
Understanding Thermodynamics for Science and Engineering Course
Master the fundamental laws governing energy, heat, and work in physical and engineering systems. This course takes you from core thermodynamic concepts through advanced cycle analysis, combustion, and exergy methods. Whether you're an engineering student or a practising professional, you'll build the rigorous analytical foundation needed to solve real-world thermodynamic problems with confidence.
What you'll learn:
Apply the First and Second Laws of Thermodynamics to closed and open engineering systems.
Analyse vapour power, gas power, and refrigeration cycles to determine efficiency and performance.
Determine thermodynamic properties of pure substances, real gases, and ideal gas mixtures accurately.
Evaluate entropy generation and exergy destruction to identify and rank system inefficiencies.
Perform energy and mass balances for combustion reactions, including adiabatic flame temperature calculations.
Interpret psychrometric charts and analyse moist air processes for HVAC and cooling system design.
How you study in practice Understanding Thermodynamics for Science and Engineering Course
How you practise Understanding Thermodynamics for Science and Engineering Course
For businesses looking to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Thermodynamic Concepts
Foundations of Thermodynamic Concepts
Lesson 1 • Temperature, Pressure, and Measurement
Introduces temperature scales, pressure definitions, and measurement instruments. These quantities appear in every thermodynamic equation and must be handled precisely.
Lesson 2 • Thermodynamic Properties and States
Distinguishes intensive from extensive properties and defines equilibrium states. Accurate property identification enables correct application of thermodynamic laws.
Lesson 3 • Nature and Scope of Thermodynamics
Defines thermodynamics and its role in science and engineering. Connects macroscopic observations to energy interactions governing physical systems.
Lesson 4 • Work and Heat as Energy Transfer
Distinguishes work and heat as boundary phenomena, not stored quantities. Understanding their sign conventions prevents systematic errors in energy balances.
Lesson 5 • Systems, Boundaries, and Surroundings
Classifies open, closed, and isolated systems and defines control volumes. Precise system definition is the foundation of every thermodynamic analysis.
Chapter 2HideHide detailsSee detailsPure Substances and Phase Behaviour
Pure Substances and Phase Behaviour
Lesson 1 • Ideal Gas Equation of State
Derives and applies the ideal gas law and its limitations. Ideal gas behaviour simplifies many engineering calculations when conditions permit.
Lesson 2 • Real Gas Equations of State
Introduces van der Waals and other real gas models for high-pressure conditions. Real gas equations extend accuracy beyond ideal gas assumptions.
Lesson 3 • Phase Diagrams and Phase Change
Introduces P-T and P-v diagrams to map phase regions and transitions. Phase diagrams are the primary tool for identifying substance states.
Lesson 4 • Saturation Properties and Quality
Defines saturated liquid, saturated vapour, and two-phase mixtures. Quality quantifies vapour fraction and links to enthalpy and entropy in wet regions.
Lesson 5 • Superheated Vapour and Compressed Liquid
Covers property lookup for superheated and compressed liquid states. Accurate property retrieval from tables is essential for cycle and process calculations.
Chapter 3HideHide detailsSee detailsFirst Law of Thermodynamics
First Law of Thermodynamics
Lesson 1 • Energy Balance for Transient Processes
Handles filling and discharge problems where system mass changes with time. Transient analysis extends First Law methods to dynamic engineering scenarios.
Lesson 2 • Enthalpy and Its Applications
Defines enthalpy and demonstrates its utility in constant-pressure and flow processes. Enthalpy simplifies energy accounting for open systems and phase changes.
Lesson 3 • First Law for Open Systems
Extends the First Law to control volumes with mass flow using the steady-flow energy equation. Open-system analysis applies to turbines, compressors, and heat exchangers.
Lesson 4 • Analysis of Steady-Flow Devices
Applies the steady-flow energy equation to nozzles, diffusers, turbines, compressors, and throttles. Each device type has characteristic assumptions that simplify the energy balance.
Lesson 5 • Energy and the First Law for Closed Systems
States the First Law as a balance of heat, work, and internal energy change. Closed-system energy balances underpin all process analysis.
Chapter 4HideHide detailsSee detailsSecond Law of Thermodynamics
Second Law of Thermodynamics
Lesson 1 • Statements and Implications of the Second Law
Presents Kelvin-Planck and Clausius statements and their equivalence. These statements establish the impossibility of perpetual motion and set efficiency limits.
Lesson 2 • Entropy as a State Property
Derives entropy from the Clausius inequality and establishes it as a state function. Entropy quantifies irreversibility and drives the direction of spontaneous processes.
Lesson 3 • Reversible Processes and Carnot Cycle
Defines reversibility and constructs the Carnot cycle as the ideal benchmark. The Carnot efficiency sets the upper bound for all heat engine performance.
Lesson 4 • Entropy Generation and Irreversibility
Applies the entropy balance to closed and open systems to quantify irreversibility. Entropy generation is the universal measure of process degradation.
Lesson 5 • Entropy Change Calculations
Calculates entropy changes for pure substances, ideal gases, and incompressible solids. Accurate entropy calculations are required for isentropic device analysis.
Chapter 5HideHide detailsSee detailsThermodynamic Cycles and Efficiency
Thermodynamic Cycles and Efficiency
Lesson 1 • Rankine Cycle Modifications
Examines reheat, regenerative, and combined cycles to improve efficiency. Modifications reduce irreversibility and increase net work output in practical plants.
Lesson 2 • Gas Power Cycles: Otto and Diesel
Models reciprocating engine cycles using air-standard assumptions. Otto and Diesel cycle efficiencies depend on compression ratio and heat addition mode.
Lesson 3 • Brayton Cycle and Gas Turbines
Analyses the ideal and actual Brayton cycle for gas turbine engines. Back-work ratio and compressor efficiency critically affect net power output.
Lesson 4 • Refrigeration and Heat Pump Cycles
Applies reversed Rankine and gas refrigeration cycles to cooling and heating applications. COP quantifies cycle performance relative to ideal Carnot benchmarks.
Lesson 5 • Vapour Power Cycles: Rankine Cycle
Develops the ideal and actual Rankine cycle for steam power plants. Rankine cycle analysis links property tables, energy balances, and isentropic efficiencies.
Chapter 6HideHide detailsSee detailsThermodynamic Relations and Property Estimation
Thermodynamic Relations and Property Estimation
Lesson 1 • Equations for Enthalpy and Entropy
Develops general equations for enthalpy and entropy changes as functions of T and P. These equations enable property calculation for any substance given P-v-T data.
Lesson 2 • Maxwell Relations and Their Use
Derives Maxwell relations from exact differentials and applies them to property estimation. Maxwell relations convert unmeasurable derivatives into measurable P-v-T quantities.
Lesson 3 • Fundamental Property Relations
Combines First and Second Laws into Gibbs equations for internal energy, enthalpy, Helmholtz, and Gibbs functions. These relations are the mathematical core of classical thermodynamics.
Lesson 4 • Specific Heat Relations and Ratios
Derives relationships between Cp, Cv, and measurable properties. Specific heat ratios govern isentropic processes and speed of sound calculations.
Lesson 5 • Fugacity and Chemical Potential
Introduces fugacity as a corrected pressure for real gas phase equilibrium. Chemical potential governs species transfer between phases and mixtures.
Chapter 7HideHide detailsSee detailsMixtures and Psychrometrics
Mixtures and Psychrometrics
Lesson 1 • Psychrometric Properties of Moist Air
Defines humidity ratio, relative humidity, dew point, and wet-bulb temperature. These properties characterise moist air and govern HVAC system design.
Lesson 2 • Ideal Gas Mixture Properties
Defines mole fraction, mass fraction, and partial pressures for ideal gas mixtures. Dalton's and Amagat's laws provide the basis for mixture property calculations.
Lesson 3 • Air-Conditioning Processes on Psychrometric Chart
Traces heating, cooling, humidification, and dehumidification on the psychrometric chart. Chart-based analysis enables rapid design of air-conditioning systems.
Lesson 4 • Entropy of Mixing and Gibbs Paradox
Calculates entropy generated when ideal gases mix and examines the Gibbs paradox. Entropy of mixing quantifies irreversibility in blending operations.
Lesson 5 • Cooling Towers and Wet Cooling Systems
Applies moist air analysis to cooling tower energy and mass balances. Cooling towers reject heat through evaporation and are critical in power plant design.
Chapter 8HideHide detailsSee detailsChemical Thermodynamics and Combustion
Chemical Thermodynamics and Combustion
Lesson 1 • Enthalpy of Formation and Reaction
Uses standard enthalpies of formation to calculate reaction enthalpy via Hess's law. Formation enthalpies enable energy accounting for any chemical reaction.
Lesson 2 • Second Law Analysis of Reacting Systems
Applies entropy balance and exergy analysis to combustion processes. Second Law analysis reveals irreversibilities that First Law efficiency cannot detect.
Lesson 3 • Adiabatic Flame Temperature
Calculates the maximum temperature achievable in adiabatic combustion. Adiabatic flame temperature governs material selection and pollutant formation in combustors.
Lesson 4 • Chemical Equilibrium and Equilibrium Constants
Derives the equilibrium constant from Gibbs minimisation and applies it to dissociation reactions. Equilibrium composition determines achievable conversion in reactors and combustors.
Lesson 5 • Stoichiometry and Combustion Reactions
Balances combustion reactions and defines air-fuel ratio and equivalence ratio. Correct stoichiometry is the prerequisite for all combustion energy and product calculations.
Your valid completion certificate
This course is for you:
Mechanical engineering students: needing a rigorous conceptual foundation beyond lecture notes.
Chemical engineering undergraduates: applying thermodynamics to reactors and separation processes.
HVAC and building systems technicians: seeking deeper theory behind the equipment they operate.
Early-career power plant engineers: wanting to move beyond procedures into principled analysis.
Physics graduates: transitioning into applied engineering roles requiring thermodynamic fluency.
Self-taught makers and inventors: designing engines or energy devices who need real theory.
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