Three-dimensional modelling of drag anchor penetration using the material point method

Fuente: arXiv
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Bibliographic Details
Main Authors: Bird, Robert E., Coombs, William M., Brown, Michael J., Augarde, Charles E., Sharif, Yaseen U., Pretti, Giuliano, Macdonald, Catriona, Stevens, Duncan, Carter, Gareth
Format: Preprint
Published: 2025
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author Bird, Robert E.
Coombs, William M.
Brown, Michael J.
Augarde, Charles E.
Sharif, Yaseen U.
Pretti, Giuliano
Macdonald, Catriona
Stevens, Duncan
Carter, Gareth
author_facet Bird, Robert E.
Coombs, William M.
Brown, Michael J.
Augarde, Charles E.
Sharif, Yaseen U.
Pretti, Giuliano
Macdonald, Catriona
Stevens, Duncan
Carter, Gareth
contents Drag embedment anchors are a key threat to buried subsea linear infrastructure, such as power/data cables and pipelines. For cables, selecting a burial depth is a compromise between protecting the cable from anchor strike and the increased cost of deeper installation. This presents an efficient large deformation, elasto-plastic Material Point Method-based soil-structure interaction predictive tool for the estimation of anchor penetration based on Cone Penetration Test (CPT) site investigation data. The tool builds on earlier work by the authors supplemented by three developments: modelling assemblies of rigid bodies (necessary for articulated anchors), a partitioned domain approach to enable accurate and efficient modelling of long anchor pulls and an improved means of modelling rotational inertia. The tool is validated against scaled physical tests conducted in a geotechnical centrifuge on sands with a range of relative densities with good agreement across the tested conditions. Numerical simulations identify key issues with the UK Cable Burial Risk Assessment (CBRA) approach for estimating anchor penetration and reveal the potentially non-conservatism of the CBRA framework for sandy seabeds. The numerical model enables site-specific anchor-penetration assessment along cable routes and can be used to evaluate the performance of different anchor designs and sizes in varied soil conditions.
format Preprint
id arxiv_https___arxiv_org_abs_2512_03632
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Three-dimensional modelling of drag anchor penetration using the material point method
Bird, Robert E.
Coombs, William M.
Brown, Michael J.
Augarde, Charles E.
Sharif, Yaseen U.
Pretti, Giuliano
Macdonald, Catriona
Stevens, Duncan
Carter, Gareth
Numerical Analysis
Drag embedment anchors are a key threat to buried subsea linear infrastructure, such as power/data cables and pipelines. For cables, selecting a burial depth is a compromise between protecting the cable from anchor strike and the increased cost of deeper installation. This presents an efficient large deformation, elasto-plastic Material Point Method-based soil-structure interaction predictive tool for the estimation of anchor penetration based on Cone Penetration Test (CPT) site investigation data. The tool builds on earlier work by the authors supplemented by three developments: modelling assemblies of rigid bodies (necessary for articulated anchors), a partitioned domain approach to enable accurate and efficient modelling of long anchor pulls and an improved means of modelling rotational inertia. The tool is validated against scaled physical tests conducted in a geotechnical centrifuge on sands with a range of relative densities with good agreement across the tested conditions. Numerical simulations identify key issues with the UK Cable Burial Risk Assessment (CBRA) approach for estimating anchor penetration and reveal the potentially non-conservatism of the CBRA framework for sandy seabeds. The numerical model enables site-specific anchor-penetration assessment along cable routes and can be used to evaluate the performance of different anchor designs and sizes in varied soil conditions.
title Three-dimensional modelling of drag anchor penetration using the material point method
topic Numerical Analysis
url https://arxiv.org/abs/2512.03632