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Numerical Simulation of Superfast Shock-Induced Chemical Reaction in Titanium - Silicon Mixture

机译:钛硅混合物超快速冲击诱导化学反应的数值模拟

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A phenomenological zeroth-order kinetic model for computations of shock-induced solid-state chemical reactions in porous mixtures is proposed. In the model a porous mixture is considered as a continuous medium whose thermomechanical properties are determined at each time step depending on mass fractions of the components. The kinetic relationships are characterized by a constant rate of chemical transformation under shock wave loading. The heat release due to chemical transformation is introduced in the energy equation. The effect of the dispersity of the mixture components on the reaction rate is taken into account by varying the constants that enter the kinetic model. The results of the numerical computations for porous Ti-Si mixture reflect the fact that the process can be divided into several stages (dynamic compaction, shock-wave propagation, reaction of synthesis). It is shown that an increase in the chemical-reaction rate can give rise to flow regimes in which the unloading wave almost stops.
机译:提出了一种用于计算多孔混合物中的冲击诱导固态化学反应的计算的现象学Zeroth序列式模型。在模型中,多孔混合物被认为是连续培养基,其在每次步骤中根据组分的质量级分时测定热机械性质。动力学关系的特征在于冲击波载荷下的化学转化率恒定。在能量方程中引入了由化学转换引起的热释放。通过改变进入动力学模型的常数,考虑混合物组分的分散度对反应速率的影响。多孔Ti-Si混合物数值计算结果反映了该方法可以分为几个阶段(动态压实,冲击波传播,合成反应)。结果表明,化学反应速率的增加可以引起流动制度,其中卸载波几乎停止。

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