Nomenclature: Difference between revisions
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| The production of turbulence kinetic energy. In a steady, spatially uniform and stratified shear flow, turbulence kinetic energy is produced by the product of the Reynolds stress and the shear, for example <math>P = -\overline{u'w'}\frac{\partial U}{\partial z} </math> . The production is balanced by the rate of dissipation turbulence kinetic energy, <math>\varepsilon</math>, and the production of potential energy by the buoyancy flux, <math>B</math>. | | The production of turbulence kinetic energy. In a steady, spatially uniform and stratified shear flow, turbulence kinetic energy is produced by the product of the Reynolds stress and the shear, for example <math>P = -\overline{u'w'}\frac{\partial U}{\partial z} </math> . The production is balanced by the rate of dissipation turbulence kinetic energy, <math>\varepsilon</math>, and the production of potential energy by the buoyancy flux, <math>B</math>. | ||
| <math>P = -\overline{u'w'}\frac{\partial U}{\partial z} = \varepsilon + B</math> | | <math>P = -\overline{u'w'}\frac{\partial U}{\partial z} = \varepsilon + B</math> | ||
| <math> | | <math>\mathrm{W\, kg^{-1}}</math> | ||
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| <math>R_f</math> | | <math>R_f</math> | ||
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| <math>\Gamma</math> | | <math>\Gamma</math> | ||
| "Mixing coefficient"; | | "Mixing coefficient"; The ratio of the rate of production of potential energy, <math>B</math>, to the rate of dissipation of kinetic energy, <math>\varepsilon</math>. | ||
| <math>\Gamma = \frac{B}{\varepsilon} = \frac{R_f}{1-R_f}</math> | | <math>\Gamma = \frac{B}{\varepsilon} = \frac{R_f}{1-R_f}</math> | ||
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Revision as of 21:05, 10 December 2021