İzmir Ekonomi Üniversitesi
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  • FACULTY OF ENGINEERING

    Department of Mechanical Engineering

    ME 403 | Course Introduction and Application Information

    Course Name
    Mechanical Engineering Design
    Code
    Semester
    Theory
    (hour/week)
    Application/Lab
    (hour/week)
    Local Credits
    ECTS
    ME 403
    FALL
    2
    2
    3
    5

    Prerequisites ME 305 To get a grade of at least DD&&ME 304 To get a grade of at least DD
    Course Language English
    Course Type Required (Core Course)
    Course Level First Cycle
    Mode of Delivery Face to face
    Teaching Methods and Techniques of the Course Lecture
    Problem solving
    Homework
    Projecat
    Presentation
    National Occupational Classification Code -
    Course Coordinator
    • Dr. Öğr. Üyesi Cem Tahsin Yücer
    Course Lecturer(s)
    • Dr. Öğr. Üyesi Cem Tahsin Yücer
    Assistant(s) -
    Course Objectives The aim of the course is to enable students to explain the components of a thermal system, analyze the thermal system, calculate losses in thermal systems due to fluid transport, explain energy transport in thermal systems, design a sample building heating system, calculate heat loss, fluid flow rate, flow losses, and calculate the capacities of components such as boilers, water heaters, radiators, pumps, and pipes, and select them from catalogs.
    Learning Outcomes The students who succeeded in this course;
    Name Description PC Sub * Contribution Level
    1 2 3 4 5
    LO1 perform energy analysis in thermal systems 1.5 X
    LO2 calculate the pressure losses of fluids in thermal systems 1.5 X
    LO3 calculate the heat transfer occurring in thermal systems 1.5 X
    LO4 analyze heating system components (boiler, water heater, radiator, pump, pipes) 2 X
    LO5 define the characteristics of the components in the heating system for a building 3.1 X
    LO6 prepare a project report of a heating system for a building 3.2 X
    Course Description This course covers the analysis of thermal systems, fluid transportation, energy transportation, and calculations, selection and design of heating systems for boilers, water heaters, pumps, pipes and heaters.
    Related Sustainable Development Goals
    -

     



    Course Category

    Core Courses
    X
    Major Area Courses
    Supportive Courses
    Media and Managment Skills Courses
    Transferable Skill Courses

     

    WEEKLY SUBJECTS AND RELATED PREPARATION STUDIES

    Week Subjects Required Materials Learning Outcome
    1 introduction Textbook-1 - Chapter 1 LO1
    2 Thermal System Analysis Textbook-1 - Chapter 3 LO1
    3 Thermal System Analysis Textbook-1 - Chapter 3 LO1
    4 Fluid Transport in Thermal Systems Textbook-1 - Chapter 4 LO2
    5 Fluid Transport in Thermal Systems Textbook-1 - Chapter 4 LO2
    6 Energy Transport in Thermal Systems Textbook-1 - Chapter 5 LO3
    7 Energy Transport in Thermal Systems Textbook-1 - Chapter 5 LO3
    8 Midterm Exam -
    9 Heating Systems Textbook-2 - Chapter 1,7 LO5
    10 Heat Loss Calculation Textbook-2 - Chapter 6 LO4
    11 Heat Loss Calculation Textbook-2 - Chapter 6 LO4
    12 Heating System Components Textbook-2 - Chapter 11,14 LO5
    13 Heating System Components Textbook-2 - Chapter 8 LO6
    14 Heating System Components Textbook-2 - Chapter 9,10 LO6
    15 Presentations LO6
    16 Final Exam -

     

    Course Notes/Textbooks Steven G. PENONCELLO “Thermal Energy Systems Design and Analysis” Taylor and Francis 2015. ISBN: 13:978-1-4822-4600-1
    Kalorifer Tesisatı Makina Mühendisleri Odası Yayını MMO/352/11 2021
    Suggested Readings/Materials -

     

    EVALUATION SYSTEM

    Semester Activities Number Weighting LO1 LO2 LO3 LO4 LO5 LO6
    Homework / Assignments 1 5 X X X
    Presentation / Jury 1 5 X X X
    Project 1 25 X X X X X X
    Midterm 1 25 X X X
    Final Exam 1 40 X X X X X X
    Total 5 100

     

    ECTS / WORKLOAD TABLE

    Semester Activities Number Duration (Hours) Workload
    Participation - - -
    Theoretical Course Hours 16 2 32
    Laboratory / Application Hours 16 2 32
    Study Hours Out of Class 14 1 14
    Field Work - - -
    Quizzes / Studio Critiques - - -
    Portfolio - - -
    Homework / Assignments 2 3 6
    Presentation / Jury 1 6 6
    Project 1 30 30
    Seminar / Workshop - - -
    Oral Exams - - -
    Midterms 1 10 10
    Final Exam 1 20 20
        Total 150

     

    COURSE LEARNING OUTCOMES AND PROGRAM QUALIFICATIONS RELATIONSHIP

    # 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.

    1

    Mathematics

    2

    Science

    3

    Basic Engineering

    4

    Computation

    5

    related engineering discipline-specific topics

    LO1 LO2 LO3
    6

    the ability to apply this knowledge to solve complex engineering problems.

    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.

    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.

    1

    Ability to design creative solutions to complex engineering problems.

    LO5
    2

    Ability to design complex systems, processes, devices or products to meet current and future needs, considering realistic constraints and conditions.

    LO6
    4

    Use of Techniques and Tools: Ability to select and use appropriate tectıniques, resources, and modern engineering and computing tools. including estimation and modeling. far the analysis and solution of complex engineering problems while recognizing their limitations.

    5

    Research and ınvestigation: Ability to use research methods ta investigate complex engineering problems, including literature research, designing and conducting experiments, collecting data, and analyzing and interpreting results.

    1

    Literature research far the study of complex engineering problems

    2

    Designing experiments

    3

    Ability to use research methods, including conducting experiments, collecting data. analyzing and interpreting results

    6

    Global lmpact of Engineering Practices: Knowledge of the impacts of engineering practices on s.ociety, health and safety. ttıe economy, sustainability and the environment \ıVlthin the context of the UN Sustainable Development GoaJs; awareness of the legal implications of engineering solutions.

    1

    Knowledge of ttıe impacts of engineering practices on society, health and safety, economy, su.stainability and the environment, within the context of the UN Sustainable Development Goals.

    2

    Awareness of the legal implications of engineering solutions

    7

    Ethical Behavlor: Acting in accordance with the principles of the engineering profession. knowledge about ethical ,esponsibility; awareness of being impartial. without discrimination, and being inclusive of diversity.

    1

    Acting in accordance with engineering professional principles. information about ethical responsibility

    2

    Awareness of being impartial and indusive of diversity, without disaiminating on any subject.

    8

    lndividual and Teamwork: Ability to work effectively individually and as a team member or leader on interdis.ciplinary and multidisciplinary teams (face-to-face, remote or hybrid).

    1

    lndividually and within the discipline

    2

    Ability to work effectivefy as a team member or leader in mutti-disciplinary teams (face-to-face, remote or hybrid)

    9

    Verbal and Written Communication: Taking into account the various differences of the target audience (such as education, language, profession) on technical issues.

    1

    Verbal

    2

    Ability to communicate effectively in writing.

    10

    Project Management: Knowledge of business practices such as project management and economic feasibility analysis; awareness of entrepreneurship and innovation.

    1

    Knowledge of business practices such as project management and economic feasibility analysis;

    2

    Awareness of entrepreneurship and innovation.

    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 tedınological changes

    *1 Lowest, 2 Low, 3 Average, 4 High, 5 Highest


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