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Thermoelastic optimisation of fibre-steered composite mirrors for space-based laser communication systems

dc.contributor.authorYang, Nenglong
dc.contributor.authorStamatopoulos, Georgios
dc.contributor.authorSabarad, Sampreet
dc.contributor.authorSkordos, Alexandros A.
dc.contributor.authorNeale, Geoffrey
dc.date.accessioned2026-07-02T10:29:39Z
dc.date.available2026-07-02T10:29:39Z
dc.date.freetoread2026-07-02
dc.date.issued2026-08
dc.date.pubOnline2026-06-20
dc.description.abstractLightweight, dimensionally stable mirrors are essential for space-based laser communication, requiring concurrent optimisation of mass, stiffness, and environmental stability. This study presents a novel design–manufacture–validation framework that explicitly links variable-stiffness laminate design, manufacturing-induced effects, and experimentally validated optical performance under identical conditions. The novelty lies in providing the first experimentally validated, like-for-like comparison between conventional straight-fibre and Rapid Tow Shearing (RTS) laminates for precision composite mirrors under identical geometry, loading conditions, manufacturing assumptions, and validation procedures. The framework combines finite-element structural, thermoelastic, and hygroscopic analyses with Cure Hardening Instantaneously Linear Elastic (CHILE)-based process modelling and demonstrator-level validation for a 0.50 m composite mirror. Both designs satisfy the > 140 Hz fundamental frequency requirement and exhibit large safety margins. The straight-fibre laminate achieves ∼ 153 Hz and ∼ 69 µm RMS, while the RTS laminate achieves ∼ 145 Hz with comparable deformation and ∼ 11% lower mass. Hygroscopic effects are modest, and cure-induced distortion is dominated by low-order modes. The results demonstrate that RTS enables mass-efficient stiffness tailoring without degrading first-order thermoelastic performance and establish a validated methodology linking modelling predictions, manufacturing variability, and measured surface figure for next-generation lightweight space optics.
dc.description.journalNameMaterials & Design
dc.description.sponsorshipThis work was supported by the UK Space Agency through the National Space Innovation Programme (NSIP), grant number KS1-040, in collaboration with ICOMAT Ltd.
dc.identifier.citationYang N, Stamatopoulos G, Sabarad S, et al., (2026) Thermoelastic optimisation of fibre-steered composite mirrors for space-based laser communication systems. Materials & Design, Volume 268, August 2026, Article number 116430en_UK
dc.identifier.elementsID871446
dc.identifier.issn0264-1275
dc.identifier.paperNo116430
dc.identifier.urihttps://doi.org/10.1016/j.matdes.2026.116430
dc.identifier.urihttps://dspace.lib.cranfield.ac.uk/handle/1826/25391
dc.identifier.volumeNo268
dc.languageEnglish
dc.language.isoen
dc.publisherElsevieren_UK
dc.publisher.urihttps://www.sciencedirect.com/science/article/pii/S0264127526010038?via%3Dihub
dc.relation.isreferencedbyhttps://doi.org/10.57996/cran.ceres-2842
dc.rightsAttribution 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/
dc.subject40 Engineeringen_UK
dc.subject4001 Aerospace Engineeringen_UK
dc.subjectMaterialsen_UK
dc.subject4016 Materials engineeringen_UK
dc.subject4017 Mechanical engineeringen_UK
dc.subjectPolymer-matrix composites (PMCs)en_UK
dc.subjectThermomechanicalen_UK
dc.subjectFinite element analysis (FEA)en_UK
dc.subjectProcess modellingen_UK
dc.titleThermoelastic optimisation of fibre-steered composite mirrors for space-based laser communication systemsen_UK
dc.typeArticle
dcterms.dateAccepted2026-06-16

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