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Investigation into mechanisms of deflagration-to-detonation using Direct Numerical Simulations

机译:直接数值模拟研究爆燃-爆轰机理

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Detonation, a combustion phenomenon is a supersonic combustion wave which plays critical role in the theory and application of combustion. This work presents numerical investigation into indirect initiation of detonation using direct numerical simulations (DNS). The Adaptive Mesh Refinement in object–oriented C++ (AMROC) tool for parallel computations is applied in DNS. The combustion reactions take place in a shock tube and an enclosure with a tube respectively and are controlled by detailed chemical kinetics. The database produced by DNS accurately simulates the process of transition of deflagration to detonation (DDT), and investigates the influence of overpressure and kinetics on flame propagations during combustion processes. The numerical simulations showed the influence of pressure and kinetics to the transition of slow and fast flames and DDT during flame propagations. When the reaction rate is fast, DDT is achieved, but when slow, DDT will not occur and therefore, there will be no detonation and consequently no strong explosion. Exploring the influence of free radical H on flame propagation showed that the concentration of the reacting species decreased with flame speed increase for each propagation. Hence, the heat generated was very fast with a greater chance of DDT beingtriggered because flame speed increased.
机译:爆震,燃烧现象是一种超音速燃烧波,在燃烧的理论和应用中起着至关重要的作用。这项工作提出了使用直接数值模拟(DNS)间接引发爆炸的数值研究。 DNS中应用了用于并行计算的面向对象C ++中的自适应网格细化(AMROC)工具。燃烧反应分别在激波管和带管的外壳中发生,并通过详细的化学动力学控制。 DNS生成的数据库准确模拟了爆燃到爆轰(DDT)的转变过程,并研究了燃烧过程中过压和动力学对火焰传播的影响。数值模拟显示了压力和动力学对火焰传播过程中慢速火焰和快速火焰以及DDT过渡的影响。当反应速率快时,可以达到DDT,而当反应速率慢时,则不会发生DDT,因此不会发生爆炸,因此不会发生强烈爆炸。探索自由基H对火焰传播的影响表明,随着每次传播,反应物种的浓度随着火焰速度的增加而降低。因此,由于火焰速度增加,产生的热量非常快,触发滴滴涕的机会更大。

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