Back to results
Bibliographic record · Consultation and access
Artículo de revista

Numerical optimization of natural hybrid fiber reinforced composite overwrapped pressure vessel

Reta Warkina et al · Nature Portfolio · 2026

Open access available
Quick overview. Review the resource’s basic details, then access the content using the main button. This page shows only the information needed to identify, cite, and open the work.
Serial publication

3D scan-based classification of Chinese young female hand morphology

This serial publication contains 688 related contents.

Resource access

Open the content from the main option or choose another available source.

DOAJ DOAJ Articles
Entrar por DOAJ
Main access

Open access available

Recurso identificado como acceso abierto, sin confirmar automáticamente si es texto completo directo.
Open resource

Summary

Descripción general del contenido del recurso.

Abstract Composite overwrapped pressure vessels (COPVs) represent a paradigm shift in lightweight pressure containment, achieving substantial mass savings over traditional metallic vessels. However, their widespread deployment remains constrained by challenges in design, fabrication, and qualification, most notably the risk of catastrophic stress rupture failure arising from stress concentrations under burst and dynamic loading conditions. To address these concerns, this study undertakes a rigorous optimization of COPV design parameters, with particular emphasis on the influence of winding angles and lay-up patterns on burst pressure performance. Advanced finite element analysis using ABAQUS was employed to develop sixteen Aluminum/Flax–Sisal hybrid composite COPV models incorporating a 4 mm aluminum liner and varied ply configurations. In contrast to conventional synthetic fiber overwraps, the proposed natural synthetic hybrid system offers a sustainable alternative with competitive load-carrying capability. Comparative stress analyses indicate that optimized hybrid lay-ups can achieve burst pressures comparable to synthetic composites while reducing weight and environmental impact, thereby establishing their viability for safe and efficient pressure containment. A systematic investigation of fiber orientations and stacking sequences, conducted under isoperimetric thickness constraints, identified an optimal [24.5°, 24.5°] ply sequence in a PP winding pattern, achieving a maximum burst pressure of 10.295 MPa with ten reinforcement layers. Stress strain evaluations revealed a predominantly uniform membrane stress distribution, with critical stress concentrations localized at the polar boss interface. These findings provide valuable insights for enhancing the performance, durability, and operational safety of COPVs in high-demand storage, aerospace, and industrial applications.

How to cite

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

al, R. W. E. (2026). Numerical optimization of natural hybrid fiber reinforced composite overwrapped pressure vessel. https://doi.org/10.1038/s41598-026-43118-2

MLA

al, Reta Warkina et. "Numerical optimization of natural hybrid fiber reinforced composite overwrapped pressure vessel." 2026. https://doi.org/10.1038/s41598-026-43118-2.

Chicago

al, Reta Warkina et. 2026. "Numerical optimization of natural hybrid fiber reinforced composite overwrapped pressure vessel.". https://doi.org/10.1038/s41598-026-43118-2.

Harvard

al, R. W. E. 2026, Numerical optimization of natural hybrid fiber reinforced composite overwrapped pressure vessel, Nature Portfolio, available at: https://doi.org/10.1038/s41598-026-43118-2 [Accessed 8 Aug. 2026].

Share and print

Save the record, copy its permanent link, or print it as a PDF.

Export reference

You can export the record in common formats for use in a reference manager.

Resource details

Bibliographic information to help confirm that this is the correct material.

Title
Numerical optimization of natural hybrid fiber reinforced composite overwrapped pressure vessel
Author / contributors
Reta Warkina et al
Publisher
Nature Portfolio
Publication year
2026
ISSN
2045-2322
ISSN
2045-2322
Language
English

Subjects

Explore related resources through these subjects.

Copied