PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 10, 2026Processes3 citationsOpen Access

Experimental Investigation on the Functional Performance of Rupture Disks Under Annular Pressure Conditions in Deepwater Gas Wells

SGShen GuanChina University of Petroleum, BeijingXCXuyue ChenChina University of Petroleum, BeijingSLS. LiuChina University of Petroleum, Beijing

Key Points

  • This research aims to explore the performance of rupture discs under annular pressure conditions in deepwater gas wells.
  • Developed a laboratory-scale rupture disc testing system with controlled temperature and pressure
  • Conducted experiments to simulate thermal expansion and gas pressurization in a sealed environment
  • Examined effects of various operational factors on rupture disc activation behaviour
  • Higher temperatures and pressurization rates significantly reduce rupture disc burst pressure
  • Gas flow rates and operational changes lead to a shift in failure mechanisms
  • Corrosion effects stabilize after a certain duration, affecting burst pressure variability

Abstract

With the continuous expansion of deepwater oil and gas development, annular pressure buildup in gas wells has become an increasingly critical safety concern. Rupture discs, as passive pressure relief devices, have attracted attention for potential application in annular pressure management in deepwater wells. However, their performance under complex downhole environments characterized by high temperature, dynamic loading, gas flow, and corrosion remains insufficiently understood. In this study, a laboratory-scale rupture disc burst-pressure experimental system with independently controllable temperature, pressure, and gas flow rate was developed. By simulating the coupled loading process caused by thermal expansion and controlled gas pressurization in a sealed annulus, a series of systematic experiments considering multiple operating factors were conducted to investigate rupture disc activation behaviour under representative deepwater well conditions. The experimental programme examined the effects of temperature, annular pressure ramp rate, gas flow rate, and acidic corrosion degradation. The results show that increasing temperature, higher annular pressure ramp rates, and elevated gas flow rates significantly reduce the rupture disc burst pressure and increase its statistical dispersion, indicating a transition of the loading state from quasi-static to dynamically coupled conditions. Under high flow rates and rapid pressurization, transient stress redistribution and amplification of local defects become dominant, shifting the failure mechanism from strength-controlled to defect-controlled behaviour. In contrast, corrosion degradation exhibits a stage-dependent influence: although burst pressure decreases with increasing corrosion time, the reduction rate gradually stabilizes, and the variability of burst pressure decreases as corrosion severity increases. These findings provide experimental insights into rupture disc behaviour under coupled environmental and operational factors and offer useful guidance for rupture disc selection and safety margin design in annular pressure control systems for deepwater gas wells.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Guan et al. (2026) studied this question.

synapsesocial.com/papers/69d895206c1944d70ce060cchttps://doi.org/10.3390/pr14071180
Ask AI
Helpful
Bookmark
Share
View Full Paper