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Erosion Behavior of Cohesive Deep-Sea Sediments Under Submerged Water Jets: Numerical Simulation and Experimental Validation
by
Zhu, Xiang
, Zhang, Yanyang
, Dai, Yu
, Liu, Chenglong
, Wang, Gang
, Chen, Bingzheng
, Cheng, Yangrui
in
Analysis
/ cohesive sediments
/ Deep sea mining
/ Efficiency
/ EMF method
/ erosion process
/ Mechanical properties
/ Nozzle geometry
/ Numerical analysis
/ Reynolds number
/ Sediments
/ Simulation
/ Simulation methods
/ Soil erosion
/ submerged water jets
/ Velocity
/ Viscosity
/ Water
2025
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Erosion Behavior of Cohesive Deep-Sea Sediments Under Submerged Water Jets: Numerical Simulation and Experimental Validation
by
Zhu, Xiang
, Zhang, Yanyang
, Dai, Yu
, Liu, Chenglong
, Wang, Gang
, Chen, Bingzheng
, Cheng, Yangrui
in
Analysis
/ cohesive sediments
/ Deep sea mining
/ Efficiency
/ EMF method
/ erosion process
/ Mechanical properties
/ Nozzle geometry
/ Numerical analysis
/ Reynolds number
/ Sediments
/ Simulation
/ Simulation methods
/ Soil erosion
/ submerged water jets
/ Velocity
/ Viscosity
/ Water
2025
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Erosion Behavior of Cohesive Deep-Sea Sediments Under Submerged Water Jets: Numerical Simulation and Experimental Validation
by
Zhu, Xiang
, Zhang, Yanyang
, Dai, Yu
, Liu, Chenglong
, Wang, Gang
, Chen, Bingzheng
, Cheng, Yangrui
in
Analysis
/ cohesive sediments
/ Deep sea mining
/ Efficiency
/ EMF method
/ erosion process
/ Mechanical properties
/ Nozzle geometry
/ Numerical analysis
/ Reynolds number
/ Sediments
/ Simulation
/ Simulation methods
/ Soil erosion
/ submerged water jets
/ Velocity
/ Viscosity
/ Water
2025
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Erosion Behavior of Cohesive Deep-Sea Sediments Under Submerged Water Jets: Numerical Simulation and Experimental Validation
Journal Article
Erosion Behavior of Cohesive Deep-Sea Sediments Under Submerged Water Jets: Numerical Simulation and Experimental Validation
2025
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Overview
Understanding the interaction between submerged water jets and cohesive deep-sea sediment is critical for optimizing deep-sea polymetallic nodule hydraulic mining techniques. This research investigated the distinct erosion behavior of cohesive sediments through laboratory experiments and numerical simulations. Cohesive deep-sea sediments were simulated using bentonite–kaolinite mixtures. A series of laboratory experiments, including vane shear tests and viscosity tests under varying moisture content, were conducted to assess the sediments’ mechanical properties. Experimental submerged water jet erosion tests provided basic data for validating the numerical simulations. A Eulerian multi-fluid (EMF) model was implemented to capture sediment–water jet interactions under varying operational parameters, including jet velocities and nozzle heights. The erosion process was found to comprise three distinct stages, including rapid erosion, steady erosion, and stabilization. Two distinct erosion mechanisms were identified, depending on the jet intensity, which affected the depth and shape of the erosion pits. Quantitative analysis revealed that erosion depth exhibits an approximately linear relationship with jet velocity and nozzle height, whereas the erosion diameter shows nonlinear characteristics. These findings enhance the fundamental understanding of cohesive sediment responses under hydraulic disturbances, providing crucial insights for the design and optimization of efficient deep-sea mining systems.
Publisher
MDPI AG
Subject
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