Modeling and Simulation of the Cavitation Phenomenon in a Turbopump: A Multiphase Approach

Joris Cazé, Fabien Petitpas, E. Daniel, S. Le Martelot, Matthieu Queguineur
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Abstract

In this study, cryogenic flows in rocket engine that may undergo a phase change because of a loss of pressure in pump, or any depressurization process are considered. We proposed a well-posed mathematical representation for this kind of flow as well as the numerical model for seeking the solutions. The two important points addressed in this study are: the compressibility of the phases and the use of a rotating reference frame. The compressibility effects are quite essentials to obtain a physical and realistic cavitation model through the equation of state of the fluids (liquid and vapor), while the moving reference frame being the way we chose to model the pump motion. The model we develop is based on conservation equations of mass, momentum and energy for each phase plus a non-conservative equation evolution for the volume fraction. The description of the flow is based on the diffuse interface method: the interfaces appear naturally in the flow (interfaces between vapor and liquid for example) and do not require any interface tracking method. The phase change process is based on a stiff relaxation procedure using thermodynamic equilibrium considerations. Results related to a pump application are then presented using the open-source platform ECOGEN where the present numerical method is implemented. The model is able to produce a quite realistic pump characteristic curve where the relationship between the pump overpressure and its operating mass flow rate is expressed. In these first calculations it will be shown that cavitation may occur in some regions of the flow and that the multiphase approach is suited for this study.
涡轮泵内空化现象的建模与仿真:多相方法
本研究考虑了由于泵内压力损失或任何降压过程而可能发生相变的火箭发动机低温流动。我们提出了这类流动的良好的数学表示和求解的数值模型。本研究的两个重点是:相位的可压缩性和旋转参考系的使用。通过流体(液体和蒸汽)的状态方程得到物理的、真实的空化模型,压缩效应是非常必要的,而我们选择了运动参考系来模拟泵的运动。我们开发的模型是基于每个相的质量、动量和能量守恒方程以及体积分数的非保守方程演化。流动的描述基于漫射界面法:界面在流动中自然出现(如汽液界面),不需要任何界面跟踪方法。相变过程基于使用热力学平衡考虑的硬松弛过程。然后使用开源平台ECOGEN提供与泵应用相关的结果,其中实现了当前的数值方法。该模型能够得到较为真实的泵特性曲线,并表达了泵超压与运行质量流量的关系。在这些最初的计算中,将表明空化可能发生在流动的某些区域,并且多相方法适合于本研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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