PG-EAM - Graduate Program in Aeronautical and Mechanical Engineering
PT EN
PhD Thesis 2025

Characteization and modelling of milling induced damage in composite laminates

Author

Sergio Luiz Moni Ribeiro Filho

Concentration Area

Projeto Aeronáutico, Estruturas e Sistemas Aeroespaciais

Defense Date

27/06/2025

Thesis Number

80545

Abstract

The aerospace industry, bound by exacting design mandates, seeks ever-leaner, more economically sustainable aircraft to meet the urgent need for reduced emissions. In this pursuit, carbon fibre-reinforced polymers (CFRPs) are among the most widely adopted, offering bespoke, damage-tolerant structures whose remarkable strength-to-weight ratios come paired with more fuel-efficient aircraft. This work introduces an energy-based formulation for a three-dimensional ply failure model to investigate the milling-induced damage of unidirectional (UD) CFRP, using a VUMAT subroutine. The model incorporates a unique fibre-kink formulation, where kink-band initiation is defined by matrix failure criteria within the localized deformation band. This damage framework integrates a continuum damage mechanics (CDM) with cohesive interface elements to predict both intra/translaminar and interlaminar failure modes. At the ply level, the CDM model accounts for in-plane shear failure, fibre failure (in tension/compression), and matrix cracking (in tension/compression). Machining-induced delamination is evaluated using native cohesive interface elements, whose formulation is based on a bilinear traction-separation law, predicting the initiation and propagation of delaminations. Cutting forces are computed at each increment of time during the simulations and experimentally validated through dry milling tests. A full factorial design (2³) is established to identify the effects of cutting speed, depth of cut, and tool geometry on the surface roughness, cutting forces and milling-induced damage on the carbon fibres, while a one-way analysis of variance assessed the influence of fibre cutting direction (0º vs 90º). Subsurface damage is characterized using high-speed imaging and scanning electron microscopy (SEM). A fairly good correlation between numerical predictions and experimental data in terms of milling force and damage patterns was found. The 4-flute end mill generated higher cutting forces compared to the 7-flute tool, leading to increased surface roughness and subsurface damage. The findings outline the multi-mechanism nature of CFRP milling damage: at lower depths of cut, the damage is relatively uniform and characteristic of a ductile-dominated regime, whereas increased cutting depths promote brittle failure modes such as fibre pull-out, interfacial debonding, and delamination.

Keywords

Materiais compósitos Laminados Método de elementos finitos Fibras de carbono Danos Fresagem (usinagem) Deformação Delaminação Ensaios de materiais Engenharia de materiais