Analysis of an innovative combustion chamber with the wall guided fuel injection in a small diesel engine

被引:1
|
作者
Temizer, Ilker [1 ,4 ]
Oncuoglu, Oncel [2 ]
Cihan, Omer [3 ]
机构
[1] Sivas Cumhuriyet Univ, Dept Mfg Engn, Sivas, Turkiye
[2] Istanbul Tech Univ, Dept Mech Engn, Istanbul, Turkiye
[3] Sakarya Univ Appl Sci, Hendek Vocat Sch, Dept Machinery & Met Technol, Sakarya, Turkiye
[4] Sivas Cumhuriyet Univ, Dept Mfg Engn, TR-58140 Sivas, Turkiye
关键词
Combustion chamber; bowl geometry; combustion; exhaust emissions; wall guided fuel injection; PISTON BOWL GEOMETRY; IN-CYLINDER FLOW; EMISSION CHARACTERISTICS; NUMERICAL-ANALYSIS; FLUID-FLOW; SWIRL; SYSTEM; PERFORMANCE; RATIO; BIODIESEL;
D O I
10.1177/14680874231176633
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper has included the effects of different bowl geometries which has the wall guided fuel injection. Bowl geometries, which affect in-cylinder air flows, have a great influence on the change of mixture formation. Also, the region where the fuel hits in the bowl affects all engine parameters. In this presented numeric study, the standard combustion chamber geometry of a single-cylinder, air-cooled, and direct-injection diesel engine is compared with the designed new combustion chamber. Four different rotation angles (0 & DEG;, 7.5 & DEG;, 10 & DEG;, and 15 & DEG;) were determined for the new combustion chamber geometry and compared with the standard geometry. The three-dimensionally modeled bowl geometries in 3D Computational Fluid Dynamics simulation were examined in terms of in-cylinder pressure and temperature, instantaneous and cumulative heat release rate, exhaust emissions (NO, soot, CO, and CO2), temperature/spray, and equivalence ratio/spray at different CA's. The effects of the different rotation angles of the designed new bowl geometry on both the air movement and the region where the fuel hits were investigated for the engine parameters. When the results obtained are examined, maximum in-cylinder pressures for standard combustion chamber, new combustion chamber 1, new combustion chamber 2, new combustion chamber 3, and new combustion chamber 4 geometries were obtained 79.5, 75.2, 78, 78.1, and 78 bar respectively, and the maximum in-cylinder temperatures were found 1766, 1742, 1805, 1817, and 1818 K, respectively. According to the results obtained from the numerical analysis, CO, CO2, and soot emissions decreased while NO emissions increased in the new combustion chamber, compared to the standard combustion chamber. Examined the spray distributions in bowl, it was seen that the fuel sprays distributed more homogeneously and flame propagates which is spread throughout the chamber in the new combustion chamber type, which improved the mixture formation. The wall guided fuel flow in the novel designed chamber geometries beneficial to turbulence kinetic energy, spray distribution, emissions.
引用
收藏
页码:3954 / 3969
页数:16
相关论文
共 50 条
  • [31] Laser-Induced Phosphorescence Thermography of Combustion Chamber Wall of Diesel Engine
    Aizawa, Tetsuya
    Kosaka, Hidenori
    SAE INTERNATIONAL JOURNAL OF FUELS AND LUBRICANTS, 2009, 1 (01) : 549 - 558
  • [32] Influence of the kind of fuel oil on the deposit composition in the diesel engine combustion chamber
    Tarkowski, P
    Sarzynski, J
    Budzynski, P
    Paluch, R
    Wiertel, M
    FUEL, 2001, 80 (10) : 1399 - 1403
  • [33] INFLUENCE OF COMBUSTION-CHAMBER CONFIGURATIONS ON THE COMBUSTION IN DIESEL-ENGINE DRIVEN BY EMULSIFIED FUEL
    TSUKAHARA, M
    MURAYAMA, T
    MIYAMOTO, N
    YOSHIMOTO, Y
    BULLETIN OF THE JSME-JAPAN SOCIETY OF MECHANICAL ENGINEERS, 1982, 25 (208): : 1567 - 1573
  • [35] Effect of pre-chamber fuel injection parameters and EGR on the combustion and emissions of a heavy-duty diesel engine
    Lu, Yingying
    Chen, Yufeng
    Zhang, Daochen
    Zhong, Lingfeng
    Qian, Yi
    Pei, Yiqiang
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2024, 46 (01) : 6662 - 6684
  • [36] Numerical analysis of fuel injection configuration on nitrogen oxides formation in a jet engine combustion chamber
    Cerinski, Damijan
    Vujanovic, Milan
    Petranovic, Zvonimir
    Baleta, Jakov
    Samec, Niko
    Hribersek, Matjaz
    ENERGY CONVERSION AND MANAGEMENT, 2020, 220
  • [37] EFFECT OF COMBUSTION CHAMBER GEOMETRY ON PERFORMANCE, COMBUSTION, AND EMISSION OF DIRECT INJECTION DIESEL ENGINE WITH ETHANOL-DIESEL BLEND
    Gnanamoorthi, Venkadesan
    Marudhan, Navin M.
    Gobalakichenin, Devaradjane
    THERMAL SCIENCE, 2016, 20 : S937 - S946
  • [38] A comparison of combustion characteristics of waste cooking oil with diesel as fuel in a direct injection diesel engine
    Yu, CW
    Bari, S
    Ameen, A
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART D-JOURNAL OF AUTOMOBILE ENGINEERING, 2002, 216 (D3) : 237 - 243
  • [39] Effects of Fischer-Tropsch diesel fuel on combustion and emissions of direct injection diesel engine
    Huang Y.
    Wang S.
    Zhou L.
    Frontiers of Energy and Power Engineering in China, 2008, 2 (3): : 261 - 267
  • [40] Effects of fischer-tropsch diesel fuel on combustion and emissions of a direct injection diesel engine
    School of Energy and Power Engineering, Xi'an Jiaotong University, Xi'an 710049, China
    Neiranji Gongcheng, 2007, 2 (19-23):