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Accurate Computation of Grain Burning Coupled with Flow Simulation in Rocket Chamber

机译:火箭弹燃烧室的精确计算与流场模拟

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摘要

In this paper, we present a novel numerical approach for predicting the fluid flow in a solid rocket motor chamber with burning propellant grain. We use a high-order technique to track the regressing grain surface. Spectral convergence toward the exact burning surface is achieved thanks to Fourier differentiation. For the computation of the internal chamber fluid flow, we make use of a body-fitted volume mesh deforming with the grain surface. We describe several methods to deform the volume mesh and to keep good mesh element quality without global remeshing. We then couple the surface and volume approaches and integrate them into a complex code for compressible, multispecies, turbulent flow simulations. Thanks to these methods, we are able to exhibit one of the first three-dimensional simulations of the internal flow in a realistic solid rocket motor coupled to complex grain surface regression. In prior work, burning grain surface methods have only been coupled with one-dimensional internal ballistics solvers.
机译:在本文中,我们提出了一种新型的数值方法,用于预测带有燃烧推进剂颗粒的固体火箭发动机舱中的流体流动。我们使用高阶技术来追踪退回的谷物表面。通过傅立叶微分,可以实现朝着精确燃烧表面的光谱收敛。为了计算内部腔室的流体流量,我们使用随晶粒表面变形的贴合体的体网格。我们描述了使体积网格变形并保持良好网格元素质量而无需全局重新网格化的几种方法。然后,我们将表面和体积方法耦合在一起,并将它们集成到复杂的代码中,以进行可压缩的多物种湍流模拟。多亏了这些方法,我们才能展示出在结合了复杂的颗粒表面回归的现实固体火箭发动机中内部流的第一个三维模拟之一。在先前的工作中,燃烧谷物表面方法仅与一维内部弹道求解器结合使用。

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  • 来源
    《Journal of propulsion and power》 |2015年第6期|1761-1776|共16页
  • 作者单位

    ONERA, The French Aerospace Lab, F-91761 Palaiseau, France;

    ONERA, The French Aerospace Lab, F-91761 Palaiseau, France;

    ONERA, The French Aerospace Lab, F-91761 Palaiseau, France;

    ONERA, F-92322 Chatillon, France;

    ONERA, F-92322 Chatillon, France;

    ONERA, F-92322 Chatillon, France;

    ONERA, F-31410 Mauzac, France;

    Institut National de Recherche en Informatique et en Automatique Paris-Rocquencourt, 78153 Le Chesnay, France;

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