2026· Materials Research Proceedings· Vol 69, pp. 1427-1431· 0 citations
Abstract
Abstract. The accurate prediction of failure in structural components is a crucial requirement in modern aerospace applications, particularly with the rise of reusable launch systems. Traditional finite element methods, based on Classical Continuum Mechanics, are limited when it comes to modelling discontinuities such as cracks. Peridynamics (PD) theory overcomes these limitations by using integral equations which allow describing a natural and autonomous damage evolution. However, PD suffers from high computational costs, particularly when solved using the commonly adopted mesh-free method with one-point Gaussian quadrature. The Fast Convolution Based Method (FCBM) exploits the convolutional structure of PD equations and the Fast Fourier Transform to critically reduce the computational time. However, it can compromise accuracy in the simulation of crack propagation, due to the damage model adopted. This work presents a novel Hybrid PD method (developed for both the Bond-Based and Ordinary State-Based formulations) that combines the accuracy of PD mesh-free formulation with the efficiency of FCBM, achieving a significant reduction in computational time.
Fracture mechanics is essential for predicting the failure of materials and structures. The Phase-Field Fracture (PFF) method has emerged as a powerful computational tool, overcoming the limitations of classical discrete approaches by modeling cracks as diffuse damage bands. This formulation eliminates the need for exp...
To address the limitation that classical Concrete Plastic Damage (CDP) models cannot be applied to beam elements, this paper proposes an improved multi-axis concrete constitutive integration algorithm suitable for three-dimensional beam elements. This method abandons the commonly used plane stress assumption at the int...
Kai-Qi Wang, Xuan Liu· Advances in Engineering Inno...· 0 citations
This paper reformulates the correction factor in the force-state of the bond-associated peridynamic (BAPD) model. The reformulation is established from the strain energy density equivalence between the BAPD model and the classical continuum mechanics (CCM) model at a material point. With the FEM solution taken as the r...
Wen-Ping Han, Bo-Wen Sun, Shan-Kun Liu et al.· 0 citations
This work presents a computational framework for the generation of Representative Volume Elements (RVEs) of composite materials, with emphasis on the development of efficient separation algorithms for non-overlapping inclusions, providing a system for the analysis of composite materials. The methodology ensures geometr...
João Pinheiro, J. M. Guedes, H. C. Rodrigues· MATEC Web of Conferences· 0 citations
HIMEX is implemented as an automated state-transfer workflow in ABAQUS that switches from implicit to explicit analysis during PDFA, and leverages native implicit/explicit solvers and PDFA material models to significantly accelerate PDFA for composites.
Muhammed Jawaad Zulqernine, Shi-Yao Lin· AIAA Journal· 0 citations