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Gas self-ignition in a plane vortex chamber

机译:飞机涡流室中的气体点火

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This paper describes the numerical modeling of gas flow in a plane vortex chamber by using the Navier-Stokes equations. The model is based on the laws of conservation of mass, momentum, and energy for nonstationary two-dimensional compressible gas flow in the case of axial symmetry with a tangential component of the gas velocity. The processes of viscosity, thermal conductivity, and turbulence are accounted for. It is shown that the transition of the kinetic energy of gas into thermal energy as a result of transfer processes leads to the formation of hot spots in the boundary layers near the walls of the chamber. The gas temperature at these hot spots can exceed the gas combustion temperature, while the gas remains rather cold in the neighboring regions. This could be the reason for the cold gas self-ignition observed in the experiments. The turbulence of the flow and the processes of mixing and diffusion of the components make a significant contribution to the capacity of gas self-ignition.
机译:本文通过使用Navier-Stokes方程描述了平面涡流室中气流的数值建模。该模型基于在具有轴对称的轴对称的轴对称的轴对称的情况下的质量,动量和能量保守定律。占粘度,导热性和湍流的过程。结果表明,由于转移过程的结果,气体的动能转变为热能导致在腔室壁附近的边界层中形成热点。这些热点的气体温度可能超过气体燃烧温度,而气体在相邻区域中仍然变冷。这可能是在实验中观察到冷气自燃的原因。流动的湍流和混合和扩散的过程对气体自燃的能力产生了显着的贡献。

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