TY - JOUR
T1 - A robust and accurate numerical method for transcritical turbulent flows at supercritical pressure with an arbitrary equation of state
AU - Kawai, Soshi
AU - Terashima, Hiroshi
AU - Negishi, Hideyo
N1 - Funding Information:
This work was supported by Japan Society for the Promotion of Science (JSPS) Grant-in-Aid for Young Scientists (A) KAKENHI 26709066 . Much of the work was done when the first author was at Institute of Space and Astronautical Science, Japan Aerospace Exploration Agency. The authors gratefully acknowledge Dr. Hirofumi Tani for valuable discussions on thermodynamic and fluid transport properties at the transcritical conditions.
Publisher Copyright:
© 2015 Elsevier Inc..
PY - 2015/11/1
Y1 - 2015/11/1
N2 - This paper addresses issues in high-fidelity numerical simulations of transcritical turbulent flows at supercritical pressure. The proposed strategy builds on a tabulated look-up table method based on REFPROP database for an accurate estimation of non-linear behaviors of thermodynamic and fluid transport properties at the transcritical conditions. Based on the look-up table method we propose a numerical method that satisfies high-order spatial accuracy, spurious-oscillation-free property, and capability of capturing the abrupt variation in thermodynamic properties across the transcritical contact surface. The method introduces artificial mass diffusivity to the continuity and momentum equations in a physically-consistent manner in order to capture the steep transcritical thermodynamic variations robustly while maintaining spurious-oscillation-free property in the velocity field. The pressure evolution equation is derived from the full compressible Navier-Stokes equations and solved instead of solving the total energy equation to achieve the spurious pressure oscillation free property with an arbitrary equation of state including the present look-up table method. Flow problems with and without physical diffusion are employed for the numerical tests to validate the robustness, accuracy, and consistency of the proposed approach.
AB - This paper addresses issues in high-fidelity numerical simulations of transcritical turbulent flows at supercritical pressure. The proposed strategy builds on a tabulated look-up table method based on REFPROP database for an accurate estimation of non-linear behaviors of thermodynamic and fluid transport properties at the transcritical conditions. Based on the look-up table method we propose a numerical method that satisfies high-order spatial accuracy, spurious-oscillation-free property, and capability of capturing the abrupt variation in thermodynamic properties across the transcritical contact surface. The method introduces artificial mass diffusivity to the continuity and momentum equations in a physically-consistent manner in order to capture the steep transcritical thermodynamic variations robustly while maintaining spurious-oscillation-free property in the velocity field. The pressure evolution equation is derived from the full compressible Navier-Stokes equations and solved instead of solving the total energy equation to achieve the spurious pressure oscillation free property with an arbitrary equation of state including the present look-up table method. Flow problems with and without physical diffusion are employed for the numerical tests to validate the robustness, accuracy, and consistency of the proposed approach.
KW - High-order accurate schemes
KW - Real fluid effects
KW - Spurious-oscillation-free property
KW - Supercritical fluid
KW - Transcritical condition
KW - Transcritical contact surface capturing
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U2 - 10.1016/j.jcp.2015.07.047
DO - 10.1016/j.jcp.2015.07.047
M3 - Article
AN - SCOPUS:84939184148
SN - 0021-9991
VL - 300
SP - 116
EP - 135
JO - Journal of Computational Physics
JF - Journal of Computational Physics
ER -