MAK474 Micro and Nano Fluid SystemsInstitutional InformationDegree Programs Mechanical EngineeringInformation For StudentsDiploma SupplementErasmus Policy StatementNational Qualifications
Mechanical Engineering

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Bachelor TR-NQF-HE: Level 6 QF-EHEA: First Cycle EQF-LLL: Level 6

Course General Introduction Information

Course Code: MAK474
Course Name: Micro and Nano Fluid Systems
Course Semester: Spring
Course Credits:
ECTS
6
Language of instruction:
Course Requirement:
Does the Course Require Work Experience?: No
Type of course: Area Ellective
Course Level:
Bachelor TR-NQF-HE:6. Master`s Degree QF-EHEA:First Cycle EQF-LLL:6. Master`s Degree
Mode of Delivery: Face to face
Course Coordinator : Dr.Öğr.Üyesi AHMET GÜLTEKİN
Course Lecturer(s):
Course Assistants:

Course Purpose and Content

Course Objectives: This course is related to various courses in the undergraduate mechanical engineering program and enables students to understand the behavior of fluids at micro and nano scales. It is directly related to courses such as thermodynamics, fluid mechanics, heat transfer, and materials science.
Course Content: This course supply the understanding of microfluidic and nanofluidic systems. Course contents consist of Introduction to Micro- and Nanoscale Flows, microfluidics and nanofluidics transport, Electroosmosis and Potential flow, Flow control in Microfluidic devices and applications of microfluidic and nanofluidic, computer simulations.

Learning Outcomes

The students who have succeeded in this course;
1) Understand the fundamental principles of micro and nano fluids.
2) Model fluid behavior at micro and nano scales.
3) Solve engineering problems related to micro and nano fluids.
4) Identify the application areas of micro and nano fluids and develop innovative solutions in these areas.
5) Utilize experimental and computational methods related to micro and nano fluids.

Course Flow Plan

Week Subject Related Preparation
1) Introduction to Micro and Nano Fluids
2) Fundamental Properties of Fluids at Micro and Nano Scales
3) Dimensionless Numbers and Scaling Laws
4) Fundamental Equations for Micro and Nano Fluids
5) Micro Fluids: Applications and Technologies
6) Nano Fluids: Applications and Technologies
7) Fluid-Surface Interactions and Surface Tension
7) Fluid-Surface Interactions and Surface Tension
8) Heat Transfer in Micro and Nano Fluids
8) Heat Transfer in Micro and Nano Fluids
9) Mass Transfer in Micro and Nano Fluids
10) Modeling Techniques for Micro and Nano Fluids
11) Experimental Techniques and Measurement Methods
11) Experimental Techniques and Measurement Methods
12) Energy Applications in Micro and Nano Fluids
13) Biomedical Applications in Micro and Nano Fluids
14) Term Project Presentations and General Evaluation

Sources

Course Notes / Textbooks: 1.Micro and Nanoscale Fluid Mechanics, Transport in Microfluidic devices., Brain Kirby, Cambridge, 2010. 2.Electrokinetically Driven Microfluidics and Nanofluidics, Hsueh-Chia Chang, Leslie Y. Yeo., Cambridge, 2010. 3.Fundamentals and Applications of Microfluidics, Nguyen Vereley, Artech House, 2002. 4.Static and Dynamic Electricity, W.R. Smythe, 3rd. Ed., McGraw-Hill, New York,1968.

References: 1.Micro and Nanoscale Fluid Mechanics, Transport in Microfluidic devices., Brain Kirby, Cambridge, 2010. 2.Electrokinetically Driven Microfluidics and Nanofluidics, Hsueh-Chia Chang, Leslie Y. Yeo., Cambridge, 2010. 3.Fundamentals and Applications of Microfluidics, Nguyen Vereley, Artech House, 2002. 4.Static and Dynamic Electricity, W.R. Smythe, 3rd. Ed., McGraw-Hill, New York,1968.

Course - Learning Outcome Relationship

No Effect 1 Lowest 2 Medium 3 Highest
       
Program Outcomes Level of Contribution
1) Ability to utilize advanced theoretical and applied knowledge in the field. 3
2) Using the advanced knowledge and skills acquired in the field, being able to interpret and evaluate data, identify problems, analyze them, and develop solution proposals based on research and evidence. 3
3) Being able to organize and implement projects and activities for the social environment in which one lives with a sense of social responsibility. 3
4) Being able to follow information in one foreign language at least at the European Language Portfolio B1 General Level and communicate with colleagues in the field.
5) Ability to use information and communication technologies together with at least European Computer Driving License Advanced Level computer software, as required by the field.
6) Being able to evaluate advanced knowledge and skills in the field critically.
7) Identifying learning needs and being able to direct learning.
8) Developing a positive attitude towards lifelong learning.
9) Acting in accordance with social, scientific, cultural, and ethical values ​​in the stages of collecting, interpreting, applying, and announcing the results related to the field.
10) Having sufficient awareness about the universality of social rights, social justice, quality culture, preservation of cultural values, as well as environmental protection, occupational health, and safety.
11) Being able to conduct an advanced study independently in the field.
12) To take responsibility individually and as a team member to solve complex problems encountered in the field of application, which are unforeseen.
13) Being able to plan and manage activities for the development of those under their responsibility within the framework of a project.
14) Possess advanced level theoretical and practical knowledge supported by textbooks with updated information, practice equipments and other resources.
15) Being able to inform relevant individuals and institutions about the field; expressing their thoughts and solution proposals for problems both in written and verbal form.
16) Being able to share your thoughts and solutions regarding subjects related to the field with both experts and non-experts, supported by quantitative and qualitative data.

Learning Activity and Teaching Methods

Course

Measurement and Evaluation Methods and Criteria

Yazılı Sınav (Açık uçlu sorular, çoktan seçmeli, doğru yanlış, eşleştirme, boşluk doldurma, sıralama)
Homework

Assessment & Grading

Semester Requirements Number of Activities Level of Contribution
Homework Assignments 2 % 20
Midterms 1 % 30
Final 1 % 50
total % 100
PERCENTAGE OF SEMESTER WORK % 50
PERCENTAGE OF FINAL WORK % 50
total % 100

İş Yükü ve AKTS Kredisi Hesaplaması

Activities Number of Activities Aktiviteye Hazırlık Aktivitede Harçanan Süre Aktivite Gereksinimi İçin Süre Workload
Course Hours 14 3 42
Study Hours Out of Class 14 5 70
Homework Assignments 2 20 40
Midterms 1 15 15
Final 1 20 20
Total Workload 187