...
首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Effects of electrode geometry on transient plasma induced ignition
【24h】

Effects of electrode geometry on transient plasma induced ignition

机译:电极几何形状对瞬态等离子体感应点火的影响

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Achieving effective ignition of reacting mixtures using nanosecond pulsed discharge non-equilibrium transient plasma (TP), requires that the effects of several experimental parameters be quantified and understood. Among them are the electrode geometry, the discharge location especially in non-premixed systems, and the relative ignition performance by spark and TP under the same experimental conditions. In the present investigation, such issues were addressed experimentally using a cylindrical constant volume combustion chamber and a counterflow flame configuration coupled with optical shadowgraph that enables observation of how and where the ignition process starts. Results were obtained under atmospheric pressure and showed that the electrode geometry has a notable influence on ignition, with the needle-to-semicircle exhibiting the best ignition performance. Furthermore, it was determined that under non-premixed conditions discharging TP in the reactants mixing layer was most effective in achieving ignition. It was also determined that in the cases considered, the TP induced ignition initiates from the needle head where the electric field and electron densities are the highest. In the case of a spark, however, ignition was found to initiate always from the hot region between the two electrodes. Comparison of spark and TP discharges in only air (i.e. without fuel) and ignition phenomena induced by them also suggest that in the case of TP ignition is at least partly non-thermal and instead driven by the production of active species. Finally, it was determined that single pulsed TP discharges are sufficient to ignite both premixed and non-premixed flames of a variety of fuels ranging from hydrogen to heavy fuels including F-76 diesel and IFO380 bunker fuel even at room temperature.
机译:要使用纳秒级脉冲放电非平衡瞬态等离子体(TP)来有效点燃反应混合物,需要量化和理解几个实验参数的影响。其中包括电极的几何形状,放电位置(尤其是在非预混系统中)以及在相同实验条件下通过火花和TP产生的相对点火性能。在本研究中,使用圆柱形恒定体积燃烧室和逆流火焰配置以及光学阴影图通过实验解决了此类问题,该光学阴影图使得能够观察点火过程的方式和位置。在大气压下获得的结果表明,电极的几何形状对点火有显着影响,针形至半圆形具有最佳的点火性能。此外,已经确定在非预混合条件下,在反应物混合层中排放TP最有效地实现点火。还确定在所考虑的情况下,TP诱导的点火从电场和电子密度最高的针头开始。但是,在产生火花的情况下,发现总是从两个电极之间的高温区域开始点火。比较仅在空气中(即没有燃料)的火花和TP放电以及由它们引起的点火现象也表明,在TP点火的情况下至少部分是非热的,而是由活性物质的产生驱动的。最后,确定单脉冲TP放电足以在室温下点燃氢到重燃料(包括F-76柴油和IFO380船用燃料)在内的各种燃料的预混合和非预混合火焰。

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