4.7 Review

Computational simulation of the damage response for machining long fibre reinforced plastic (LFRP) composite parts: A review

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.compositesa.2021.106296

关键词

Machining of LFRP; Finite element simulation; Damage; Heat

资金

  1. National Key R&D Program of China [2018YFA0702803]
  2. Liaoning Revitalization Talents Program [XLYC1801008]
  3. State Scholarship Fund of China offered by China Scholarship Council (CSC)

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Long fibre reinforced plastics (LFRPs) are widely used in aerospace, transportation, and energy sectors due to their excellent mechanical properties, but they are prone to damage during machining. Finite element models can assist in predicting and analyzing damage in composite materials processing, inspiring the development of new models with improved prediction accuracy and computational efficiency. Current studies mainly focus on composite processing modelling, with room for improvement in various aspects.
Long fibre reinforced plastics (LFRPs) possess excellent mechanical properties and are widely used in the aerospace, transportation and energy sectors. However, their anisotropic and inhomogeneous characteristics as well as their low thermal conductivity and specific heat capacity make them prone to subsurface damage, delamination and thermal damage during the machining process, which seriously reduces the bearing capacity and shortens the service life of the components. To improve the processing quality of composites, finite element (FE) models were developed to investigate the material removal mechanism and to analyse the influence of the processing parameters on the damage. A review of current studies on composite processing modelling could significantly help researchers to understand failure initiation and development during machining and thus inspire scholars to develop new models with high prediction accuracy and computational efficiency as well as a wide range of applications. To this aim, this review paper summarises the development of LFRP machining simulations reported in the literature and the factors that can be considered in model improvement. Specifically, the existing numerical models that simulate the mechanical and thermal behaviours of LFRPs and LFRP-metal stacks in orthogonal cutting, drilling and milling are analysed. The material models used to characterise the constituent phases of the LFRP parts are reviewed. The mechanism of material removal and the damage responses during the machining of LFRP laminates under different tool geometries and processing parameters are discussed. In addition, novel and objective evaluations that concern the current simulation studies are conducted to summarise their advantages. Aspects that could be improved are further detailed, to provide suggestions for future research relating to the simulation of LFRP machining.

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