Introduction |
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ix | |
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Section A Basic Transport Relations |
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1 Conservation Laws and Transport Laws |
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3 | (2) |
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5 | (6) |
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5 | (1) |
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2.2 Conservation of Momentum |
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6 | (2) |
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8 | (1) |
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9 | (2) |
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3 Microscopic Interpretation of the Momentum Flux |
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11 | (2) |
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4 Heat Transfer in a Pure Fluid |
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13 | (6) |
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5 Concentrations and Velocities in Mixtures |
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19 | (4) |
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6 Material Balances and Diffusion |
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23 | (4) |
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7 Relaxation Time for Diffusion |
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27 | (4) |
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8 Multicomponent Diffusion |
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31 | (8) |
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9 Heat Transfer in Mixtures |
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39 | (2) |
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41 | (6) |
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47 | (6) |
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12 Coupled Transport Processes |
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53 | (30) |
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56 | (2) |
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12.2 Thermoelectric Effects |
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58 | (9) |
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60 | (1) |
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12.2.2 Thermoelectric Equation |
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61 | (1) |
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12.2.3 Heat Generation at an Interface |
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62 | (1) |
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12.2.4 Heat Generation in the Bulk |
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63 | (1) |
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12.2.5 Thermoelectric Engine |
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63 | (2) |
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65 | (2) |
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12.3 Fluctuations and Microscopic Reversibility |
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67 | (16) |
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68 | (2) |
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70 | (1) |
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12.3.3 Microscopic Reversibility and Probability of States |
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71 | (2) |
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12.3.4 Decay of Fluctuations |
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73 | (1) |
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74 | (9) |
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Section B Laminar Flow Solutions |
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83 | (4) |
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87 | (8) |
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14.1 Steady Flow in a Pipe or Poiseuille Flow |
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87 | (1) |
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88 | (1) |
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14.3 Impulsive Motion of a Flat Plate |
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88 | (7) |
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15 Stokes Flow past a Sphere |
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95 | (6) |
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16 Flow to a Rotating Disk |
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101 | (6) |
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17 Singular-Perturbation Expansions |
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107 | (10) |
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18 Creeping Flow past a Sphere |
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117 | (6) |
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19 Mass Transfer to a Sphere in Stokes Flow |
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123 | (8) |
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20 Mass Transfer to a Rotating Disk |
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131 | (4) |
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21 Boundary-Layer Treatment of a Flat Plate |
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135 | (6) |
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22 Boundary-Layer Equations of Fluid Mechanics |
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141 | (6) |
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23 Curved Surfaces and Blasius Series |
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147 | (6) |
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24 The Diffusion Boundary Layer |
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153 | (14) |
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25 Blasius Series for Mass Transfer |
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167 | (6) |
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26 Graetz-Nusselt-Leveque Problem |
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173 | (10) |
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26.1 Solution by Separation of Variables |
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174 | (2) |
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26.2 Solution for Very Short Distances |
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176 | (1) |
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26.3 Extension of Leveque Solution |
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177 | (1) |
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26.4 Mass Transfer in Annuli |
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178 | (5) |
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183 | (6) |
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28 High Rates of Mass Transfer |
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189 | (8) |
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29 Heterogeneous Reaction at a Flat Plate |
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197 | (10) |
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30 Mass Transfer to the Rear of a Sphere in Stokes Flow |
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207 | (10) |
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217 | (6) |
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32 Stefan-Maxwell Mass Transport |
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223 | (28) |
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Section C Transport in Turbulent Flow |
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33 Turbulent Flow and Hydrodynamic Stability |
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251 | (4) |
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33.1 Time Averages of Equations of Motion, Continuity, and Convective Diffusion |
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251 | (1) |
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33.2 Hydrodynamic Stability |
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252 | (1) |
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33.3 Eddy Viscosity, Eddy Diffusivity, and Universal Velocity Profile |
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252 | (1) |
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33.4 Application of These Results to Boundary Layers |
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252 | (1) |
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33.5 Statistical Theories of Turbulence |
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253 | (2) |
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34 Time Averages and Turbulent Transport |
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255 | (6) |
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35 Universal Velocity Profile and Eddy Viscosity |
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261 | (4) |
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36 Turbulent Flow in a Pipe |
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265 | (4) |
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37 Integral Momentum Method for Boundary Layers |
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269 | (4) |
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38 Use of Universal Eddy Viscosity for Turbulent Boundary Layers |
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273 | (2) |
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39 Mass Transfer in Turbulent Flow |
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275 | (6) |
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40 Mass Transfer in Turbulent Pipe Flow |
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281 | (6) |
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41 Mass Transfer in Turbulent Boundary Layers |
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287 | (6) |
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42 New Perspective in Turbulence |
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293 | (4) |
Appendix A Vectors and Tensors |
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297 | (6) |
Appendix B Similarity Transformations |
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303 | (6) |
Index |
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309 | |