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DOI | 10.1016/j.jclepro.2020.123087 |
Numerical assessment of radiative heat transfer impact on pollutant formation processes in a compression ignition engine | |
Jurić F.; Petranović Z.; Vujanović M.; Duić N. | |
发表日期 | 2020 |
ISSN | 9596526 |
卷号 | 275 |
英文摘要 | An imposed solution in the development process of compression ignition engines is the use of numerical research employing Computational Fluid Dynamics (CFD). At the high operating temperatures in compression ignition engines, the radiative heat transfer influences the overall temperature profile and heat transfer, which also affects the formation processes of pollutants. For the radiative transfer calculation in this work, method of discrete ordinates (DOM) employing Finite Volume Method (FVM) is implemented with user functions into the AVL FIRE™ CFD code. The absorptivity and emissivity are described with the implemented Weighted Sum of Grey Gases Model (WSGGM) based on non-isothermal and nonhomogeneous absorption coefficient correlations for carbon dioxide, water vapour and soot. The implemented procedure is extended to work with moving meshes, parallel computing and rezoning procedure, which are needed to account the radiative heat transport in internal combustion engines. Additionally, the focus of this work is on the performed validation of calculated mean temperature, pressure, rate of heat release and emission results against the compression ignition engine experimental measurements. Results with the implemented radiation model showed lower peak temperatures for approximately 10 K, which resulted in around 18% lower nitrogen oxides concentrations, and up to 20% higher soot concentrations at the end of engine operating cycle. The most dominant impact of the radiative heat transfer on soot formation is visible at the crank angles, where peak temperatures occur. The performed parameter study of the piston and head wall emissivity values showed a reduction in mean in-cylinder pressure and NO mass fraction for a less reflective surface. From the conducted parameter analysis of ordinates number, the sufficient accuracy is achieved for simulations with eight ordinates, which resulted in approximately 50% increased computational time. Finally, it may be concluded that the combination of implemented models is useful to predict the heat transfer of internal combustion engine focussing on the radiative heat transport, which can be an important factor for the development of forthcoming internal combustion engines. © 2020 Elsevier Ltd |
英文关键词 | Engine; Participating media; Pollutant emissions; Radiation |
scopus关键词 | Carbon dioxide; Carbon dioxide process; Combustion; Combustion equipment; Computational fluid dynamics; Diesel engines; Electromagnetic wave emission; Finite volume method; Nitrogen oxides; Pollution; Radiative transfer; Soot; Water absorption; Absorption co-efficient; Compression ignition engine; High operating temperature; In-cylinder pressures; Lower peak temperatures; Nitrogen oxides concentration; Radiative heat transfer; Radiative transfer calculations; Heat transfer |
来源期刊 | Journal of Cleaner Production
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文献类型 | 期刊论文 |
条目标识符 | http://gcip.llas.ac.cn/handle/2XKMVOVA/176730 |
作者单位 | Faculty of Mechanical Engineering and Naval Architecture, University of Zagreb, Ivana Lučića 5, Zagreb, 10000, Croatia; AVL AST List GmbH, Alte Poststraße 152, Graz, 8020, Austria |
推荐引用方式 GB/T 7714 | Jurić F.,Petranović Z.,Vujanović M.,et al. Numerical assessment of radiative heat transfer impact on pollutant formation processes in a compression ignition engine[J],2020,275. |
APA | Jurić F.,Petranović Z.,Vujanović M.,&Duić N..(2020).Numerical assessment of radiative heat transfer impact on pollutant formation processes in a compression ignition engine.Journal of Cleaner Production,275. |
MLA | Jurić F.,et al."Numerical assessment of radiative heat transfer impact on pollutant formation processes in a compression ignition engine".Journal of Cleaner Production 275(2020). |
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