İzmir Ekonomi Üniversitesi
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    ME 426 | Ders Tanıtım Bilgileri

    Dersin Adı
    Vehicle Aerodynamics
    Kodu
    Yarıyıl
    Teori
    (saat/hafta)
    Uygulama/Lab
    (saat/hafta)
    Yerel Kredi
    AKTS
    ME 426
    SPRING
    3
    0
    3
    5

    Ön-Koşul(lar) Yok
    Dersin Dili English
    Dersin Türü ELECTIVE_COURSE
    Dersin Düzeyi Lisans
    Dersin Veriliş Şekli Face to face
    Dersin Öğretim Yöntem ve Teknikleri Problem solving
    Lecture / Presentation
    Ulusal Meslek Sınıflandırma Kodu -
    Dersin Koordinatörü
    • Prof. Dr. Lale Canan Dülger
    Öğretim Eleman(lar)ı
    • Dr. Öğr. Üyesi İzzet Murat Akşit
    Yardımcı(ları) -
    Dersin Amacı The aim of this course is to provide the basic concepts of incompressible aerodynamics, to solve basic aerodynamic problems and to provide basic information for the preliminary aerodynamic design of an aircraft.
    Öğrenme Çıktıları Bu dersi başarıyla tamamlayabilen öğrenciler;
    Ad Açıklama PC Alt * Katkı Düzeyi
    1 2 3 4 5
    LO1 analyse vehicle aerodynamics. 1.3 X
    LO2 formulate aerodynamic forces. 2 X
    LO3 identify wind effect on vehicles. 3.2 X
    LO4 describe aerodynamic calculations in wind tunnels. 1.5 X
    LO5 gain a background of modeling. 4 X
    Ders Tanımı The content of this course includes fundamental formulations in fluid mechanics and aerodynamic problems, inviscid and viscous flows, applications in wind tunnels and external body flows, computer-aided aerodynamic design, comparison of numerical and experimental results, aerodynamic designs to reduce drag, engine cooling aerodynamics and aerodynamic noise.
    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 Fundamental fluid dynamics Chapter 7 - Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 aa7f311e
    2 Introduction and basic principles aerodynamics Chapter 7 - Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 aa7f311e
    3 Resistance to vehicle motion and bluff body aerodynamics Chapter7 - Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 aa7f311e
    4 Drag coefficient of car and aerodynamics of passenger vehicles Chapter7 - Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 8f86673a
    5 Buckingam PI Teorem Chapter 8 Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 8f86673a
    6 Aerodynamics performance - Fuel consumption Chapter 8 Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 8f86673a
    7 Strategies for aerodynamic development Chapter 9 Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 8f86673a
    8 Midterm Exam -
    9 Flow over body Chapter 9 Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 8f86673a
    10 Automotive wind tunnel Chapter 10 Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 ece4756c
    11 Wind tunnel tests Chapter 11 Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 ece4756c
    12 Computational fluid dynamics Chapter 11 Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 ad31f1cc
    13 Computational fluid dynamics Chapter 11 Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2006 ad31f1cc
    14 Simulation of the flow around Ahmed body Chapter 11 Fluid Mechanics, Fundamentals and Applications, Yunus Çengel, John Cimbala, McGraw Hill, 2007 ad31f1cc
    15 Examples -
    16 Final Exam -

     

    Ders Kitabı Fluid Mechanics Fundamentals and Applications Yunus Çengel John Cimbala McGraw Hill 2006
    Automotive Aerodynamics Joseph Kats Chichester UK ; Hoboken NJ : John Wiley & Sons 2016. Wiley.
    Önerilen Okumalar/Materyaller -

     

    DEĞERLENDİRME ÖLÇÜTLERİ

    Yarıyıl Aktiviteleri Sayı Katkı Payı % LO1 LO2 LO3 LO4 LO5
    Küçük Sınav / Stüdyo Kritiği 1 20 X X
    Ara Sınav 1 40 X X X
    Final Sınavı 1 40 X X X X
    Toplam 3 100

     

    AKTS / İŞ YÜKÜ TABLOSU

    Yarıyıl Aktiviteleri Sayı Süre (Saat) İş Yükü
    Katılım - - -
    Teorik Ders Saati 16 3 48
    Laboratuvar / Uygulama Ders Saati - - -
    Sınıf Dışı Ders Çalışması 14 3 42
    Arazi Çalışması - - -
    Küçük Sınav / Stüdyo Kritiği 1 8 8
    Portfolyo - - -
    Ödev - - -
    Sunum / Jüri Önünde Sunum - - -
    Proje - - -
    Seminer/Çalıştay - - -
    Sözlü Sınav - - -
    Ara Sınavlar 1 26 26
    Final Sınavı 1 26 26
        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

    LO4
    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.

    LO2
    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

    LO3
    4

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

    LO5
    5

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

    1

    Literature research for 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 Impact of Engineering Practices: Knowledge of the impacts of engineering practices on society, health and safety, economy, sustainability, and the environment, within the context of the UN Sustainable Development Goals; awareness of the legal implications of engineering solutions.

    1

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

    2

    Awareness of the legal implications of engineering solutions

    7

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

    1

    Acting in accordance with the principles of the engineering profession, knowledge about ethical responsibility ethical responsibility

    2

    Awareness of being impartial and inclusive of diversity, without discriminating on any subject

    8

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

    1

    Ability to work individually and within the discipline

    2

    Ability to work effectively as a team member or leader in multidisciplinary 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

    Ability to communicate verbally

    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 technological changes.

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


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