminar | 0 | 2 | 0 |
Homework Assignments | 2 | 4 | 8 |
Midterms | 0 | 5 | 0 |
Jury | 4 | 4 | 16 |
Final | 4 | 2 | 8 |
Total Workload | 52 |