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Numerical simulation of cryogenic cavitating flow by an extended transport-based cavitation model with thermal effects
Affiliation:1. National-Provincial Joint Engineering Laboratory for Fluid Transmission System Technology, Zhejiang Sci-Tech University, Hangzhou 310018, China;2. Land Space Technology Corporation Ltd., Beijing 100176, China;1. School of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, China;2. Science and Technology on Liquid Rocket Engine Laboratory, Xi''an 710100, China;3. Hubei Key Laboratory of Waterjet Theory and New Technology, Wuhan University, Wuhan 430072, China
Abstract:Thermodynamic effects on cryogenic cavitating flow is important to the accuracy of numerical simulations mainly because cryogenic fluids are thermo-sensitive, and the vapour saturation pressure is strongly dependent on the local temperature. The present study analyses the thermal cavitating flows in liquid nitrogen around a 2D hydrofoil. Thermal effects were considered using the RNG k-ε turbulence model with a modified turbulent eddy viscosity and the mass transfer homogenous cavitation model coupled with energy equation. In the cavitation model process, the saturated vapour pressure is modified based on the Clausius-Clapron equation. The convection heat transfer approach is also considered to extend the Zwart-Gerber-Belamri model. The predicted pressure and temperature inside the cavity under cryogenic conditions show that the modified Zwart-Gerber-Belamri model is in agreement with the experimental data of Hord et al. in NASA, especially in the thermal field. The thermal effect significantly affects the cavitation dynamics during phase-change process, which could delay or suppress the occurrence and development of cavitation behaviour. Based on the modified Zwart-Gerber-Belamri model proposed in this paper, better prediction of the cryogenic cavitation is attainable.
Keywords:Cavitating flow  Cryogenic fluid  Thermal effects  Cavitation model
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