Preface |
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xi | |
Brief guide on the use of symbols |
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xiii | |
1 Introduction |
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1 | (26) |
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1.1 The nature of turbulence |
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1 | (3) |
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1 | (1) |
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2 | (1) |
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2 | (1) |
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Three-dimensional vorticity fluctuations |
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2 | (1) |
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3 | (1) |
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3 | (1) |
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Turbulent flows are flows |
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3 | (1) |
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4 | (3) |
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5 | (1) |
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5 | (1) |
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6 | (1) |
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1.3 The origin of turbulence |
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7 | (1) |
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1.4 Diffusivity of turbulence |
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8 | (6) |
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Diffusion in a problem with an imposed length scale |
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8 | (2) |
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10 | (1) |
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Diffusion in a problem with an imposed time scale |
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11 | (3) |
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1.5 Length scales in turbulent flows |
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14 | (10) |
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14 | (1) |
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Diffusive and convective length scales |
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15 | (1) |
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Turbulent boundary layers |
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16 | (1) |
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Laminar and turbulent friction |
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17 | (2) |
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Small scales in turbulence |
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19 | (1) |
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An inviscid estimate for the dissipation rate |
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20 | (1) |
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21 | (2) |
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Molecular and turbulent scales |
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23 | (1) |
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1.6 Outline of the material |
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24 | (3) |
2 Turbulent Transport Of Momentum And Heat |
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27 | (32) |
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2.1 The Reynolds equations |
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27 | (7) |
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The Reynolds decomposition |
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28 | (1) |
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29 | (1) |
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Equations for the mean flow |
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30 | (2) |
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32 | (1) |
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Turbulent transport of heat |
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33 | (1) |
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2.2 Elements of the kinetic theory of gases |
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34 | (6) |
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34 | (1) |
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35 | (3) |
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Characteristic times and lengths |
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38 | (1) |
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The correlation between v1 and v2 |
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38 | (1) |
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39 | (1) |
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2.3 Estimates of the Reynolds stress |
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40 | (10) |
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Reynolds stress and vortex stretching |
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40 | (2) |
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42 | (2) |
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44 | (1) |
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A neglected transport term |
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45 | (1) |
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The mixing length as an integral scale |
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45 | (2) |
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The gradient-transport fallacy |
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47 | (2) |
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49 | (1) |
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49 | (1) |
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2.4 Turbulent heat transfer |
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50 | (2) |
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51 | (1) |
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51 | (1) |
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2.5 Turbulent shear flow near a rigid wall |
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52 | (7) |
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A flow with constant stress |
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54 | (1) |
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55 | (1) |
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The mixing-length approach |
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55 | (2) |
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The limitations of mixing-length theory |
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57 | (2) |
3 The Dynamics Of Turbulence |
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59 | (45) |
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3.1 Kinetic energy of the mean flow |
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59 | (4) |
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60 | (2) |
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62 | (1) |
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3.2 Kinetic energy of the turbulence |
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63 | (12) |
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Production equals dissipation |
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64 | (1) |
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65 | (2) |
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67 | (1) |
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68 | (1) |
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69 | (1) |
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70 | (4) |
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74 | (1) |
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75 | (20) |
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Vorticity vector and rotation tensor |
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76 | (1) |
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Vortex terms in the equations of motion |
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76 | (2) |
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Reynolds stress and vorticity |
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78 | (3) |
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81 | (3) |
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Vorticity in turbulent flows |
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84 | (1) |
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Two-dimensional mean flow |
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85 | (1) |
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86 | (1) |
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86 | (1) |
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87 | (1) |
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An approximate vorticity budget |
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88 | (4) |
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92 | (1) |
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Stretching of magnetic field lines |
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93 | (2) |
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3.4 The dynamics of temperature fluctuations |
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95 | (9) |
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Microscales in the temperature field |
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95 | (2) |
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97 | (1) |
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98 | (1) |
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99 | (1) |
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100 | (1) |
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Convection in the atmospheric boundary layer |
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100 | (4) |
4 Boundary-Free Shear Flows |
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104 | (42) |
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4.1 Almost parallel, two-dimensional flows |
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104 | (9) |
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104 | (2) |
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The cross-stream momentum equation |
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106 | (2) |
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The streamwise momentum equation |
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108 | (1) |
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109 | (1) |
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Turbulent jets and mixing layers |
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110 | (1) |
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111 | (1) |
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112 | (1) |
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113 | (11) |
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113 | (2) |
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The mean-velocity profile |
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115 | (3) |
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118 | (1) |
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119 | (1) |
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The turbulent energy budget |
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120 | (4) |
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4.3 The wake of a self-propelled body |
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124 | (3) |
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125 | (2) |
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127 | (1) |
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4.4 Turbulent jets and mixing layers |
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127 | (6) |
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128 | (1) |
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129 | (2) |
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The energy budget in a plane jet |
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131 | (2) |
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4.5 Comparative structure of wakes, jets, and mixing layers |
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133 | (2) |
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135 | (11) |
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136 | (5) |
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141 | (1) |
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142 | (1) |
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142 | (4) |
5 Wall-Bounded Shear Flows |
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146 | (51) |
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5.1 The problem of multiple scales |
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146 | (3) |
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147 | (1) |
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147 | (2) |
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5.2 Turbulent flows in pipes and channels |
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149 | (17) |
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149 | (3) |
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The surface layer on a smooth wall |
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152 | (1) |
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153 | (1) |
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153 | (3) |
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156 | (1) |
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156 | (1) |
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Experimental data on pipe flow |
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157 | (1) |
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158 | (3) |
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Experimental data on the law of the wall |
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161 | (1) |
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Experimental data on the velocity-defect law |
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162 | (1) |
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163 | (1) |
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164 | (2) |
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5.3 Planetary boundary layers |
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166 | (5) |
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166 | (1) |
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167 | (1) |
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167 | (1) |
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168 | (1) |
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The logarithmic wind profile |
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169 | (1) |
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Ekman layers in the ocean |
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170 | (1) |
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5.4 The effects of a pressure gradient on the flow in surface layers |
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171 | (6) |
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A second-order correction to pipe flow |
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174 | (1) |
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The slope of the logarithmic velocity profile |
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175 | (2) |
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5.5 The downstream development of turbulent boundary layers |
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177 | (20) |
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179 | (2) |
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The pressure inside the boundary layer |
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181 | (1) |
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The boundary-layer equation |
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182 | (2) |
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184 | (1) |
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The flow in the wall layer |
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185 | (1) |
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185 | (1) |
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The logarithmic friction law |
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186 | (1) |
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The pressure-gradient parameter |
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186 | (2) |
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Free-stream velocity distributions |
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188 | (2) |
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Boundary layers in zero pressure gradient |
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190 | (4) |
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Transport of scalar contaminants |
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194 | (3) |
6 The Statistical Description Of Turbulence |
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197 | (26) |
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6.1 The probability density |
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197 | (4) |
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6.2 Fourier transforms and characteristic functions |
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201 | (6) |
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The effects of spikes and discontinuities |
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203 | (2) |
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205 | (2) |
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6.3 Joint statistics and statistical independence |
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207 | (3) |
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6.4 Correlation functions and spectra |
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210 | (6) |
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The convergence of averages |
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211 | (1) |
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212 | (2) |
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The Fourier transform of p(r) |
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214 | (2) |
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6.5 The central limit theorem |
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216 | (7) |
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The statistics of integrals |
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218 | (2) |
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A generalization of the theorem |
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220 | (1) |
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More statistics of integrals |
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220 | (3) |
7 Turbulent Transport |
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223 | (25) |
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7.1 Transport in stationary, homogeneous turbulence |
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223 | (7) |
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223 | (1) |
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Stationary, homogeneous turbulence without mean velocity |
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224 | (2) |
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The probability density of the Lagrangian velocity |
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226 | (3) |
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The Lagrangian integral scale |
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229 | (1) |
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230 | (1) |
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7.2 Transport in shear flows |
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230 | (5) |
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230 | (2) |
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232 | (1) |
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Longitudinal dispersion in channel flow |
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233 | (2) |
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Bulk velocity measurements in pipes |
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235 | (1) |
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7.3 Dispersion of contaminants |
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235 | (6) |
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The concentration distribution |
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235 | (2) |
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The effects of molecular transport |
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237 | (1) |
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The effect of pure, steady strain |
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238 | (3) |
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Transport at large scales |
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241 | (1) |
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7.4 Turbulent transport in evolving flows |
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241 | (7) |
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Thermal wake in grid turbulence |
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242 | (1) |
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243 | (2) |
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Dispersion relative to the decaying turbulence |
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245 | (1) |
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The Gaussian distribution |
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246 | (1) |
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Dispersion in shear flows |
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246 | (2) |
8 Spectral Dynamics |
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248 | (40) |
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8.1 One- and three-dimensional spectra |
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248 | (8) |
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Aliasing in one-dimensional spectra |
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248 | (2) |
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The three-dimensional spectrum |
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250 | (1) |
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The correlation tensor and its Fourier transform |
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250 | (1) |
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Two common one-dimensional spectra |
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251 | (2) |
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253 | (1) |
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Spectra of isotropic simple waves |
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254 | (2) |
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256 | (6) |
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258 | (1) |
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258 | (2) |
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260 | (2) |
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8.3 The spectrum of turbulence |
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262 | (5) |
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The spectrum in the equilibrium range |
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262 | (2) |
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264 | (1) |
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264 | (3) |
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8.4 The effects of production and dissipation |
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267 | (7) |
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The effect of dissipation |
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269 | (2) |
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271 | (1) |
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Approximate spectra for large Reynolds numbers |
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272 | (2) |
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274 | (5) |
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277 | (1) |
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The Lagrangian integral time scale |
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277 | (1) |
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An approximate Lagrangian spectrum |
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278 | (1) |
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8.6 Spectra of passive scalar contaminants |
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279 | (9) |
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One- and three-dimensional spectra |
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280 | (1) |
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The cascade in the temperature spectrum |
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281 | (1) |
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Spectra in the equilibrium range |
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282 | (1) |
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The inertial-diffusive subrange |
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283 | (1) |
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The viscous-convective subrange |
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284 | (1) |
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The viscous-diffusive subrange |
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285 | (1) |
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286 | (2) |
Bibliography and references |
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288 | (7) |
Index |
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295 | |