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INTRODUCTION TO ENERGY SYSTEMS ENGINEERING

Course
ENRE100 - INTRODUCTION TO ENERGY SYSTEMS ENGINEERING
Department
Energy Systems Engineering - English - Undergraduate
Course Type
Course
Status
Required
Language
English
Credit
0
ECTS
2
T+P+L
1 + 0 + 0
Course Coordinator(s)
Assoc. Prof. Dr. Keyvan BAHLOULI
Prerequisite
-
Keywords

Course Description

Aim of this course is to introduce the fundamental concepts of energy systems engineering and to provide answers to the questions that are usually asked by the prospective energy systems engineering students. The course surveys both the traditional and modern topics of energy systems engineering (energy conservation, energy efficiency, fossil fuels and fossil fueled power stations, and renewable energy systems), providing a historical as well as an academic perspective of the whole profession. Fundamentals of energy systems design and control, environmental impact of the energy systems and the current and future status of the energy in the world are also discussed within the scope of the course.

INTRODUCTION TO ENERGY SYSTEMS ENGINEERING

Evaluation Tools (Active Term)

No evaluation items have been defined.

Course outcomes

  1. 01 1. Explain the significance of Energy Systems Engineering Education
  2. 02 2. Recognize the formation of Energy Systems Engineer
  3. 03 3. Execute written and oral presentation techniques
  4. 04 4. Discuss some basic topics of Energy Systems

Course Syllabus

Week Topic
Week 1 Introduction to the Energy Systems Engineering
Week 2 Energy Systems Engineering Education in CIU
Week 3 World Energy Challenge
Week 4 Power and Energy
Week 5 Power and Energy
Week 6 Energy Conservation & Efficiency
Week 7 Fossil Fuel Resources; Coal, Petroluem & Natural Gas
Week 8 Mid-Term Examinations
Week 9 Mid-Term Examinations
Week 10 Solar and Wind Energy
Week 11 Hydro and Marine Energy
Week 12 Geothermal Energy
Week 13 Presentations
Week 14 Presentations
Week 15 Revision

Reference Books & Course Materials

  1. 01 F.M. Vanek & L.D. Albright, Energy Sytems Engineering Evaluation & Implementation, McGraw-Hill 2008.
  2. 02 Peter Gevorkian, Alternative Energy Systems in Building Design, McGraw-Hill 2010.
  3. 03 Leon Freris & David Infield, Renewable Energy in Power Systems, Wiley, 2011.
  4. 04 F.C. Cetinkaya, Technical Report writing and oral presentation, a guide for students, 1999.

Learning Outcomes

  1. L01 1. Explain the significance of Energy Systems Engineering Education
  2. L02 2. Recognize the formation of Energy Systems Engineer
  3. L03 3. Execute written and oral presentation techniques
  4. L04 4. Discuss some basic topics of Energy Systems

Program Outcomes

  1. P01 Knowledge of mathematics, natural sciences, basic engineering, computer-based computation, and topics specific to the relevant engineering discipline.
  2. P02 Ability to apply knowledge of mathematics, natural sciences, basic engineering, computer-based computation, and topics specific to the relevant engineering discipline to the solution of complex engineering problems.
  3. P03 Ability to define complex engineering problems by using knowledge of basic sciences, mathematics, and engineering, while considering the relevant United Nations Sustainable Development Goals (SDGs) related to the problem addressed.
  4. P04 Ability to formulate complex engineering problems using knowledge of basic sciences, mathematics, and engineering, while considering the relevant United Nations Sustainable Development Goals (SDGs) associated with the problem addressed.
  5. P05 Ability to analyse and solve complex engineering problems using knowledge of basic sciences, mathematics, and engineering, while considering the relevant United Nations Sustainable Development Goals (SDGs) associated with the problem addressed.
  6. P06 Ability to design creative solutions to complex engineering problems.
  7. P07 Ability to design complex systems, processes, devices, or products in a way that meets present and future needs while considering realistic constraints and conditions.
  8. P08 Ability to select and use appropriate techniques and resources—including estimation and modelling—for the analysis and solution of complex engineering problems, while being aware of their limitations.
  9. P09 Ability to select and use modern engineering and computational tools—including estimation and modelling—for the analysis and solution of complex engineering problems, while being aware of their limitations.
  10. P10 Ability to conduct literature research and use appropriate research methods for the investigation of complex engineering problems.
  11. P11 Ability to design experiments for the investigation of complex engineering problems.
  12. P12 Ability to conduct experiments, collect data, analyse results, and interpret findings for the investigation of complex engineering problems.
  13. P13 Knowledge of the impacts of engineering practices on society, health and safety, the economy, sustainability, and the environment within the framework of the United Nations Sustainable Development Goals (SDGs).
  14. P14 Awareness of the legal implications of engineering solutions within the framework of the United Nations Sustainable Development Goals (SDGs).
  15. P15 Knowledge of ethical responsibility and adherence to the principles of professional engineering conduct.
  16. P16 Awareness of acting impartially without discrimination in any matter and of being inclusive of diversity.
  17. P17 Ability to work effectively as an individual.
  18. P18 Ability to work effectively as a team member or leader in intra-disciplinary teams (face-to-face, remote, or hybrid).
  19. P19 Ability to work effectively as a team member or leader in multidisciplinary teams (face-to-face, remote, or hybrid).
  20. P20 Ability to communicate effectively in spoken form on technical matters, taking into account the diverse characteristics of the target audience (such as education, language, and profession).
  21. P21 Ability to communicate effectively in written form on technical matters, taking into account the diverse characteristics of the target audience (such as education, language, and profession).
  22. P22 Knowledge of professional practices such as project management and economic feasibility analysis.
  23. P23 Awareness of entrepreneurship and innovation.
  24. P24 Ability for independent and lifelong learning.
  25. P25 Ability to adapt to new and emerging technologies.
  26. P26 Lifelong learning ability that includes the capacity to think critically about technological changes.

Po-Lo Matrix

LO P01 P02 P03 P04 P05 P06 P07 P08 P09 P10 P11 P12 P13 P14 P15 P16 P17 P18 P19 P20 P21 P22 P23 P24 P25 P26 Average
L01 0 0 0 0 0 0 0 0 0 0 0 0 5 5 0 0 0 0 0 0 0 0 5 5 5 5 1.15
L02 0 0 0 0 0 0 0 0 0 5 5 0 0 0 0 0 0 0 0 0 0 0 5 5 5 5 1.15
L03 0 0 0 0 0 0 0 0 0 0 0 0 0 0 5 5 5 5 0 0 0 0 0 0 0 0 0.77
L04 0 0 0 0 0 0 0 0 0 0 0 0 5 5 5 5 0 0 0 0 0 0 5 5 0 0 1.15