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By Menzies A. W.

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For the present simulations we used the temperature profile given by the isothermal duct simulations, in order to avoid an additional uncertainty by introducing an energy sink to reproduce the cold temperature profile. For details of the duct simulation and definition of all the parameters see appendix B. We first present results of the inflow computation and afterwards describe the algorithm used to feed the duct data into the jet simulation. 11 (a) shows the normalized downstream velocity profiles along the two center axes of the duct.

G. 1). Freund (2001) computed a cold jet adapted to the experiments of Stromberg et al. (1980). The corresponding temperature profile cannot be enforced in a temporal simulation, where the flow is developed and statistically stationary. For the present simulations we used the temperature profile given by the isothermal duct simulations, in order to avoid an additional uncertainty by introducing an energy sink to reproduce the cold temperature profile. For details of the duct simulation and definition of all the parameters see appendix B.

G. 1). Freund (2001) computed a cold jet adapted to the experiments of Stromberg et al. (1980). The corresponding temperature profile cannot be enforced in a temporal simulation, where the flow is developed and statistically stationary. For the present simulations we used the temperature profile given by the isothermal duct simulations, in order to avoid an additional uncertainty by introducing an energy sink to reproduce the cold temperature profile. For details of the duct simulation and definition of all the parameters see appendix B.

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