Abstract
Effective high-order solver based on the model of thermally perfect gas has been developed for hypersonic heat transfer computation. The technique of polynomial curve fit coupling to thermodynamics equation is suggested to establish the current model and particular attention has been paid to the design of proper numerical flux for thermally perfect gas. We present procedures that unify five-order WENO (Weighted Essentially Non-Oscillatory) scheme in the existing second-order finite volume framework and a line-implicit method that improves the computational efficiency without increasing memory consumption. A variety of hypersonic viscous flows are performed to examine the capability of the resulted high order thermally perfect gas solver. Numerical results demonstrate its superior performance compared to low-order calorically perfect gas method and indicate its potential application to hypersonic heating predictions for real-life problem.
Original language | English |
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Pages (from-to) | 147-159 |
Number of pages | 13 |
Journal | Applied Thermal Engineering |
Volume | 99 |
DOIs | |
State | Published - 25 Apr 2016 |
Externally published | Yes |
Keywords
- Hypersonic heating
- Line implicit
- Thermally perfect gas
- WENO