...
首页> 外文期刊>Energy Conversion & Management >An optimized chemical kinetic mechanism for HCCI combustion of PRFs using multi-zone model and genetic algorithm
【24h】

An optimized chemical kinetic mechanism for HCCI combustion of PRFs using multi-zone model and genetic algorithm

机译:多区域模型和遗传算法优化的PRF HCCI燃烧化学动力学机理

获取原文
获取原文并翻译 | 示例
           

摘要

Development of comprehensive chemical kinetic mechanisms is required for HCCI combustion and emissions prediction to be used in engine development. The main purpose of this study is development of a new chemical kinetic mechanism for primary reference fuels (PRFs) HCCI combustion, which can be applied to combustion models to predict in-cylinder pressure and exhaust CO and UHC emissions, accurately. Hence, a multi-zone model is developed for HCCI engine simulation. Two semi-detailed chemical kinetic mechanisms those are suitable for premixed combustion are used for n-heptane and iso-octane HCCI combustion simulation. The iso-octane mechanism contains 84 species and 484 reactions and the n-heptane mechanism contains 57 species and 296 reactions. A simple interaction between iso-octane and n-heptane is considered in new mechanism. The multi-zone model is validated using experimental data for pure n-heptane and iso-octane. A new mechanism is prepared by combination of these two mechanisms for n-heptane and iso-octane blended fuel, which includes 101 species and 594 reactions. New mechanism optimization is performed using genetic algorithm and multi-zone model. Mechanism contains low temperature heat release region, which decreases with increasing octane number. The results showed that the optimized chemical kinetic mechanism is capable of predicting engine-related combustion and performance parameters. Also after implementing the optimized mechanism, engine unburned HC and CO emissions predicted by the model are in good agreement with the corresponding experimental data.
机译:HCCI燃烧和排放预测需要开发综合的化学动力学机制,以用于发动机开发。这项研究的主要目的是开发一种用于主要参考燃料(PRF)HCCI燃烧的新化学动力学机制,该机制可用于燃烧模型,以准确预测缸内压力以及废气CO和UHC排放。因此,开发了用于HCCI发动机仿真的多区域模型。适用于预混燃烧的两种半详细化学动力学机制用于正庚烷和异辛烷HCCI燃烧模拟。异辛烷机制包含84个物种和484个反应,正庚烷机制包含57个物种和296个反应。在新机理中考虑了异辛烷与正庚烷之间的简单相互作用。使用纯正庚烷和异辛烷的实验数据验证了多区域模型。通过将这两种机理组合起来,可以制得一种新的机理,用于正庚烷和异辛烷混合燃料,包括101种反应和594个反应。使用遗传算法和多区域模型执行新的机制优化。机理包含低温放热区域,该区域随着辛烷值的增加而减小。结果表明,优化的化学动力学机制能够预测与发动机相关的燃烧和性能参数。同样,在实施优化机制后,该模型预测的发动机未燃烧的HC和CO排放与相应的实验数据非常吻合。

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