|
|
|
| Numerical Simulation Analysis of Fluid Erosion Corrosion of Injection Nozzle for Diesel Engine |
ZHOU Tingting1,2, YUAN Chengqing1,2( ), CAO Pan1,2, WANG Xuejun1,2, DONG Conglin1,2 |
1. Reliability Engineering Institute, School of Energy and Power Engineering, Wuhan University of Technology, Wuhan 430063, China 2. Key Laboratory of Marine Power Engineering & Technology, Ministry of Transport, Wuhan University of Technology, Wuhan 430063, China |
|
|
|
|
Abstract According to the basic principle of fluid flow, mathematical models of erosion corrosion and cavitations flow phase transition are established, the internal fluid flow of the nozzle is numerically simulated and analyzed by Fluent software. The results show that the serious damage position of material caused by the erosion locates on the corner of nozzle inlet. However, the position suffered from the maximum shear stress will be near to the nozzle exit when the "super cavitation" phenomenon exists. For a given level of corrosivity of fuel used, the erosion degree increases with the increase of the viscosity, fluid velocity and inlet pressure of the fuel, as well as the corner radius of the nozzle inlet, and decreases with the increase of the back pressure. For a given inlet pressure and a flow rate, the erosion corrosion would be reduced and the fuel atomization would be facilitated when the viscosity and back pressure of the fuel as well as the corner radius of the nozzle inlet were reduced.
|
|
|
|
|
| [1] |
Soteriou C, Andrews R, Smith M. Direct injection diesel sprays and the effect of cavitation and hydraulic flip on atomization[J]. SAE Trans., 1995, 104(3): 128-153
|
| [2] |
Badock C, Wirth R, Fath A, et al. Investigation of cavitation in real size diesel injection nozzles[J]. Int. J. Heat Fluid Flow, 1999, 20(5): 538-544
|
| [3] |
Ou G F. Simulation and erosion damage prediction research for multiphase flow in the hydrocracking air cooler bundle [D]. Hangzhou: Zhejiang University of Technology, 2004
|
|
(偶国富. 加氢裂化空冷器管束多相流模拟与冲蚀破坏预测研究[D]. 杭州: 浙江理工大学, 2004)
|
| [4] |
Keating A, Nesic S. Numerical prediction of erosion corrosion in bends[J]. Corros. Sci., 2001, 57(7): 621-633
|
| [5] |
Yong X Y, Zhang Z Q, Li D L, et al. Effect of near-wall hydrodynamic parameters on flow induced corrosion[J]. Corros. Sci. Prot. Technol., 2011, 23(3): 245-250
|
|
(雍兴跃, 张稚琴, 李栋梁等. 近壁处流体力学参数对流动腐蚀的影响[J]. 腐蚀科学与防护技术, 2011, 23(3): 245-250)
|
| [6] |
Hong H F. Erosion-corrosion prediction and application software development for petrochemical multiphase flow pipeline system [D].Hangzhou: Zhejiang University of Technology, 2010
|
|
(洪惠芬. 石化多相流管道系统冲蚀预测及应用软件开发 [D]. 杭州: 浙江理工大学, 2010)
|
| [7] |
Tao W Z. Numerical Heat Transfer[M]. Xi'an: Xi'an Jiaotong University Press, 2001: 206-226
|
|
(陶文锉. 数值传热学[M]. 西安: 西安交通大学出版社, 2001: 206-226)
|
| [8] |
Li W, Xiong C K, Yan L. Analysis of the center moving path of aspherical bubble broken near a rigid wall[J]. J. Xihua Univ.(Nat. Sci.), 2006, 25(1): 52-53
|
|
(李伟, 熊朝坤, 严利. 刚性壁附近球状泡溃灭时泡心运动轨迹分析[J]. 西华大学学报 (自然科学版), 2006, 25(1): 52-53)
|
| [9] |
Li J, Chen H S. Numerical simulation of micro bubble collapse near solid wall in fluent environment[J]. Tribology, 2008, 28(4): 311-315
|
|
(李疆, 陈皓生. Fluent环境中近壁面微空泡溃灭的仿真计算[J]. 摩擦学学报, 2008, 28(4): 311-315)
|
| [10] |
Wang Z J, Chen J. Application of high-speed marine diesel engine burned heavy fuel oil[J]. Ship Ocean Eng., 2010, 39(2): 74-77
|
|
(王忠俊, 陈军. 中高速船用柴油机燃用重油的应用[J]. 船海工程, 2010, 39(2): 74-77)
|
| No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
| |
Shared |
|
|
|
|
| |
Discussed |
|
|
|
|