Evolution characteristics of air pocket during geyser in drainage pipes
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(1.College of Agricultural Science and Engineering, Hohai University, Nanjing 211100, China;2.College of Water Conservancy & Hydropower Engineering, Hohai University, Nanjing 210098, China;3.College of Water Resources & Hydropower, Sichuan University, Chengdu 610065, China;4.Faculty of Engineering, University of Alberta, Edmonton T;6.G ;2.W2 , Canada;5.School of Civil and Environmental Engineering, Ningbo University, Ningbo 315211, China )

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TV134

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    Abstract:

    To investigate the evolution characteristics of the air pocket during the geyser process, a numerical simulation of the release of an entrapped air pocket in a drainage pipe system under double-sided inflow conditions was conducted. The geyser formation mechanisms, air discharge characteristics, and air-water energy evolutions were analyzed. The results indicate that the entry and subsequent release of an entrapped air pocket into the vertical shaft trigger an air pocket-driven geyser, followed by the occurrence of a rapid-filling geyser. Depending on whether these two processes operate independently or interactively, the geyser process can be classified as either a separated type or a hybrid type. A higher dimensionless pipeline pressure difference P * or a smaller dimensionless initial air pocket volume V a* is more likely to trigger a hybrid geyser process. The air pocket discharge ratio during the air pocket-driven geyser is approximately 2%-47%; it first increases and then decreases with increasing P *, and it decreases with increasing V *a. The air pocket discharge ratio during a rapid-filling geyser is approximately 0-5%, and it is minimally affected by P * and V *a. During the geyser process, the peak kinetic energy of the air occurs in the air pocket-driven geyser stage, while the peak kinetic energy of the water in the vertical shaft occurs in the rapid-filling geyser stage. The geyser intensity decreases with increasing P * and increases with increasing V *a. An air pocket-driven geyser occurs when the dimensionless maximum kinetic energy of the air per unit mass exceeds 1.5; a rapid-filling geyser occurs when the dimensionless maximum kinetic energy of the water per unit mass exceeds 0.5.

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钱尚拓,张晗,陈曜辉,等.排水管道井喷过程气团演变特性[J].河海大学学报(自然科学版),2025,53(6):90-100.(QIAN Shangtuo, ZHANG Han, CHEN Yaohui, et al. Evolution characteristics of air pocket during geyser in drainage pipes[J]. Journal of Hohai University (Natural Sciences),2025,53(6):90-100.(in Chinese))

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History
  • Received:July 31,2025
  • Revised:
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  • Online: December 09,2025
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