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April 24, 2026Journal of Marine Science and Engineering0 citationsOpen Access

Development and Testing of an In Situ Observation Device for Seafloor Boreholes

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HDHaodong DengJZJianping ZhouXGXiaotao Gai

Key Points

  • The research aims to develop a device for monitoring sub-surface hydrothermal processes in marine environments.
  • Developed a novel in situ penetration probe for post-drilling deployment in boreholes.
  • Conducted numerical simulations to optimize the probe's design and assess stability.
  • Performed laboratory tests and shallow-water sea trials to validate the device's performance.
  • The probe effectively couples with the crust in hydrothermal terrains, enabling precise data collection.
  • Successful validation of the device's dynamic response and electromechanical integrity.
  • Demonstrated capability for three-dimensional observation of hydrothermal processes.

Abstract

Seafloor hydrothermal systems at mid-ocean ridges are focal points for heat and matter exchange between the seawater and lithosphere. While seafloor seismographs (OBS) and pressure recorders (BPR) are standard for regional monitoring, achieving high-precision, vertical sub-surface data in complex hydrothermal terrains remains a significant technical objective. This study presents a novel in situ penetration probe designed for multi-parameter monitoring of marine hydrothermal vent areas. A key innovation of this work is its operational versatility and engineering efficiency: the probe is specifically designed for post-drilling deployment in boreholes, effectively utilizing existing coring sites to achieve direct coupling with the deep-seated crust, or for targeted placement via Remotely Operated Vehicles (ROVs). The device integrates a titanium-alloy conical tip and cylindrical chamber, housing tri-axial accelerometers and dual temperature-pressure sensors. Numerical simulations using the SST k-ω turbulence model and finite element analysis optimized the cone aperture and assessed fluid–structure stability under deep-sea conditions. Laboratory vibration tests and shallow-water sea trials validated the probe’s basic dynamic response, electromechanical integrity, and capability to acquire coupled environmental parameters. This compact, modular design provides a scalable and cost-effective framework for precise three-dimensional observation of sub-surface hydrothermal processes and deep-sea resource exploration.

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Cite This Study

Deng et al. (2026) studied this question.

synapsesocial.com/papers/69eb0bc7553a5433e34b559ahttps://doi.org/10.3390/jmse14090769
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