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首页> 外文期刊>International journal of hydrogen energy >Numerical investigation of self-sustaining modes of 2D planar detonations under concentration gradients in hydrogen-oxygen mixtures
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Numerical investigation of self-sustaining modes of 2D planar detonations under concentration gradients in hydrogen-oxygen mixtures

机译:氢气混合物浓度梯度下2D平面爆轰自维持模式的数值研究

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Self-sustaining modes of detonations in non-uniform mixtures for hydrogen and oxygen are numerically studied. Concentration gradients are set vertical to the direction of detonation propagation, with equivalence ratios decreasing from rich values to lean ones. High-resolution codes based on the fifth-order weighted essentially non-oscillatory (WENO) scheme in spatial discretization and the 3rd-order Additive Runge-Kutta (ARK) schemes in time discretization, with detailed chemical kinetics model, are developed. Two-dimensional (2D) numerical simulations are conducted in a 2D planar geometry, non-uniform distributions are then precisely controlled as a function of width. The cellular structures and transmissions, failure and re-initiation mechanisms of detonation fronts are characterized. Results show that the low concentration gradient produces the multi-head mode of detonation with continuous adaptation of velocities and multicellular structures to local concentration. The high concentration gradient generates single-head mode with detonation re-initiation at channel walls produced by reflected transverse Mach waves. Specially, the intermediate distribution between the low and high concentration gradients induces an alternation mode between singe-head and multi-head detonations. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:数值研究了非均匀混合物中的爆炸模式的自我维持模式。浓度梯度被设定为垂直于爆轰传播的方向,其等当量比从富值降低到瘦瘦。开发了基于第五顺序加权的高分辨率代码,其空间离散化和3rd阶附加跑步 - Kutta(ARK)在时间离散化,具有详细的化学动力学模型的3RD阶添加性漫游 - Kutta(ARK)方案。二维(2D)数值模拟在2D平面几何形状中进行,然后作为宽度的函数精确地控制非均匀分布。爆炸前沿的蜂窝结构和传输,故障和重新启动机制的特征在于。结果表明,低浓度梯度产生了连续调整速度和多细胞结构与局部浓度的多头爆震模式。高浓度梯度产生单头模式,通过反射横切马波产生的沟道壁在沟道壁上产生单个头部模式。特别地,低浓度和高浓度梯度之间的中间分布在单头和多头爆炸之间引起交替模式。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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