极低活化能下动量损失对爆轰破坏的影响

H. Karimaei, M. Sabzpooshani
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摘要

本文研究了非理想环境下爆震波的特性。基于一维欧拉方程(动量守恒),考虑摩擦作为动量损失源项,采用单步阿伦尼乌斯定律作为化学动力学模型,对爆轰过程进行了建模。采用分段抛物法(PPM)模拟了流场并求解了欧拉方程。采用激波前沿保守跟踪算法,在波前位置进行更精细的网格(自适应网格细化AMR)。非理想环境是指外界因素(如摩擦)使爆轰行为偏离理想行为的环境。因此,本工作的创新之处在于模拟这些非理想条件下极低活化能混合物的爆轰,以检测其失效机制。动量损失对爆轰行为的影响已经在非常低的活化能下进行了参数化研究(在这种情况下爆轰行为是完全规则的,见图8)。根据混合活化能的高低,爆轰有其失效机制。结果表明,本研究爆轰失效机理为压力降和化学反应速率降低机理。它不涉及未燃烧包机制。当动量损失超过临界极限时,无论混合气活化能多少,爆震波都会失效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Effect of Momentum Loss on Detonation Failure at Very Low Activation Energy
In this paper, the behavior of detonation waves in a non-ideal environment has been studied. Modeling of detonation has been performed based on one-dimensional Euler equations (momentum conservation) by considering friction as the momentum loss source term in the equation with a single-step Arrhenius law as the chemical kinetics model. Piecewise parabolic method(PPM) has been used to simulate the flow and solve the Euler equations. The shock front conservative tracking algorithm was used to have the finer mesh (Adaptive mesh refinement AMR) at the wave front location. The non-ideal environment is an environment in which external factors, such as friction, cause the detonation behavior to deviate from the ideal behavior. Therefore, the innovation of the present work is modeling detonation in these non-ideal conditions for mixtures with very low activation energy to detect its failure mechanism. The effect of momentum loss on the detonation behavior has been parametrically studied at very low activation energy (in which the detonation behavior is completely regular, here, 8). Depending on the level of mixture activation energy, the detonation has its failure mechanism. It is concluded that the failure mechanisms of the detonation in this study are the mechanisms of pressure drop and chemical reaction rate reduction. The un-burnt packet mechanism is not involved in it. The detonation wave, regardless of the amount of mixture activation energy, fails anyway as the momentum loss exceeds a critical limit.
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