碳钢在固/液两相流条件下流动腐蚀的数值模拟
NUMERICAL SIMULATION OF FLOW INDUCED CORROSION OF CARBON STEEL IN LIQUID/SOLID TWO-PHASE FLOW SYSTEM
查看参考文献14篇
文摘
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在单相流数值计算的基础上,引入固相颗粒运动理论,对双相流中的碳钢磨损腐蚀进行了数值模拟.结果表明:在0~18 m*s-1流速范围内,固体颗粒与材料壁面的碰撞角度、碰撞频度和碰撞速度等颗粒相力学参数对表面切应力、传质系数影响强烈,导致碳钢磨损腐蚀加剧,但对碳钢的切削磨耗作用不大.腐蚀速度的模拟计算值与实测值基本一致,验证了碳钢在两相流加剧腐蚀的协同效应中腐蚀电化学作用仍占主导地位.随着流速进一步增大,磨耗量虽小,但会有所增加. |
其他语种文摘
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On the basis of single-phase flowing model, two-phase liquid/solid flowing theory was introduced to study numerically the flow induced corrosion of carbon steel in 3.5% NaCl+ 5% sand. It was found that the mechanics parameters of particle-phase including impact angle, impact frequency, impact velocity strongly influenced the hydrodynamic and mass transfer parameters(surface shear stress, mass transfer coefficient), which sharply increased erosion-corrosion rate of carbon steel within the limits of 0-18 m*s~ flow velocity. The results further showed that the numerical corrosion rates were almost equal to the measured rates. Thus it was verified that under flowing condition the electrochemical corrosion action still played an important role in corrosion synergism of carbon steel. With further increasing flowing velocity, wear rate was still small, but it could not be ignored. |
来源
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化工学报
,2004,55(2):231-236 【核心库】
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关键词
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碳钢
;
磨损腐蚀
;
数值模拟
;
协同效应
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地址
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北京化工大学材料科学与工程学院, 北京, 100029
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语种
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中文 |
ISSN
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0438-1157 |
学科
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金属学与金属工艺 |
基金
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国家自然科学基金
;
中国科学院金属研究所金属腐蚀与防护国家重点实验室基金
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文献收藏号
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CSCD:1863357
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参考文献 共
14
共1页
|
1.
Nesic S. A Predictive Model for Localized Erosion-Corrosion.
Corrosion,1991,47(8):582-588
|
被引
5
次
|
|
|
|
2.
Blatt W. The Influence of Hydrodynamics on Erosion-Corrosion in Two-phase Liquid-Particle Flow.
Corrosion,1989,45(10):793-802
|
被引
11
次
|
|
|
|
3.
林玉珍. 数值计算法在流体腐蚀研究中的应用─(Ⅰ)层流条件下金属的腐蚀.
中国腐蚀与防护学报,1999,19(1):1
|
被引
21
次
|
|
|
|
4.
雍兴跃. 数值计算法在流体腐蚀研究中的应用─(Ⅱ)湍流条件下金属的腐蚀.
中国腐蚀与防护学报,1999,19(1):8
|
被引
14
次
|
|
|
|
5.
雍兴跃). [dissertation](学位论文).
The Establishment of Flow-induced Corrosion Kinetics Model and Experimental Verification:[dissertation](学位论文),2000
|
被引
1
次
|
|
|
|
6.
Lam C K. A Modified Form of the K-ε Model for Predicting Wall Turbulence.
Fluids Engineering,1981,103:456-458
|
被引
4
次
|
|
|
|
7.
Nesic S. A Predictive Model for Localized Erosion-Corrosion.
Corrosion,1991,47(8):583-584
|
被引
3
次
|
|
|
|
8.
陶文铨. 数值传热学.
数值传热学.2nd ed,1988
|
被引
1
次
|
|
|
|
9.
Crowe C T. The Particle-source-in Cell (PSI-CELL) Model for Gas-droplet Flows.
ASME Trans.J. Fluids Eng,1977,102:325
|
被引
34
次
|
|
|
|
10.
Kallio G A. A Numerical Simulation of Particle Deposition in Turbulent Boundary Layers.
Int.J. Multiphase Flow,1989,15(3):433-446
|
被引
15
次
|
|
|
|
11.
Chen X Q. Computation of Particle Dispersion in Turbulent Liquid Flows Using an Efficient Lagrangian Trajectory Model.
Numerical Methods in Fluids,1998,26:345-360
|
被引
7
次
|
|
|
|
12.
Finnie I. Fundamental Mechanism of the Brosive Wear of Ductile Metal by Solid Particle.
Wear,1960,3:87
|
被引
16
次
|
|
|
|
13.
刘景军. 不同热处理条件下双相钢的磨损腐蚀.
腐蚀科学与防护技术,2002,14(3):129
|
被引
7
次
|
|
|
|
14.
雍兴跃. 碳钢在管流体系中的流动腐蚀动力学模型.
化工学报,2002,53(7):680-683
|
被引
6
次
|
|
|
|
|