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AN EFFICIENT NUMERICAL MODEL OF PULSATING COMBUSTION AND ITS EXPERIMENTAL VALIDATION

机译:脉动燃烧的有效数值模型及其实验验证

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A simple and efficient numerical model is presented for the simulation of pulse combustors. It is based on the numerical solution of the quasi-1D unsteady flow equations and on phenomenological sub-models of turbulence and combustion. The gas dynamics equations are solved by using the Flux Difference Splitting (FDS) technique, a finite-volume upwind numerical scheme, and ENO reconstructions to obtain second-order accurate non-oscillatory solutions. The numerical fluxes computed at the cell interfaces are used to transport also the reacting species, their formation energy and the turbulent kinetic energy. The combustion progress in each cell is evaluated explicitly at the end of each time step according to a second-order overall reaction kinetics. In this way, the computations of gas dynamic evolution and heat release are decoupled, which makes the model particularly simple and efficient. A comprehensive set of measurements has been performed on a small Helmholtz type pulse-jet in order to validate the model. Air and fuel consumptions, wall temperatures, pressure cycles in both combustion chamber and tail-pipe, and instantaneous thrust have been recorded in different operating conditions of the device. The comparison between numerical and experimental results turns out to be satisfactory in all the working conditions of the pulse-jet. In particular, accurate predictions are obtained of the device operating frequency and of shape, amplitude and phase of the pressure waves in both combustion chamber and tail-pipe.
机译:提出了一种简单有效的数值模型,用于脉冲燃烧器的仿真。它基于准一维非定常流动方程的数值解以及湍流和燃烧的现象学子模型。气体动力学方程是通过使用磁通量差异分裂(FDS)技术,有限体积迎风数值方案和ENO重构来求解的,从而获得了二阶精确的非振动解。在细胞界面处计算出的数值通量还用于传输反应物质,其形成能和湍动能。在每个时间步骤的末尾,根据二级总体反应动力学明确评估每个单元中的燃烧进程。这样,气体动力学演变和热量释放的计算被解耦,这使得该模型特别简单和有效。为了验证模型,已在小型亥姆霍兹(Helmholtz)型脉冲射流上执行了一组全面的测量。在设备的不同运行条件下,已记录了空气和燃料消耗,壁温,燃烧室和尾管中的压力循环以及瞬时推力。数值结果和实验结果之间的比较在脉冲喷射器的所有工作条件下均令人满意。特别是,可以获得设备运行频率以及燃烧室和尾管中压力波的形状,幅度和相位的准确预测。

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