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Thermodynamics Crash Course
More than 2 million students worldwide

Thermodynamics Crash Course

Master the fundamental principles that govern energy conversion, heat transfer, and system performance in engineering. This course takes you from core thermodynamic concepts all the way through power cycles, entropy analysis, and exergy optimisation. Whether you're an engineering student or a working professional, you'll gain the analytical tools to solve real thermodynamic problems with confidence.

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What you will learn:

This course covers the complete thermodynamics curriculum, starting with system definitions, equations of state, and thermodynamic properties. You will apply the First and Second Laws to closed and open systems, including turbines, compressors, and heat exchangers. You will analyse standard power and refrigeration cycles such as the Rankine, Brayton, Otto, and Diesel cycles. Entropy generation and exergy destruction are quantified to evaluate real system performance against theoretical limits. Supplementary topics include combustion thermodynamics, psychrometrics, heat transfer applications, and energy system sustainability. By the end, you will have a rigorous, practical understanding of thermodynamics that applies directly to engineering design and analysis.

How you study in practice Thermodynamics Crash Course

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Course content

8 Chapters • 41 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Thermodynamic Systems

  • Lesson 1 • Systems, Boundaries, and Surroundings

    Defines open, closed, and isolated systems with boundary types. Anchors all subsequent energy analysis to correct system identification.

  • Lesson 2 • Processes and Thermodynamic Cycles

    Introduces isothermal, isobaric, isochoric, and adiabatic processes. Cycle recognition is prerequisite to analysing heat engines and refrigeration systems.

  • Lesson 3 • Equations of State

    Presents the ideal gas law and introduces real-gas corrections. Accurate property prediction underpins all subsequent energy and entropy calculations.

  • Lesson 4 • Thermodynamic Properties and State

    Distinguishes intensive from extensive properties and defines thermodynamic state. Provides the property language used throughout all energy calculations.

  • Lesson 5 • Temperature, Pressure, and Volume

    Covers absolute temperature scales, pressure measurement, and specific volume. These three variables appear in every equation of state and process analysis.

Chapter 2See details

Energy, Heat, and Work

  • Lesson 1 • Work Interactions and Boundary Work

    Defines work sign convention and derives boundary work for common processes. Boundary work integrals are used directly in piston-cylinder and compressor problems.

  • Lesson 2 • Forms of Energy in Systems

    Categorises kinetic, potential, and internal energy within a system. Correct energy accounting prevents errors in all first-law applications.

  • Lesson 3 • Heat Transfer Fundamentals

    Covers conduction, convection, and radiation as heat transfer mechanisms. Distinguishes heat from work to prevent misapplication of energy balance equations.

  • Lesson 4 • Specific Heats and Calorimetry

    Defines Cv and Cp and relates them through the ideal gas relation. Specific heat data enables internal energy and enthalpy changes without full property tables.

  • Lesson 5 • Enthalpy and Flow Work

    Introduces enthalpy as a combined property for open-system analysis. Flow work derivation shows why enthalpy replaces internal energy in steady-flow devices.

Chapter 3See details

Properties of Pure Substances

  • Lesson 1 • Compressed Liquid Approximation

    Justifies using saturated liquid properties at the same temperature for compressed liquids. This approximation avoids compressed liquid tables when data is unavailable.

  • Lesson 2 • Phase Diagrams and Phase Change

    Explains P-T and P-v diagrams, triple point, and critical point. Phase diagram literacy is required to identify substance state before reading property tables.

  • Lesson 3 • Saturated and Superheated States

    Defines compressed liquid, saturated mixture, and superheated vapour regions. Correct region identification determines which property table or equation to use.

  • Lesson 4 • Mixture Properties and Quality

    Calculates internal energy, enthalpy, and entropy of wet mixtures using quality. Mixture property equations bridge saturated liquid and vapour table values.

  • Lesson 5 • Property Tables and Interpolation

    Demonstrates reading saturation and superheated tables for water and refrigerants. Linear interpolation between table entries is the primary property retrieval skill.

Chapter 4See details

The First Law of Thermodynamics

  • Lesson 1 • Energy Efficiency and Performance Metrics

    Defines thermal efficiency, mechanical efficiency, and isentropic efficiency. These metrics benchmark real device performance against ideal thermodynamic limits.

  • Lesson 2 • Transient and Uniform-Flow Processes

    Handles filling and emptying problems where system state changes with time. Uniform-flow assumption simplifies transient analysis to algebraic energy balances.

  • Lesson 3 • Steady-Flow Device Analysis

    Applies the steady-flow equation to nozzles, diffusers, turbines, and compressors. Each device type has simplifying assumptions that reduce the general equation.

  • Lesson 4 • First Law for Open Systems

    Extends energy balance to control volumes with mass flow. Steady-flow energy equation governs turbines, compressors, nozzles, and heat exchangers.

  • Lesson 5 • First Law for Closed Systems

    States energy conservation for fixed-mass systems and applies it to piston-cylinder devices. Establishes the energy balance template reused in every subsequent analysis.

Chapter 5See details

The Second Law of Thermodynamics

  • Lesson 1 • Second Law Statements

    Presents Kelvin-Planck and Clausius statements and proves their equivalence. Both statements define impossible devices that violate the second law.

  • Lesson 2 • Carnot Cycle and Carnot Efficiency

    Constructs the Carnot cycle from two isothermal and two adiabatic processes. Carnot efficiency sets the upper bound for any heat engine operating between two temperatures.

  • Lesson 3 • Reversible and Irreversible Processes

    Identifies sources of irreversibility including friction, heat transfer, and mixing. Reversibility is the benchmark for maximum possible work output.

  • Lesson 4 • Thermal Reservoirs and Heat Engines

    Defines thermal reservoirs and the heat engine operating between two reservoirs. Reservoir concept is the foundation for all second-law efficiency comparisons.

  • Lesson 5 • Refrigerators and Heat Pumps

    Analyses reversed heat engine cycles as refrigerators and heat pumps. COP definitions differ for cooling and heating applications of the same cycle.

Chapter 6See details

Entropy and the Entropy Balance

  • Lesson 1 • Isentropic Processes and Relations

    Derives isentropic relations for ideal gases and applies them to turbines and compressors. Isentropic relations provide ideal outlet conditions for efficiency calculations.

  • Lesson 2 • Entropy as a Thermodynamic Property

    Derives entropy from the Clausius inequality and establishes it as a state property. Entropy's state-function nature allows calculation along any convenient path.

  • Lesson 3 • Entropy Change of Pure Substances

    Calculates entropy changes using property tables and T-ds relations for ideal gases. Accurate entropy change calculation is prerequisite to isentropic process analysis.

  • Lesson 4 • Entropy Balance for Open Systems

    Extends entropy balance to steady-flow and transient control volumes. Open-system entropy balance identifies irreversibility in turbines, compressors, and mixers.

  • Lesson 5 • Entropy Balance for Closed Systems

    Formulates entropy balance with heat transfer and entropy generation terms. Entropy generation quantifies irreversibility in any closed-system process.

Chapter 7See details

Power and Refrigeration Cycles

  • Lesson 1 • Brayton Cycle for Gas Turbines

    Analyses the ideal and actual Brayton cycle for gas turbine power systems. Back-work ratio distinguishes gas turbines from steam cycles in performance analysis.

  • Lesson 2 • Rankine Cycle Analysis

    Models the ideal Rankine cycle for steam power plants with four steady-flow devices. Rankine cycle efficiency and net work set the baseline for real plant performance.

  • Lesson 3 • Rankine Cycle Modifications

    Covers reheat and regenerative Rankine cycles that improve thermal efficiency. Modifications reduce irreversibility and increase average heat addition temperature.

  • Lesson 4 • Vapour-Compression Refrigeration Cycle

    Models the standard vapour-compression cycle with compressor, condenser, valve, and evaporator. COP calculation and refrigerant selection criteria are central outcomes.

  • Lesson 5 • Otto and Diesel Cycles

    Analyses air-standard Otto and Diesel cycles as models for reciprocating engines. Compression ratio and cutoff ratio govern efficiency in each respective cycle.

  • Lesson 6 • Brayton Cycle Enhancements

    Adds regeneration, intercooling, and reheating to the Brayton cycle. Each enhancement targets a specific source of irreversibility to raise overall efficiency.

Chapter 8See details

Exergy Analysis and System Optimisation

  • Lesson 1 • Exergy Concept and Dead State

    Defines exergy as maximum useful work relative to the dead state environment. Dead state selection determines the reference for all exergy calculations in a system.

  • Lesson 2 • Exergy Analysis of Power Cycles

    Applies exergy balance to Rankine and Brayton cycle components to locate losses. Exergy destruction maps guide engineers toward the highest-impact design improvements.

  • Lesson 3 • Second-Law Efficiency

    Defines second-law efficiency as actual performance divided by reversible performance. Second-law efficiency reveals how effectively a device uses its exergy input.

  • Lesson 4 • Exergy Balance for Systems

    Formulates exergy balance relating exergy input, output, and destruction. Exergy destruction equals temperature times entropy generation by the Gouy-Stodola theorem.

  • Lesson 5 • Exergy of Heat and Work

    Derives exergy associated with heat transfer at a given temperature and with work. Heat exergy depends on source temperature relative to the dead state temperature.

Certification

Your valid completion certificate

This course is for you:

  • Mechanical engineering students: need to pass thermodynamics coursework with real understanding.

  • Chemical engineering undergraduates: encounter thermodynamic systems in process design courses.

  • HVAC technicians: want to understand the science behind the systems they install daily.

  • Early-career power plant engineers: need to close gaps between classroom theory and plant reality.

  • Aerospace engineering students: must apply cycle analysis to propulsion and gas turbine systems.

  • Career changers entering energy engineering: lack formal thermodynamics training from prior studies.

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