İzmir Ekonomi Üniversitesi
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    Makine Mühendisliği

    ME 304 | Ders Tanıtım Bilgileri

    Dersin Adı
    Heat Transfer
    Kodu
    Yarıyıl
    Teori
    (saat/hafta)
    Uygulama/Lab
    (saat/hafta)
    Yerel Kredi
    AKTS
    ME 304
    SPRING
    2
    2
    3
    5

    Ön-Koşul(lar) A minimum grade of DD in ME 207
    Dersin Dili English
    Dersin Türü Zorunlu
    Dersin Düzeyi Lisans
    Dersin Veriliş Şekli Face to face
    Dersin Öğretim Yöntem ve Teknikleri Presentation
    Problem solving
    Ulusal Meslek Sınıflandırma Kodu -
    Dersin Koordinatörü
    • Prof. Dr. Fehmi Görkem Üçtuğ
    Öğretim Eleman(lar)ı
    • Prof. Dr. Fehmi Görkem Üçtuğ
    • Dr. Öğr. Üyesi Işınay Ebru Yüzay
    • Dr. Öğr. Üyesi Cem Tahsin Yücer
    Yardımcı(ları) -
    Dersin Amacı The course aims to enable students to understand how heat energy is transferred in engineering systems. By introducing fundamental heat transfer mechanisms such as conduction, convection, and radiation, students learn to apply these principles in solving engineering problems. Topics covered include energy equations, heat conduction equations, convection processes, and thermal radiation. Students gain skills to model these processes for practical engineering applications using mathematical methods, focusing on energy efficiency, insulation strategies, and cooling system designs.
    Öğrenme Çıktıları Bu dersi başarıyla tamamlayabilen öğrenciler;
    Ad Açıklama PC Alt * Katkı Düzeyi
    1 2 3 4 5
    LO1 Formulate the mathematical representation of heat transfer through conduction, convection, and radiation. 1.3 X
    LO2 Solve heat transfer problems involving steady and unsteady conduction. 1.6 X
    LO3 Perform mathematical analysis of convective heat transfer in different geometries. 1.6 X
    LO4 Develop mathematical models for designing heat exchangers. 3.2 X
    LO5 Model heat transfer through radiation using mathematical techniques. 1.6 X
    LO6 Design an experiment to calculate the convective heat transfer coefficient. 5.2 X
    Ders Tanımı This course covers the fundamental principles of heat transfer, including conduction, steady-state one-dimensional conduction, heat transfer in plane walls and cylindrical surfaces, heat transfer in spherical surfaces, time-dependent conduction, convection, external and internal flows, natural convection, heat exchangers, and radiation.
    Dersin İlişkili Olduğu Sürdürülebilir Kalkınma Amaçları
    -

     



    Dersin Kategorisi

    Temel Ders
    Uzmanlık/Alan Dersleri
    X
    Destek Dersleri
    İletişim ve Yönetim Becerileri Dersleri
    Aktarılabilir Beceri Dersleri

     

    HAFTALIK KONULAR VE İLGİLİ ÖN HAZIRLIK ÇALIŞMALARI

    Hafta Konular Ön Hazırlık Öğrenme Çıktısı
    1 Introduction to heat transfer and general concepts Course book Chapter 1 LO1
    2 Introduction to conduction heat transfer Course book Chapter 2 LO2
    3 Derivation of general heat transfer equations in Cartesian, cylindrical, and spherical coordinates; defining initial and boundary conditions Course book Chapter 3 LO2
    4 Steady-state one-dimensional conduction heat transfer Course book Chapter 3 LO2
    5 Heat transfer in plane walls and cylindrical surfaces Course book Chapter 3 LO2
    6 Heat transfer in spherical surfaces Course book Chapter 3 LO2
    7 Time-dependent (transient) heat transfer Course book Chapter 5 LO2
    8 Midterm exam - -
    9 Introduction to convective heat transfer Course book Chapter 6 LO3
    10 Convective heat transfer in plane walls and spherical surfaces Course book Chapter 7 LO3
    11 Heat transfer in external and internal flow within pipes and channels Course book Chapter 7-8 LO3
    12 Introduction to heat exchangers Course book Chapter 11 LO4
    13 Design of heat exchangers Course book Chapter 11 LO4
    14 Introduction to radiation heat transfer Course book Chapter 12 LO5
    15 Practical applications of radiation heat transfer Course book Chapter 13 LO5
    16 Final exam - -

     

    Ders Kitabı Frank P. Incropera David P. DeWitt Theodore L. Bergman Adrienne S. Lavine Fundamentals of Heat and Mass Transfer John Wiley & Sons 2006 ISBN-10. 0471457280 · ISBN-13. 978-0471457282
    Önerilen Okumalar/Materyaller Modeling in Transport Phenomena: A Conceptual Approach 2nd Edition Elsevier ISBN-13: 978-0444530219

     

    DEĞERLENDİRME ÖLÇÜTLERİ

    Yarıyıl Aktiviteleri Sayı Katkı Payı % LO1 LO2 LO3 LO4 LO5 LO6
    Ödev 1 30 X X X X X X
    Ara Sınav 1 30 X X
    Final Sınavı 1 40 X X X X X X
    Toplam 3 100

     

    AKTS / İŞ YÜKÜ TABLOSU

    Yarıyıl Aktiviteleri Sayı Süre (Saat) İş Yükü
    Katılım - - -
    Teorik Ders Saati 16 2 32
    Laboratuvar / Uygulama Ders Saati 16 2 32
    Sınıf Dışı Ders Çalışması 14 2 28
    Arazi Çalışması - - -
    Küçük Sınav / Stüdyo Kritiği - - -
    Portfolyo - - -
    Ödev 5 4 20
    Sunum / Jüri Önünde Sunum - - -
    Proje - - -
    Seminer/Çalıştay - - -
    Sözlü Sınav - - -
    Ara Sınavlar 1 18 18
    Final Sınavı 1 20 20
        Toplam 150

     

    DERSİN ÖĞRENME ÇIKTILARININ PROGRAM YETERLİLİKLERİ İLE İLİŞKİSİ

    # PC Alt Program Yeterlilikleri / Çıktıları * Katkı Düzeyi
    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

    LO1
    4

    Computation

    5

    related engineering discipline-specific topics

    6

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

    LO5 LO2 LO3
    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.

    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.

    2

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

    LO4
    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

    LO6
    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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