High efficiency dual-fuel combustion through thermochemical recovery and diesel reforming

被引:71
作者
Chuahy, Flavio D. F. [1 ]
Kokjohn, Sage L. [1 ]
机构
[1] Univ Wisconsin Madison, Dept Mech Engn, Madison, WI 53706 USA
关键词
Thermochemical recovery; Exergy; Second law; Reformed fuel; Syngas; System optimization; POINT TEMPERATURE DIFFERENCE; RCCI COMBUSTION; EMISSIONS; EXERGY; HCCI; PERFORMANCE; HYDROGEN;
D O I
10.1016/j.apenergy.2017.03.078
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
A computational system optimization was conducted to explore the potential benefits of diesel reforming in dual-fuel combustion strategies. A comprehensive CFD model, validated against syngas (50/50 H-2/CO by mole) metal engine experiments, was used to simulate the engine combustion process. The engine CFD solver was coupled with an equilibrium solver for the reformer process and three different reforming processes were investigated: Partial oxidation, steam reforming, and autothermal reforming. A system level approach was used to evaluate the impact of thermochemical recovery of exhaust energy and reformer losses. A design of experiments of simulations was conducted to explore the combustion system design space and a genetic algorithm was used to search the resulting response surface and find the optimal operating conditions. It was found that fuel reforming can increase engine net indicated efficiencies by as much as 9% due to a shorter combustion duration and reduction in heat transfer losses. The partial oxidation reforming system resulted in the lowest system efficiencies at 44% due to its exothermic nature, while steam reforming and autothermal reforming were able to achieve over 48% system efficiency, an improvement in global efficiency of 8% compared to a diesel baseline due to exhaust heat recovery. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:503 / 522
页数:20
相关论文
共 60 条
[1]  
Abani N, 2008, SAE WORLD C EXH
[2]  
[Anonymous], 2000, SAE TECHNICAL PAPER
[3]  
[Anonymous], 2015, CANTERA OBJECT ORIEN
[4]  
Beale JC, 1999, ATOMIZATION SPRAY, V9, P623
[5]   Pure and Pseudo-pure Fluid Thermophysical Property Evaluation and the Open-Source Thermophysical Property Library CoolProp [J].
Bell, Ian H. ;
Wronski, Jorrit ;
Quoilin, Sylvain ;
Lemort, Vincent .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2014, 53 (06) :2498-2508
[6]   On the destruction of availability (exergy) due to combustion processes - with specific application to internal-combustion engines [J].
Caton, JA .
ENERGY, 2000, 25 (11) :1097-1117
[7]   Study of the Theoretical Potential of Thermochemical Exhaust Heat Recuperation for Internal Combustion Engines [J].
Chakravarthy, V. Kalyana ;
Daw, C. Stuart ;
Pihl, Josh A. ;
Conklin, James C. .
ENERGY & FUELS, 2010, 24 (03) :1529-1537
[8]  
Cracknell R.F., 2004, Designing Fuels Compatible with Reformers and Internal Combustion Engines
[9]  
Dal Forno Chuahy F, 27 ANN C LIQ AT SPRA
[10]   Boosted HCCI - Controlling Pressure-Rise Rates for Performance Improvements using Partial Fuel Stratification with Conventional Gasoline [J].
Dec, John E. ;
Yang, Yi ;
Dronniou, Nicolas .
SAE INTERNATIONAL JOURNAL OF ENGINES, 2011, 4 (01) :1169-1189