Semi-classical Approximation PVTN Properties via Configuration Integral from Intermolecular Effects Grand Canonical Ensemble II - Examples Postulates of Statistical Mechanics, Gibbs Ensembles ( PDF)Ĭomputation of Ideal Gas Properties from Intramolecular Effects - Translation, Rotation, Vibration using Statistical Mechanics IĬomputation of the Properties of Ideal Gases ( PDF)Ĭomputation of Ideal Gas Properties from Intramolecular Effects - Translation, Rotation, Vibration using Statistical Mechanics IIĪppendix to Session 21-24 Statistical Mechanics Readings: Connection to Thermodynamics and Derivation of Boltzmann Distribution ( PDF)Ĭlassical Statistical Mechanics Hamiltonian and Ideal Gases Factoring the Partition Function with the Semi-classical Approximation PVTN Properties via Configuration Integral from Intermolecular Effects Grand Canonical Ensemble I Postulates of Statistical Mechanics Gibbs Ensembles - Micro-canonical and Canonical States of System Probabilities Part II - Introduction to Statistical Mechanics for the Interpretation of Thermodynamic Functions and the Computation of Thermodynamic Propertiesįundamental Principles of Quantum and Classical Statistical Mechanics - N-body Problem Phase Space Statistics and Distribution Functions and Averaging Methods Boltzmann Distributionįundamental Principles of Quantum and Classical Statistical Mechanics ( PDF) Mixture Equations of State, Continued and Needs Ideal Solution Conditions Excess Properties Activity and Activity Coefficients Δ_G EX_-γi Models (See Table 11.1) Standard States Thermodynamic Consistency using the Gibbs-Duhem Relation Mixtures PVTN EOSs Partial Molar Properties Gibbs-Duhem Relation Mixing Functions Discuss Problem 9.2 Ideal Gas Mixtures and Ideal Solutions Fugacity and Fugacity Coefficients Standard States Real Fluid Properties PVTN Equations of State Ideal Gas Heat Capacity C p*ĭeparture Functions Concepts and Applications Standard Δ_G°_ and Δ_H°_ of Formation Pure Component Properties Fundundamental Equation Theorem of Corresponding States Constitutive Property Models - Stress Connections to Molecular Level Interactions and Effects Stability Criteria, Concepts and Applications Critical States Legendre Transforms Continued Connections to the Gibbs Surface and Other Derived PropertiesĮquilibrium Criteria Concepts and Applications - Phase, Chemical, and Membrane Phase Rule Examples of Simple Phase Diagrams Legendre Transformations Equivalent Forms of the Fundamental Equation Examples Thermodynamic Properties of Pure Materials ( PDF)ĭerivative Transformation and Manipulation Maxwell Relations Jacobian Transformations
#Introductory chemical engineering thermodynamics pdf plus
ISBN: 9780139153563.Ī bibliography of supplementary readings is included below the table.Ĭourse Outline Motivation to Connect Classical Concepts and Laws to Physical Properties from Macroscopic to Molecular Definitions Nomenclature Exams Plus Homework Policy Approach to Solving Problems Constitutive Property Models and the Ideal Gas State Postulatory Approach 1st Law Conceptsġst Law Concepts (Work, Heat, and Energy) Closed and Open System Treatments, Including PE Plus KE Effects Tank Blowdown ġ (all sections), 2 (all sections), 3.1-3.8ġst Law Open Systems Tank Blowdown and Filling - Class Examples Problem 3.9Ģnd Law Concepts Reversible Heat Engines Carnot Efficiency Entropy Clausius Theorem Reversibility Įntropy Balance 1st and 2nd Laws Combined Ģnd Law Concepts and Applications Steady State and Transient Flow WorkĪvailability and Exergy Concepts Heat Integration and Pinch Analysis Power Cycle Analysis Ĭalculus of Thermodynamics Gibbs Fundamental Equation Graphical Interpretation of Fundamental Surface Upper Saddle River, NJ: Prentice Hall PTR, 1996.
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This text is distinctive in making molecular perspectives accessible at the introductory level and connecting properties with practical implications.Arrow_back browse course material library_booksĬhapter readings in the table are from the course text, Tester, J.
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Introductory Chemical Engineering Thermodynamics, Second Edition, helps readers master the fundamentals of applied thermodynamics as practiced today: with extensive development of molecular perspectives that enables adaptation to fields including biological systems, environmental applications, and nanotechnology. A Practical, Up-to-Date Introduction to Applied Thermodynamics, Including Coverage of Process Simulation Models and an Introduction to Biological Systems