Ultimate limit state analysis of FRP composite sandwich plates – development of a semi-analytical method
Paper in proceeding, 2016

The development of Sandwich PULS, a semi-analytical calculation tool for predicting the ultimate limit state (ULS) of FRP composite sandwich plates is presented. This was done by extending DNV GL’s semi-analytical calculation tool Composite PULS, which is used for quick estimation of the ULS for unstiffened composite plates. ULS was evaluated in terms of the first buckling load and the first ply failure (FPF). The Sandwich PULS code was developed by implementing formulations for sandwich plate theory. First-order shear deformation theory (FSDT) was implemented to include the transverse shear deformations that are highly important for sandwich plates with poor shear stiffness of the core. The Sandwich PULS code was evaluated against nonlinear finite element analyses (FEA). It was concluded that Sandwich PULS shows good agreement with FEA-predicted critical buckling loads. For all inspected plates, Sandwich PULS shows improved results compared to Composite PULS. Differences between Sandwich PULS and FEA are caused by the difference in evaluating shear stiffness. It has been shown that neglecting shear stiffness of faces results in good agreement between Sandwich PULS and FEA, while use of conventional shear correction factors proved to be unfavourable for sandwich plates. It was found that Sandwich PULS is limited in terms of slenderness. Sandwich plates with soft core should not have slenderness below 20 to assure an accurate solution.

sandwich plates

fibre-reinforced polymers

ULS

first-order shear deformation

semi-analytical method

Author

Jonas Ringsberg

Chalmers, Shipping and Marine Technology, Marine Technology

Niklas Blomgren

Chalmers, Shipping and Marine Technology, Marine Technology

Matej Prevc

Chalmers, Shipping and Marine Technology, Marine Technology

Proceedings of The ASME 2016 35th International Conference on Ocean, Offshore and Arctic Engineering (OMAE 2016)

Vol. 3 1-11 OMAE2016-54069

The ASME 2016 35th International Conference on Ocean, Offshore and Arctic Engineering (OMAE 2016)
Busan, South Korea,

Chalmers Area of Advance Transport – funding 2016

Chalmers, 2016-01-01 -- 2016-12-31.

Subject Categories

Mechanical Engineering

Vehicle Engineering

Composite Science and Engineering

Driving Forces

Sustainable development

Innovation and entrepreneurship

Areas of Advance

Transport

Production

Materials Science

Roots

Basic sciences

DOI

10.1115/OMAE2016-54069

More information

Latest update

10/11/2018