| INDUSTRIAL ENGINEERING | |||||
|---|---|---|---|---|---|
| Qualification Awarded | Length of Program | Toplam Kredi (AKTS) | Mode of Study | Level of Qualification & Field of Study | |
| Bachelor's (First Cycle) Degree | 4 | 240 | FULL TIME |
TQF, TQF-HE, EQF-LLL, ISCED (2011):Level 6 QF-EHEA:First Cycle TQF-HE, ISCED (1997-2013): 52 |
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| Course Code: | IE476 | ||||||||
| Course Name: | PROJECT MANAGEMENT | ||||||||
| Course Semester: | Fall | ||||||||
| Course Credits: |
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| Language of instruction: | English | ||||||||
| Condition of Course: | |||||||||
| Does the Course Work Experience Require?: | No | ||||||||
| Course Type : | Bölüm/Program Seçmeli | ||||||||
| Course Level: |
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| Mode of Delivery: | Face to face | ||||||||
| Name of Coordinator: | Prof. Dr. Zeki AYAĞ | ||||||||
| Course Lecturer(s): | Prof.Dr. Zeki Ayağ | ||||||||
| Course Assistants: |
| Course Objectives: | To teach planning and control techniques for project success, addressing both technical and social dimensions, and to learn the concepts and methods that play a role in project success. |
| Course Content: | This course discusses the factors necessary for successful project management. Topics include project management concepts, requirement definition, project manager, teams, project organization, project communication, project planning, scheduling, control, and associated costs. Software tools for project management will be an integrated part of the course. |
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The students who have succeeded in this course;
1) The ability to conduct analyses to ensure projects are completed on time and within the desired cost is imparted to students, 2) Projeyi planlamak ve bütçelemek, projenin zamanlanması ve kaynak yönetimi, 3) Evaluate and close the project. 4) Experiencing real life examples |
| Week | Subject | Related Preparation |
| 1) | Project Management Concepts | |
| 2) | Determination of Requirements | |
| 3) | Proposed Solutions | |
| 4) | IT Projects | |
| 5) | Planning | |
| 6) | Scheduling | |
| 7) | Program Control | |
| 8) | Midterm Exam | |
| 9) | Resource Allocation | |
| 10) | Cost Planning and Performance Measurement | |
| 11) | Project Manager and Team Building | |
| 12) | Project Communication and Documentation | |
| 13) | Types of Project Organization | |
| 14) | Project Presentations |
| Course Notes / Textbooks: | Project Management A Managerial Approach, Jack R. Meredith- Samuel J.Mantel, Jr. 2.Successful Project Management, Jack Gido- James P.Clements 3. Gray, C., & Larson, E. (2003). Project Management: The managerial approach. (2 nd Ed.) McGraw-Hill Irwin. Boston, Ma. With CD-ROM. |
| References: |
| Course Learning Outcomes | 1 |
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| Program Outcomes | |||||||||||
| 1) Engineering Knowledge: Knowledge of mathematics, science, basic engineering, computing and Industrial Engineering; ability to apply this knowledge in solving complex engineering problems. | |||||||||||
| 2) Problem Analysis: Ability to identify, formulate and analyse complex engineering problems using knowledge of basic science, mathematics and engineering, and considering the UN Sustainable Development Goals relevant to the problem at hand. | |||||||||||
| 3) Engineering Design: Ability to design creative solutions to complex engineering problems; the ability to design complex systems, processes, devices or products to meet current and future requirements under realistic constraints and conditions. | |||||||||||
| 4) Use of Techniques and Tools: Ability to select and use appropriate techniques, resources and modern engineering and information technology tools, including estimation and modelling, for the analysis and solution of complex engineering problems, recognising their limitations. | |||||||||||
| 5) Research and Investigation: Ability to use research methods, including literature review, designing and conducting experiments, collecting data, analysing and interpreting results, to investigate complex engineering problems. | |||||||||||
| 6) Global Impact of Engineering Practices: Knowledge of the impact of engineering practices on society, health and safety, economy, sustainability and environment in the context of the UN Sustainable Development Goals; awareness of the legal implications of engineering solutions. | |||||||||||
| 7) Engineering Ethics: Knowledge about ethical responsibility, acting in accordance with engineering professional principles; awareness of acting impartially, without discrimination, and being inclusive of diversity. | |||||||||||
| 8) Individual and Team Work: Ability to work effectively as an individual and as a team member or leader in disciplinary and multidisciplinary teams (face-to-face, distance or mixed). | |||||||||||
| 9) Oral and Written Communication: Ability to communicate effectively in oral and written form on technical subjects, taking into account the various differences (education, language, profession, etc.) of the target audience. | |||||||||||
| 10) Project Management: Knowledge of business life practices such as project management and economic feasibility analysis; awareness of entrepreneurship and innovation. | |||||||||||
| 11) Lifelong Learning: Ability to learn independently and continuously, to adapt to new and emerging technologies and to think inquisitively about technological changes. | |||||||||||
| No Effect | 1 Lowest | 2 Average | 3 Highest |
| Program Outcomes | Level of Contribution | |
| 1) | Engineering Knowledge: Knowledge of mathematics, science, basic engineering, computing and Industrial Engineering; ability to apply this knowledge in solving complex engineering problems. | |
| 2) | Problem Analysis: Ability to identify, formulate and analyse complex engineering problems using knowledge of basic science, mathematics and engineering, and considering the UN Sustainable Development Goals relevant to the problem at hand. | |
| 3) | Engineering Design: Ability to design creative solutions to complex engineering problems; the ability to design complex systems, processes, devices or products to meet current and future requirements under realistic constraints and conditions. | |
| 4) | Use of Techniques and Tools: Ability to select and use appropriate techniques, resources and modern engineering and information technology tools, including estimation and modelling, for the analysis and solution of complex engineering problems, recognising their limitations. | |
| 5) | Research and Investigation: Ability to use research methods, including literature review, designing and conducting experiments, collecting data, analysing and interpreting results, to investigate complex engineering problems. | |
| 6) | Global Impact of Engineering Practices: Knowledge of the impact of engineering practices on society, health and safety, economy, sustainability and environment in the context of the UN Sustainable Development Goals; awareness of the legal implications of engineering solutions. | |
| 7) | Engineering Ethics: Knowledge about ethical responsibility, acting in accordance with engineering professional principles; awareness of acting impartially, without discrimination, and being inclusive of diversity. | |
| 8) | Individual and Team Work: Ability to work effectively as an individual and as a team member or leader in disciplinary and multidisciplinary teams (face-to-face, distance or mixed). | |
| 9) | Oral and Written Communication: Ability to communicate effectively in oral and written form on technical subjects, taking into account the various differences (education, language, profession, etc.) of the target audience. | |
| 10) | Project Management: Knowledge of business life practices such as project management and economic feasibility analysis; awareness of entrepreneurship and innovation. | |
| 11) | Lifelong Learning: Ability to learn independently and continuously, to adapt to new and emerging technologies and to think inquisitively about technological changes. |
| Semester Requirements | Number of Activities | Level of Contribution |
| Project | 1 | % 40 |
| Semester Final Exam | 1 | % 60 |
| Total | % 100 | |
| PERCENTAGE OF SEMESTER WORK | % 40 | |
| PERCENTAGE OF FINAL WORK | % 60 | |
| Total | % 100 | |
| Aktiviteler | Number of Activities | Duration (Hours) | Workload |
| Course | 14 | 3 | 42 |
| Study Hours Out of Class | 10 | 2 | 20 |
| Project | 10 | 6 | 60 |
| Semester Final Exam | 1 | 3 | 3 |
| Total Workload | 125 | ||