Methane/hydrogen fueling a spark-ignition engine for studying NO, CO and HC emissions with a research CFD code

被引:68
|
作者
Kosmadakis, G. M. [1 ]
Rakopoulos, D. C. [1 ]
Rakopoulos, C. D. [1 ]
机构
[1] Natl Tech Univ Athens, Sch Mech Engn, Dept Thermal Engn, Internal Combust Engines Lab, 9 Heroon Polytech St,Zografou Campus, Athens 15780, Greece
关键词
Methane; Hydrogen; Combustion; NO; CO and HC emissions; Spark-ignition engine; CFD research code; HYDROGEN ADDITION; CREVICE FLOW; COMBUSTION; METHANE; PERFORMANCE; MODEL; BLENDS; MECHANISMS; BEHAVIOR; ETHANOL;
D O I
10.1016/j.fuel.2016.08.040
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Emissions of nitric oxide (NO), carbon monoxide (CO), and unburned hydrocarbons (HC) and their reaction mechanisms are investigated in a spark-ignition (SI) engine fueled with methane/hydrogen blends (hydrogen 30% by vol.). This analysis considers engine load variation through a variable equivalence ratio, with the application of an in-house research, three-dimensional computational fluid dynamics code (3-DCFD) for detailed in-cylinder simulations. The code's combustion model includes the thermal NO mechanism, and other alternative NO production mechanisms, such as via the NNH and N2O species formation and the prompt NO mechanisms. Moreover, two CO formation models have been added, using two and three chemical equations, and their results are compared in order to identify the most appropriate for such combustion processes. Finally, no additional HC formation model is included, as HC emissions are directly calculated by the code escorted by the contribution of unburned fuel from the crevice regions, in which a phenomenological model is applied. Focus is also given on the spatial NO, CO and HC production pattern inside the cylinder during combustion and expansion periods. The numerical results are then compared with available measured data, in order to validate these emission formation models and investigate the production paths at such conditions and for variable equivalence ratio. The NO predictions are adequate and well captured, while the trend of CO and HC is adequately predicted especially for high equivalence ratio. The overall outcome is a numerical tool capable to predict with detail the incylinder processes and examine the local gas properties during flame propagation and pollutant emissions inside the combustion chamber for this case of high technological interest. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:903 / 915
页数:13
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