化工学报 ›› 2020, Vol. 71 ›› Issue (4): 1898-1911.DOI: 10.11949/0438-1157.20190799
收稿日期:
2019-07-11
修回日期:
2019-09-24
出版日期:
2020-04-05
发布日期:
2020-04-05
通讯作者:
李玉星
作者简介:
王少雄(1995—),男,硕士研究生,基金资助:
Shaoxiong WANG(),Yuxing LI(),Cuiwei LIU,Jie LIANG,Anqi LI,Yuan XUE
Received:
2019-07-11
Revised:
2019-09-24
Online:
2020-04-05
Published:
2020-04-05
Contact:
Yuxing LI
摘要:
建立了水下输气管道泄漏三维CFD数值模型,同时基于积分模型建立了预测数学模型,研究了不同泄漏速率和水深下气体在水体中扩散的速度、羽流半径以及上升到水面时形成泉涌高度的变化规律,并利用实验验证了两种模型的准确性,两种模型可以准确地模拟羽流特征参数的变化。结果表明:水下天然气管道泄漏扩散经历了初始阶段、充分发展阶段和表面流动阶段三个阶段,在气泡羽流上升过程中伴随着卷吸和紊动沸腾现象;羽流的径向速度近似呈高斯分布并且随着径向距离的增加逐渐降低;羽流的轴向速度随着水深的增加而降低,且在接近泄漏孔口的位置,轴线上羽流的速度急速衰减;随着气泡羽流紊动的发展,羽流半径逐渐向两侧发展并且随着水深近似呈线性增长。
中图分类号:
王少雄, 李玉星, 刘翠伟, 梁杰, 李安琪, 薛源. 水下输气管道泄漏扩散特性模拟研究[J]. 化工学报, 2020, 71(4): 1898-1911.
Shaoxiong WANG, Yuxing LI, Cuiwei LIU, Jie LIANG, Anqi LI, Yuan XUE. Numerical simulation on leakage and diffusion characteristics of underwater gas pipeline[J]. CIESC Journal, 2020, 71(4): 1898-1911.
方案 | 网格数/个 |
---|---|
1 | 67800 |
2 | 376000 |
3 | 1029000 |
表1 网格划分方案
Table 1 Mesh classification scheme
方案 | 网格数/个 |
---|---|
1 | 67800 |
2 | 376000 |
3 | 1029000 |
参数 | 范围 | 推荐值 |
---|---|---|
n | 1 | |
α | 0.06~0.15 | 0.1285 |
λ | 0.6~1.0 | 0.8 |
vs/(m/s) | 0.1~0.4 | 0.35 |
γ | 1~2 | 1.5 |
表2 推荐的经验参数
Table 2 Recommended empirical parameters
参数 | 范围 | 推荐值 |
---|---|---|
n | 1 | |
α | 0.06~0.15 | 0.1285 |
λ | 0.6~1.0 | 0.8 |
vs/(m/s) | 0.1~0.4 | 0.35 |
γ | 1~2 | 1.5 |
图5 水下管道气体泄漏实验系统1—空气压缩机;2—冷干机;3—过滤器;4,11—缓冲罐;5,10—质量流量计;6—针型阀;7,9—压力表;8—水槽;12—计算机;13—高速摄像机
Fig.5 Experimental system for gas leakage of underwater pipeline
泄漏速率/(m3/h) | 泉涌高度hf/m | 平均初始泉涌高度 | 最大泉涌高度hpmax/m |
---|---|---|---|
0.21 | 0.0508 | 0.1016 | 0.1575 |
0.37 | 0.0748 | 0.1496 | 0.2319 |
0.84 | 0.1305 | 0.2610 | 0.4046 |
表3 积分模型计算的泉涌高度
Table 3 Fountain height calculated by integral model
泄漏速率/(m3/h) | 泉涌高度hf/m | 平均初始泉涌高度 | 最大泉涌高度hpmax/m |
---|---|---|---|
0.21 | 0.0508 | 0.1016 | 0.1575 |
0.37 | 0.0748 | 0.1496 | 0.2319 |
0.84 | 0.1305 | 0.2610 | 0.4046 |
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