GET 206
Fundamentals of Engineering Thermodynamics
3
Course Description
At the end of this course, the students should be able to:
1. describe basic concepts of thermodynamics, quantitative relations of Zeroth, first, second
and third laws;
2. define and explain system, surrounding, closed and open system, control volume and
control mass, extensive and intensive properties;
3. calculate absolute and gage pressure, and absolute temperature, calculate changes in
kinetic, potential, enthalpy and internal energy;
4. evaluate the properties of pure substances i.e., evaluate the state of the pure substances
such as compressed liquid, saturated liquid-vapour mixture and superheated vapour using
property diagrams and tables; arrange the ideal and real gas equations of state,
5. formulate the first law of thermodynamics for a closed system i.e., organize the change
in energy in the closed systems via heat and work transfer;
6. distinguish heat transfer by conduction, convection and radiation, and calculate the
amount of heat energy transferred;
7. calculate the changes in moving boundary work, spring work, electrical work and shaft
work in closed systems;
8. apply the first law of thermodynamics for closed systems and construct conservation of
mass and energy equations;
9. formulate the first law of thermodynamics to the open systems i.e., describe steady-flow
open system, apply the first law of thermodynamics to the nozzles, diffusers, turbines,
compressors, throttling valves, mixing chambers, heat exchangers, pipe and duct flow;
10. construct energy and mass balance for unsteady-flow processes;
11. evaluate thermodynamic applications using second law of thermodynamics;
12. calculate thermal efficiency and coefficient of performance for heat engine, refrigerators
and heat pumps; and
13. restate perpetual-motion machines, reversible and irreversible processes.
Course Outline
Basic concepts, definitions and laws (quantitative relations of Zeroth, first, second and third
laws of thermodynamics). Properties of pure substances: the two-property rule (P-V-T
behaviour of pure substances and perfect gases); state diagrams. The principle of
corresponding state; compressibility relations; reduced pressure; reduced volume;
temperature; pseudo-critical constants. The ideal gas: specific heat, polytropic processes.
Ideal gas cycles; Carnot; thermodynamic cycles, turbines, steam and gas, refrigeration. The
first law of thermodynamics – heat and work, applications to open and closed systems. The
steady flow energy equation (Bernoulli’s equation) and application. Second law of
thermodynamics, heat cycles and efficiencies.