An Investigation of the Bisymmetric Hydrostatic Collapse of Flexible Pipes Based on Equivalent Layer Approaches

Author:

de Sousa José Renato M.1,Protasio Marcelo K.1,Sagrilo Luís Volnei S.1,Rocha Djalene Maria2

Affiliation:

1. COPPE/UFRJ, Department of Civil Engineering, Prédio Anexo do Centro de Tecnologia, LACEO, Av. Pedro Calmon, s/n, 2° andar, Cidade Universitária, Ilha do Fundão, Rio de Janeiro CEP 21941-596, Brazil

2. Petrobras Research and Development Center, CENPES, Av. Horácio Macedo, 950, Cidade Universitária, Ilha do Fundão, Rio de Janeiro CEP 21941-915, Brazil

Abstract

Abstract The hydrostatic collapse strength of a flexible pipe is largely dependent on the ability of its carcass and/or pressure armor to resist radial loading and, therefore, its prediction involves an adequate modeling of these layers. Hence, initially, this work proposes a set of equations to estimate equivalent mechanical properties for these layers, which allows their modeling as equivalent orthotropic cylinders. Particularly, equations to predict the equivalent ring bend stiffness are obtained by simulating several two-point static ring tests with a three-dimensional finite element (FE) model based on beam elements and using these results to form datasets that are analyzed with a symbolic regression (SR) tool. The results of these analyses are the closed-form equations that best fit the provided datasets. After that, these equations are used in conjunction with a three-dimensional shell FE model (FEM) and a previously presented analytical model to study the bisymmetric hydrostatic collapse mechanism of flexible pipes. The predictions of these models agreed well with the collapse pressures obtained with numerical models and in experimental tests thus indicating the potential use of this approach in the design of flexible pipes.

Publisher

ASME International

Subject

Mechanical Engineering,Ocean Engineering

Reference35 articles.

1. Qualification Testing of Flexible Pipes for 3000 m Water Depth;Bectarte,2011

2. Flexible Pipe Curved Collapse Resistance Calculation;Paumier,2009

3. Silva, J. L. , 2014, “Development and Experimental Calibration of Numerical Model Based on Beam Theory to Estimate the Collapse Pressure of Flexible Pipes,” M.Sc. dissertation, COPPE/UFRJ, Rio de Janeiro(in Portuguese).

4. A Review on Predicting Critical Collapse Pressure of Flexible Risers for Ultra-Deep Oil and Gas Production;Li;Appl. Ocean Res.,2018

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