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22ZP22 - Thermodynamics

Course specification
Course titleThermodynamics
Acronym22ZP22
Study programmeBiochemical Engineering and Biotechnology,Environmental Engineering,Material Engineering,Metallurgical Enginering
Module
Lecturer (for classes)
Lecturer/Associate (for practice)
Lecturer/Associate (for OTC)
    ESPB6.0Status
    ConditionPhysics IОблик условљености
    The goalIntroduction to thermodynamic principles and its application to some industrial processes.
    The outcomeStudents will learn how perform mass, energy and entropy balances for the industrial process equipment. Also, they will be able to calculate thermodynamic properties of ideal gas and non-ideal fluids.
    Contents
    Contents of lecturesI FUNDAMENTAL PRINCIPLES OF THERMODYNAMICS. Thermodynamic system and state properties. Ideal gas and real fluids. Reversible and irreversible processes. Heat and work. II MASS AND ENERGY CONSERVATION. Balance equations for open and closed system. Mass conservation. Energy conservation (the first law of thermodynamics). Application of the energy balance in stationary and non-stationary processes with ideal gas and real fluids. III SECOND LAW OF THERMODYNAMICS AND ENTROPY BALANCE. The entropy balance for stationary and non-stationary processes. The principle of entropy increase in closed, open and isolated systems. Application of the second law of thermodynamics: Exergy and anergy of heat, reversible work and work potential. Mechanical and thermodynamic loss. Exergy loss. IV POWER AND REFRIGERATION CYCLES. The steam power plants. Organic Rankine cycle. Cogeneration. Refrigeration. V HUMID AIR. Mixtures of Ideal gases. Humid air properties. Processes with humid air. VI COMBUSTION. Heat effects of combustion. Oxygen and air consumption Products of combustion.
    Contents of exercisesExamples that follow the theoretical classes.
    Literature
    1. B. Djordjević, V. Valent, S. Šerbanović, M. Kijevčanin: Termodinamika, TMF, Beograd, 2012.
    2. Reference literature
    3. Jones, J.B., Dugan, R.E., Engineering Thermodynamics, Prentice-Hall, New Jersey, 1996.
    4. Cangel, V., Boles, M., ''Thermodynamics: An Engineering Approach'', McGraw-Hill, New York, 2014
    Number of hours per week during the semester/trimester/year
    LecturesExercisesOTCStudy and ResearchOther classes
    32
    Methods of teachingTheoretical and practical lectures.
    Knowledge score (maximum points 100)
    Pre obligationsPointsFinal examPoints
    Activites during lecturesTest paper30
    Practical lessons20Oral examination
    Projects
    Colloquia50
    Seminars