首页> 外文期刊>Combustion Science and Technology >Numerical Analyses on Ethylene/Oxygen Detonation with Multistep Chemical Reaction Mechanisms: Grid Resolution and Chemical Reaction Model
【24h】

Numerical Analyses on Ethylene/Oxygen Detonation with Multistep Chemical Reaction Mechanisms: Grid Resolution and Chemical Reaction Model

机译:多步骤化学反应机理的乙烯/氧气爆轰数值分析:网格分辨率和化学反应模型

获取原文
获取原文并翻译 | 示例
           

摘要

The numerical simulations of one- and two-dimensional inviscid detonations for a stoichiometric ethylene/oxygen gas mixture are performed using the reduced chemical reaction model. VW model 1 and VW model 2 are accurate predictions for the ignition delay time compared with the UC San Diego model. Therefore, VW model 2 with 21 species is selected to simulate the ethylene-fueled detonation. The grid resolution study was validated, and it was found that the Zel'dovich-von Neumann-Doering (ZND) structure of the ethylene detonations contains H2O2 in a very short region. Comparing the species mole fraction profiles of one-dimensional analyses with those of the ZND structure, at least more than 10 points in the Delta H2O2 are required to estimate the chemical process accurately. This means that the grid width of three microns is suitable to simulate the detonations under the initial pressure of 0.01 MPa. The grid resolution of two-dimensional detonation simulations affects the detonation cell size as well as hydrogen-fueled detonations. In the case of a channel width d = 1 mm, the single-head detonations are adequately resolved for Delta = 3 mu m. However, the detonation cell width becomes irregular for d = 2 mm and Delta = 3 mu m.
机译:使用简化的化学反应模型对化学计量的乙烯/氧气混合气进行一维和二维无粘爆轰的数值模拟。与UC San Diego模型相比,VW模型1和VW模型2是点火延迟时间的准确预测。因此,选择具有21种物质的大众模型2来模拟乙烯燃料的爆炸。网格分辨率研究得到验证,发现乙烯爆轰的Zel'dovich-von Neumann-Doering(ZND)结构在非常短的区域内包含H2O2。将一维分析的物种摩尔分数分布与ZND结构的物种摩尔分数分布进行比较,需要至少10个以上的Delta H2O2点才能准确估算化学过程。这意味着3微米的网格宽度适合于在0.01 MPa的初始压力下模拟爆炸。二维爆轰模拟的网格分辨率会影响爆轰单元的尺寸以及氢燃料爆轰。在通道宽度d = 1 mm的情况下,对于Delta = 3μm,单头爆轰已得到充分解决。但是,对于d = 2 mm和Delta = 3μm的起爆室,其宽度变得不规则。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号