Cal Ismael R, Cercos-Pita Jose Luis, Duque Daniel
a Nasal Advanced Systems of Airflow Laboratories , Madrid , Spain .
b Canal de Ensayos Hidrodinámicos (CEHINAV), E.T.S.I Navales , Universidad Politécnica de Madrid , Madrid , Spain .
Comput Methods Biomech Biomed Engin. 2017 Jun;20(8):853-868. doi: 10.1080/10255842.2017.1307343. Epub 2017 Apr 3.
Most of the computational works on nasal airflow up to date have assumed incompressibility, given the low Mach number of these flows. However, for high temperature gradients, the incompressibility assumption could lead to a loss of accuracy, due to the temperature dependence of air density and viscosity. In this article we aim to shed some light on the influence of this assumption in a model of calm breathing in an Asian nasal cavity, by solving the fluid flow equations in compressible and incompressible formulation for different ambient air temperatures using the OpenFOAM package. At low flow rates and warm climatological conditions, similar results were obtained from both approaches, showing that density variations need not be taken into account to obtain a good prediction of all flow features, at least for usual breathing conditions. This agrees with most of the simulations previously reported, at least as far as the incompressibility assumption is concerned. However, parameters like nasal resistance and wall shear stress distribution differ for air temperatures below [Formula: see text]C approximately. Therefore, density variations should be considered for simulations at such low temperatures.