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February 26, 2026Journal of Marine Science and Engineering0 citationsOpen Access

Experiment Tests and Numerical Simulations of Leakage from Double-Hull Oil Tanks in a Fixed State

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WZWenzhuo ZhangRZRenqing ZhuXZXinLong Zhang

Key Points

  • The aim is to explore how damage in double-hull oil tanks affects leakage under still water conditions.
  • Conducted model tests using a scaled double-hull oil tank based on a 75,000 DWT oil tanker.
  • Examined effects of damage location (side-shell and bottom) and varying breach sizes on leakage.
  • Captured multiphase flow dynamics and surrounding flow field.
  • Measured leakage pressure under fixed model conditions.
  • Performed numerical simulations to validate model test findings.
  • Larger breach sizes lead to faster stabilization of pressure during leakage.
  • Side-shell breaches initially exhibit pressure-driven leakage followed by density-driven flow.
  • Bottom breaches cause flooding and oil sealing, resulting in significant oil-water stratification.
  • Numerical simulation results correlated well with the experimental data.

Abstract

To investigate the leakage characteristics of damaged double-hull oil tanks in still water, this study conducted both model tests and numerical simulations on the leakage process of a damaged double-hull oil tank model. Based on a 75,000 DWT oil tanker, a scaled model was designed according to similarity criteria. The effects of different damaged locations (side-shell and bottom) and various breach sizes on the tank’s leakage behavior were examined. The evolution of multiphase flow inside the tank and the surrounding flow field was captured, and the leakage pressure under fixed model conditions was measured. The model test results indicate that larger breach sizes lead to a more rapid stabilization of the pressure load during leakage and the liquid exchange process. For side shell breaches, after an initial phase of pressure-difference-driven leakage, a density-driven flow develops at the stable liquid interface. Bottom breaches cause flooding that results in an oil sealing phenomenon at the bottom, leading to a pronounced oil–water stratification. Corresponding numerical simulations of the model tests were performed, and the results were compared and validated against the model test data.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/699fe3f995ddcd3a253e8104https://doi.org/10.3390/jmse14050412
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