INTRODUCTION TO FLUID MECHANICS
Chapter 4 Basic Equations in Integral Form for a Integral Form for a Control Volume Lecturer: M. R. Mohaghegh © Fox, Pritchard, & McDonald INTRODUCTION TO FLUID MECHANICS Mi T i a n Topics Basic Laws for a System Basic Laws for a System Relation of System Derivatives to the Control Volume Formulation to the Control Volume Formulation Conservation of Mass Momentum Equation for Momentum Equation for Inertial Control Volume Momentum Equation for Inertial Control Momentum Equation for Inertial Control Volume with Rectilinear Acceleration The Angular Momentum Principle The Angular Momentum Principle The First Law of Thermodynamics The Second Law of Thermodynamics Lecturer: M. R. Mohaghegh © Fox, Pritchard, & McDonald The Second Law of Thermodynamics Basic Laws for a System Conservation of Mass Lecturer: M. R. Mohaghegh © Fox, Pritchard, & McDonald Basic Laws for a System Momentum Equation for Inertial Control Volume Inertial Control Volume Lecturer: M. R. Mohaghegh © Fox, Pritchard, & McDonald Basic Laws for a System The Angular Momentum Principle Lecturer: M. R. Mohaghegh © Fox, Pritchard, & McDonald Basic Laws for a System The First Law of Thermodynamics Lecturer: M. R. Mohaghegh © Fox, Pritchard, & McDonald Basic Laws for a System The Second Law of Thermodynamics Lecturer: M. R. Mohaghegh © Fox, Pritchard, & McDonald Relation of System Derivatives to Relation of System Derivatives to the Control Volume Formulation Extensive and Intensive Pro perties Lecturer: M. R. Mohaghegh © Fox, Pritchard, & McDonald R l i fS D i i R e lat ion o f System Der ivat ives to the Control Volume Formulation the Control Volume Formulation R ld T t Th Reynolds Transpor t Theorem
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pritchard
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introduction to fluid mechanics
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chapter 4 basic equations in integral form for a integral form for a control volume lecturer m r mohaghegh © fox
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amp mcdonald introduction to fluid mec