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FUNDAMENTAL TWO-PHASE-FLOW MODELS OF COMBUSTION IN POROUS ENERGETIC MATERIALS

机译:多孔含能材料燃烧的基本两相流模型

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Deflagrations in porous energetic materials are characterized by regions of two-phase flow where significant velocity and temperature differences between the gaseous and condensed phases act to modify the structure and propagation velocity of the combustion wave. In the present work, recent models that describe propagating deflagrations under varying degrees of confinement, as represented by the pressure difference (or overpressure) between the burned and unburned regions, are reviewed. It is shown how the structure, propagation speed, and final temperature of the combustion wave depend on the porosity and local pressure in the two-phase regions, even in the unconfined limit corresponding to zero overpressures. For the more general confined problem, however, exhibiting the burning-rate response as a function of overpressure is shown to additionally predict the well-known transition from conductive to convective burning associated with the preheating of the unburned material by the burned gases. Inclusion of temperature-nonequilibrium effects serves to further sharpen this transition and ultimately suggests a modified structure for the combustion wave in the convection-dominated regime.
机译:多孔高能材料的爆燃的特征在于两相流区域,其中气相和冷凝相之间的显着速度和温差会改变燃烧波的结构和传播速度。在本工作中,回顾了描述燃烧状态和未燃烧状态之间的压力差(或过压)所代表的,在不同限制程度下传播爆燃的最新模型。它显示了燃烧波的结构,传播速度和最终温度如何取决于两相区域中的孔隙率和局部压力,即使在与零超压相对应的无限制范围内也是如此。然而,对于更普遍的局限性问题,显示出燃烧速率响应作为超压的函数,可以进一步预测与燃烧气体预热未燃烧材料相关的从传导燃烧到对流燃烧的众所周知的转变。包含温度非平衡效应有助于进一步加剧这种转变,并最终提出在对流主导状态下燃烧波的结构经过修改。

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