Numerical simulation on the pressure distribution of hydraulic jet perforation tunnel in natural gas hydrate reservoirs

Abstract Hydrajet fracturing could be a promising technique for increasing hydrate production; however, the pressure distribution law inside the perforation tunnel must first be investigated. This study established a two-dimensional axisymmetric model of the submerged water jet, employing the shear-...

Full description

Bibliographic Details
Main Authors: Jiawei Zhou, Kaixiang Shen, Wenwei Xie, Yanjiang Yu, Yingsheng Wang, Bo Ning, Kewei Zhang, Haoyu Yu
Format: Article
Language:English
Published: Nature Portfolio 2025-02-01
Series:Scientific Reports
Subjects:
Online Access:https://doi.org/10.1038/s41598-025-90812-8
_version_ 1826585963044798464
author Jiawei Zhou
Kaixiang Shen
Wenwei Xie
Yanjiang Yu
Yingsheng Wang
Bo Ning
Kewei Zhang
Haoyu Yu
author_facet Jiawei Zhou
Kaixiang Shen
Wenwei Xie
Yanjiang Yu
Yingsheng Wang
Bo Ning
Kewei Zhang
Haoyu Yu
author_sort Jiawei Zhou
collection DOAJ
description Abstract Hydrajet fracturing could be a promising technique for increasing hydrate production; however, the pressure distribution law inside the perforation tunnel must first be investigated. This study established a two-dimensional axisymmetric model of the submerged water jet, employing the shear-stress transport k − ω turbulence model, to analyze the pressure distribution. The study examines the impact of various factors on pressure distribution, including well completion, perforation tunnel root diameter, hole diameter on the casing wall, nozzle diameter, nozzle pressure drop, confining pressure, and jet distance. Results reveal that the pressure inside the perforation tunnel exceeds the confining pressure due to jet flow, resulting in pressurization within the erosion tunnel, unaffected by the confining pressure. As the perforation tunnel root diameter increases, the pressurization drops sharply in a parabolic manner in both open hole and uncemented casing completion wells. For cemented casing completion wells, the pressurization is dependent solely on the hole diameter on the casing wall, and the perforation tunnel root diameter has no influence. As the nozzle diameter expands, the pressurization increases exponentially, with a more pronounced effect in open-hole conditions. The pressurization rises linearly in proportion to the nozzle pressure drop. In open-hole wells, a larger nozzle diameter leads to a greater linear increase. For uncemented casing completion, the rate of linear change first increases and then decreases as the hole diameter on the casing wall increases. As the jet distance increases, the pressurization first rises and then falls. The optimal jet distance for maximizing pressurization in open-hole wells decreases with increasing nozzle diameter. In uncemented casing completion wells, increasing the distance between the nozzle and the casing leads to greater pressurization. The results provide theoretical support for the application of hydraulic jet fracturing technology in hydrate extraction.
first_indexed 2025-03-14T16:01:59Z
format Article
id doaj.art-506cf88e7a9945009f03b00e3477ef12
institution Directory Open Access Journal
issn 2045-2322
language English
last_indexed 2025-03-14T16:01:59Z
publishDate 2025-02-01
publisher Nature Portfolio
record_format Article
series Scientific Reports
spelling doaj.art-506cf88e7a9945009f03b00e3477ef122025-02-23T12:26:45ZengNature PortfolioScientific Reports2045-23222025-02-0115112010.1038/s41598-025-90812-8Numerical simulation on the pressure distribution of hydraulic jet perforation tunnel in natural gas hydrate reservoirsJiawei Zhou0Kaixiang Shen1Wenwei Xie2Yanjiang Yu3Yingsheng Wang4Bo Ning5Kewei Zhang6Haoyu Yu7Guangzhou Marine Geological Survey, China Geological SurveyGuangzhou Marine Geological Survey, China Geological SurveyGuangzhou Marine Geological Survey, China Geological SurveyGuangzhou Marine Geological Survey, China Geological SurveyGuangzhou Marine Geological Survey, China Geological SurveyGuangzhou Marine Geological Survey, China Geological SurveyGuangzhou Marine Geological Survey, China Geological SurveyGuangzhou Marine Geological Survey, China Geological SurveyAbstract Hydrajet fracturing could be a promising technique for increasing hydrate production; however, the pressure distribution law inside the perforation tunnel must first be investigated. This study established a two-dimensional axisymmetric model of the submerged water jet, employing the shear-stress transport k − ω turbulence model, to analyze the pressure distribution. The study examines the impact of various factors on pressure distribution, including well completion, perforation tunnel root diameter, hole diameter on the casing wall, nozzle diameter, nozzle pressure drop, confining pressure, and jet distance. Results reveal that the pressure inside the perforation tunnel exceeds the confining pressure due to jet flow, resulting in pressurization within the erosion tunnel, unaffected by the confining pressure. As the perforation tunnel root diameter increases, the pressurization drops sharply in a parabolic manner in both open hole and uncemented casing completion wells. For cemented casing completion wells, the pressurization is dependent solely on the hole diameter on the casing wall, and the perforation tunnel root diameter has no influence. As the nozzle diameter expands, the pressurization increases exponentially, with a more pronounced effect in open-hole conditions. The pressurization rises linearly in proportion to the nozzle pressure drop. In open-hole wells, a larger nozzle diameter leads to a greater linear increase. For uncemented casing completion, the rate of linear change first increases and then decreases as the hole diameter on the casing wall increases. As the jet distance increases, the pressurization first rises and then falls. The optimal jet distance for maximizing pressurization in open-hole wells decreases with increasing nozzle diameter. In uncemented casing completion wells, increasing the distance between the nozzle and the casing leads to greater pressurization. The results provide theoretical support for the application of hydraulic jet fracturing technology in hydrate extraction.https://doi.org/10.1038/s41598-025-90812-8Natural gas hydrateHydraulic jetPressure distributionNumerical simulation
spellingShingle Jiawei Zhou
Kaixiang Shen
Wenwei Xie
Yanjiang Yu
Yingsheng Wang
Bo Ning
Kewei Zhang
Haoyu Yu
Numerical simulation on the pressure distribution of hydraulic jet perforation tunnel in natural gas hydrate reservoirs
Scientific Reports
Natural gas hydrate
Hydraulic jet
Pressure distribution
Numerical simulation
title Numerical simulation on the pressure distribution of hydraulic jet perforation tunnel in natural gas hydrate reservoirs
title_full Numerical simulation on the pressure distribution of hydraulic jet perforation tunnel in natural gas hydrate reservoirs
title_fullStr Numerical simulation on the pressure distribution of hydraulic jet perforation tunnel in natural gas hydrate reservoirs
title_full_unstemmed Numerical simulation on the pressure distribution of hydraulic jet perforation tunnel in natural gas hydrate reservoirs
title_short Numerical simulation on the pressure distribution of hydraulic jet perforation tunnel in natural gas hydrate reservoirs
title_sort numerical simulation on the pressure distribution of hydraulic jet perforation tunnel in natural gas hydrate reservoirs
topic Natural gas hydrate
Hydraulic jet
Pressure distribution
Numerical simulation
url https://doi.org/10.1038/s41598-025-90812-8
work_keys_str_mv AT jiaweizhou numericalsimulationonthepressuredistributionofhydraulicjetperforationtunnelinnaturalgashydratereservoirs
AT kaixiangshen numericalsimulationonthepressuredistributionofhydraulicjetperforationtunnelinnaturalgashydratereservoirs
AT wenweixie numericalsimulationonthepressuredistributionofhydraulicjetperforationtunnelinnaturalgashydratereservoirs
AT yanjiangyu numericalsimulationonthepressuredistributionofhydraulicjetperforationtunnelinnaturalgashydratereservoirs
AT yingshengwang numericalsimulationonthepressuredistributionofhydraulicjetperforationtunnelinnaturalgashydratereservoirs
AT boning numericalsimulationonthepressuredistributionofhydraulicjetperforationtunnelinnaturalgashydratereservoirs
AT keweizhang numericalsimulationonthepressuredistributionofhydraulicjetperforationtunnelinnaturalgashydratereservoirs
AT haoyuyu numericalsimulationonthepressuredistributionofhydraulicjetperforationtunnelinnaturalgashydratereservoirs