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Liguo Zhao

Researcher at Loughborough University

Publications -  114
Citations -  2093

Liguo Zhao is an academic researcher from Loughborough University. The author has contributed to research in topics: Stent & Superalloy. The author has an hindex of 23, co-authored 101 publications receiving 1584 citations. Previous affiliations of Liguo Zhao include University of Portsmouth & University of Cambridge.

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Discrete dislocation dynamics modelling of mechanical deformation of nickel-based single crystal superalloys

TL;DR: In this article, discrete dislocation dynamics (DDDDDD) has been used to model the deformation of nickel-based single crystal superalloys with a high volume fraction of precipitates at high temperature.
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A micromechanical study of residual stress and its effect on transverse failure in polymer–matrix composites

TL;DR: In this paper, the effect of residual stress on failure in unidirectional fiber-reinforced polymer-matrix composites under transverse loading was studied using a micromechanical unit cell model and the finite element method.
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A thermo-viscoelastic analysis of process-induced residual stress in fibre-reinforced polymer–matrix composites

TL;DR: In this paper, a three-dimensional unit cell with glass fibre and epoxy polymer-matrix, representing the periodic microstructure of unidirectional fiber-reinforced composites, was considered to compute cure residual stress of fibre composites induced by chemical shrinkage of the epoxy resin and thermal cooling contraction of the whole fibre and resin system.
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The evolution of the stress–strain fields near a fatigue crack tip and plasticity‐induced crack closure revisited

TL;DR: In this paper, the evolution of the stress-strain fields near a stationary crack tip under cyclic loading at selected R-ratios has been studied in a detailed elastic-plastic finite element analysis.
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A crystal plasticity study of cyclic constitutive behaviour, crack-tip deformation and crack-growth path for a polycrystalline nickel-based superalloy

TL;DR: In this paper, the authors applied crystal plasticity to model the cyclic constitutive behavior of a polycrystalline nickel-based superalloy at elevated temperature using finite element analyses.