1CHAPTER 1 Introduction to Fluid Mechanics and Heat Transfer
518.1 Convection Mechanisms
21.1 Importance of Fluid Mechanics and Heat Transfer
528.2 Newton’s Law of Cooling
31.2 Fundamental Concepts and Definitions
538.3 Forced Convection
41.3 Dimensions and Units
548.4 Natural Convection
51.4 Continuum Hypothesis
558.5 Correlations for Convection Coefficients
61.5 Properties of Fluids
568.6 Heat Transfer in Boundary Layers
71.6 Modes of Heat Transfer
57CHAPTER 9 Radiation Heat Transfer
8CHAPTER 2 Fluid Statics
589.1 Blackbody Radiation
92.1 Pressure and Pressure Measurement
599.2 Planck’s Law and Stefan-Boltzmann Law
102.2 Hydrostatic Pressure
609.3 View Factors and Radiative Exchange
112.3 Manometry
619.4 Radiation Heat Transfer in Enclosures
122.4 Buoyancy and Archimedes’ Principle
629.5 Radiation Heat Transfer in Participating Media
132.5 Surface Tension
639.6 Radiation Shielding and Surface Properties
142.6 Capillary Effects
64CHAPTER 10 Heat Exchangers
15CHAPTER 4 Fluid Kinematics
6510.1 Types of Heat Exchangers
163.1 Flow Visualization
6610.2 Overall Heat Transfer Coefficient
173.2 Lagrangian and Eulerian Descriptions
6710.3 Log Mean Temperature Difference (LMTD)
183.3 Streamlines, Pathlines, and Streaklines
6810.4 Effectiveness-NTU Method
193.4 Vorticity and Circulation
6910.5 Heat Exchanger Analysis and Design
203.5 Deformation and Strain Rate
7010.6 Fouling and Maintenance
213.6 Rotational and Irrotational Flow
71CHAPTER 11 Boiling and Condensation
22CHAPTER 4 Conservation Laws for Fluid Flow
7211.1 Boiling Mechanisms
234.1 Mass Conservation (Continuity Equation)
7311.2 Pool Boiling
244.2 Momentum Conservation (Navier-Stokes Equations)
7411.3 Flow Boiling
254.3 Energy Conservation (Energy Equation)
7511.4 Critical Heat Flux
264.4 Bernoulli’s Equation
7611.5 Condensation Mechanisms
274.5 Applications of Bernoulli’s Equation
7711.6 Film Condensation
284.6 Dimensional Analysis and Similarity
78CHAPTER 12 Compressible Flow
29CHAPTER 5 Viscous Flow in Pipes
7912.1 Isentropic Flow
305.1 Laminar and Turbulent Flow
8012.2 Normal Shock Waves
315.2 Reynolds Number
8112.3 Oblique Shock Waves
325.3 Hagen-Poiseuille Flow
8212.4 Nozzles and Diffusers
335.4 Darcy-Weisbach Equation
8312.5 Supersonic Flow and Shock Tube
345.5 Major and Minor Losses
8412.6 Compressible Flow with Heat Transfer
355.6 Pipe Networks
85CHAPTER 13 Turbomachinery
36CHAPTER 6 External Flow and Boundary Layers
8613.1 Centrifugal Pumps
376.1 Boundary Layer Concept
8713.2 Axial Flow Pumps
386.2 Laminar Boundary Layer
8813.3 Fans and Blowers
396.3 Turbulent Boundary Layer
8913.4 Compressors
406.4 Separation and Drag
9013.5 Turbines
416.5 Lift and Aerodynamic Forces
9113.6 Cavitation and Pump Performance
426.6 Computational Fluid Dynamics (CFD)
92Chapter 14 Measurement and Instrumentation
43CHAPTER 7 Heat Conduction
9314.1 Pressure Measurement
447.1 Fourier’s Law of Heat Conduction
9414.2 Temperature Measurement
457.2 Steady-State Conduction
9514.3 Flow Measurement
467.3 Transient Conduction
9614.4 Thermal Anemometry
477.4 Thermal Resistance and Thermal Circuits
9714.5 Laser Doppler Anemometry (LDA)
487.5 Numerical Methods for Conduction
9814.6 Particle Image Velocimetry (PIV)
497.6 Extended Surfaces (Fins)
99Glossary
50CHAPTER 8 Convection Heat Transfer
100Index