ME203 THERMODYNAMICS I

Course Code:5690203
METU Credit (Theoretical-Laboratory hours/week):3 (3.00 - 0.00)
ECTS Credit:5.0
Department:Mechanical Engineering
Language of Instruction:English
Level of Study:Undergraduate
Course Coordinator:Assoc.Prof.Dr. ÖZGÜR BAYER
Offered Semester:Fall and Spring Semesters.

Course Objectives

At the end of this course, the student will learn

  • basic concepts of the thermodynamics,
  • how to evaluate thermo physical properties of the substances,
  • several forms of work and heat,
  • conservation of energy for the control mass and control volume processes,
  • qualitatively the limits of the performance of thermal engines
  • to predict the direction of the processes and understand impossibility of the some processes.

Course Content

Basic concepts and definitions. Properties of a pure substance. Equations of state. Work and heat. First law of thermodynamics. Internal energy and enthalpy. Second law of thermodynamics. Carnot cycle. Entropy.


Course Learning Outcomes

  • Ability to identify thermodynamic equilibrium state and understand the basic differences between thermodynamics and heat transfer, fluid mechanics courses.
  • Habit of correct use of units.
  • Ability to differentiate system and control volume processes.
  • Understanding of usage of thermodynamic tables.
  • Ability to identify the limits of the ideal gas assumption.
  • Ability to differentiate qualitatively heat and work.
  • Ability to calculate work.
  • Ability to appreciate the energy conversion.
  • Ability to differentiate unsteady and steady flow applications.
  • Ability to analyze different steady flow devices.
  • Ability to analyze the heat engines and calculate thermal efficiency.
  • Ability to analyze the refrigerators, heat pumps and calculate coefficient of performance.
  • Ability to construct ideal cycles applying reversible processes.
  • Ability to spot the source of irreversibility.
  • Ability to differentiate ideal engine and actual one.
  • Ability to appreciate a new property, entropy, not a directly measurable one but indicating the direction of the process.
  • Ability to find isentropic efficiency.
  • Ability to derive some thermodynamical relations using entropy concept. 

Program Outcomes Matrix

Contribution
#Program OutcomesNoYes
1Ability to establish the relationship between mathematics, basic sciences and engineering sciences with engineering applications.✔
2Ability to find and interpret information✔
3Ability to follow the literature and technology related to his/her topic of interest✔
4Recognition of the need to keep oneself up to date in his/her profession✔
5Possession of written and oral communication skills✔
6Ability to conduct team work (within the discipline, inter-disciplinary, multi-disciplinary)✔
7Ability to produce original solutions✔
8Use of scientific methodology in approaching and producing solutions to engineering problems and needs✔
9Openness to all that is new✔
10Ability to conduct experiments✔
11Ability to do engineering design✔
12Awareness of engineering ethics, knowledge and adoption of its fundamental elements✔
13Ability to take societal, environmental and economical considerations into account in professional activities✔
14Possession of pioneering and leadership characteristics in areas related to the profession✔