Abstract

Anchors may exhibit various complicated behaviors in the seabed, especially for deepwater anchors including gravity installed anchors (GIAs) and drag embedment plate anchors (drag anchors), stimulating the development of an efficient analytical tool that applies to a variety of anchors. The present paper introduces a unified model for analyzing different anchor behaviors in both clay and sand, consisting of unified concepts, mechanical models, and analytical procedure. The kinematic behaviors of the anchors are classified uniformly as three types, i.e., diving, pulling out, and keying. By utilizing the least-force principle, various anchor properties, such as the ultimate pullout capacity (UPC), failure mode, movement direction, embedment loss, and kinematic trajectory, can all be determined by the combination and analysis of the three behaviors. Applications of the model are demonstrated summarily, by solving the UPC and the failure mode of anchor piles and suction anchors, the kinematic trajectory of drag anchors in a single soil layer or layered soils, the maximum embedment loss (MEL) of suction embedded plate anchors (SEPLAs) and OMNI-Max anchors, and the kinematic behavior of OMNI-Max anchors. Compared to existing theoretical methods, this unified model shows strong applicability and potentiality in solving a variety of behaviors and properties of different anchors under complicated seabed conditions.

Highlights

  • With increasing advanced technologies and innovative anchor concepts in deepwater moorings, behaviors of the anchor are turning more complex during both installation and mooring, such as 360-degree rotatable loading arm of OMNI-Max anchors (an innovative type of gravity installed anchors (GIAs)), long-distance trajectory of drag embedment plate anchors (Figure 1) [1], high strain rate of soil during the gravity installation of GIAs, and keying and embedment loss of OMNI-Max anchors and suction embedded plate anchors (SEPLAs) (Figure 2) [1]

  • For SEPLAs and OMNI-Max anchors, the behavior of keying and the embedment loss are of more concern

  • This study aims to explore mechanical properties and comprehensive behaviors of

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Summary

Introduction

With increasing advanced technologies and innovative anchor concepts in deepwater moorings, behaviors of the anchor are turning more complex during both installation and mooring, such as 360-degree rotatable loading arm of OMNI-Max anchors (an innovative type of gravity installed anchors (GIAs)), long-distance trajectory of drag embedment plate anchors (Figure 1) [1], high strain rate of soil (up to 25 s−1 ) during the gravity installation of GIAs, and keying and embedment loss of OMNI-Max anchors and suction embedded plate anchors (SEPLAs) (Figure 2) [1].

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