受限通气条件下滞留气团运动对排水系统井喷的作用机制
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(1.上海浦河工程设计有限公司;2.河海大学水利水电学院 )

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徐福军(1972—),男,高级工程师,主要从事水利水电工程研究。E-mail:13701699756@163.com

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Mechanism of trapped air-pocket motion on geyser occurrence in drainage systems under restrictive ventilation conditions
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(1.ShanghaiPuhe Engineering Design Co., Ltd.; 2.Collegeof Water Conservancy and Hydropower Engineering, Hohai University)

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    摘要:

    为了探究井盖约束下竖井受限通气条件对气团运动规律及井喷特性的影响,采用模型试验与数值模拟相结合的方法,系统研究了竖井直径、通气率、外部水头及初始气团体积对气团运动及井喷发生的影响。结果表明:气团释放过程中,竖井水位上升过程可分为气团驱动和压差驱动两个阶段,可能产生未发生井喷、仅发生气团驱动井喷、仅发生压差驱动井喷、气团驱动井喷和压差驱动井喷均发生4种典型流态;气团形态受管径比、通气率和气团长度共同影响,小直径竖井中气团整体趋于对称并侵入上游管道,而大直径竖井中气团显著不对称并滞留于下游;小直径竖井中气团头部形态随通气率呈非单调变化,通气率为0时近似对称,通气率为0.01、0.02时呈不规则形态,通气率为0.05、0.1时重新趋于对称,通气率为1(完全通气)时则呈偏向下游的尖锐不对称形态;气团长度越大,其对自由液面的扰动越强烈,释放位置也越高;竖井内气团头部和自由液面上升速度均随通气率、外部水头、气团长度的增加及竖井直径的减小而显著增大。

    Abstract:

    To investigate the effects of restrictive ventilation conditions in a covered vertical shaft on air-pocket motion and geyser characteristics, a combined approach of physical model tests and numerical simulations was employed to systematically examine the influences of shaft diameter, ventilation ratio, external head, and initial air-pocket volume on air-pocket motion and geyser occurrence. The results show that the water-level rise in the shaft during air-pocket release can be divided into an air-pocket-driven stage and a pressure-difference-driven stage, resulting in four typical flow regimes: no geyser, an air-pocket-driven geyser only, a pressure-difference-driven geyser only, and both an air-pocket-driven geyser and a pressure-difference-driven geyser. The air-pocket morphology is jointly influenced by the shaft-to-pipe diameter ratio, ventilation ratio, and air-pocket length. In small-diameter shafts, the air pocket tends to be symmetric and intrudes into the upstream pipe, whereas in larger-diameter shafts, the air pocket exhibits significant asymmetry and remains trapped in the downstream pipe. For small-diameter shafts, the air-pocket head morphology varies non-monotonically with the ventilation ratio: it is approximately symmetric at a ventilation ratio of 0, becomes irregular at ventilation ratios of 0.01 and 0.02, returns to a nearly symmetric shape at ventilation ratios of 0.05 and 0.1, and develops into a sharply asymmetric shape inclined toward the downstream direction at a ventilation ratio of 1 (fully ventilated condition). A larger air-pocket length results in stronger disturbances to the free surface and a higher release position. The rising velocities of both the air-pocket head and the free surface increase significantly with increasing ventilation ratio, external head, and air-pocket length, and decrease with increasing shaft diameter.

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徐福军,章艳.受限通气条件下滞留气团运动对排水系统井喷的作用机制[J].水利水电科技进展,2026,45(4):1-8.(Xu Fujun, Zhang Yan. Mechanism of trapped air-pocket motion on geyser occurrence in drainage systems under restrictive ventilation conditions[J]. Advances in Science and Technology of Water Resources,2026,45(4):1-8.(in Chinese))

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  • 收稿日期:2025-12-17
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  • 在线发布日期: 2026-08-07
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