Vanguard Design of Smart Windows: Multi-Objective Optimisation of Dynamic Glazings for Radiative Cooling.
Demoors, Alessandro
Promoteur(s) :
Nguyen, Ngoc Duy
Date de soutenance : 29-jui-2026/30-jui-2026 • URL permanente : http://hdl.handle.net/2268.2/26076
Détails
| Titre : | Vanguard Design of Smart Windows: Multi-Objective Optimisation of Dynamic Glazings for Radiative Cooling. |
| Titre traduit : | [fr] Conception avant-gardiste des fenêtres intelligentes : optimisation multi-objectifs de vitrages dynamiques pour le refroidissement radiatif. |
| Auteur : | Demoors, Alessandro
|
| Date de soutenance : | 29-jui-2026/30-jui-2026 |
| Promoteur(s) : | Nguyen, Ngoc Duy
|
| Membre(s) du jury : | Vanderheyden, Benoît
Ghosez, Philippe
|
| Langue : | Anglais |
| Nombre de pages : | 101 |
| Mots-clés : | [fr] smart windows [fr] radiative cooling [fr] architecture [fr] thermochromic [fr] semiconducting heterostructure [fr] sustainable buildings [fr] genetic algorithm [fr] multi-objectives algorithm [fr] thermal emissivity [fr] Energetic efficiency |
| Discipline(s) : | Ingénierie, informatique & technologie > Multidisciplinaire, généralités & autres Physique, chimie, mathématiques & sciences de la terre > Physique |
| Public cible : | Chercheurs Professionnels du domaine Etudiants Grand public |
| Institution(s) : | Université de Liège, Liège, Belgique |
| Diplôme : | Master en ingénieur civil physicien, à finalité approfondie |
| Faculté : | Mémoires de la Faculté des Sciences appliquées |
Résumé
[en] Windows represent the primary thermal vulnerability in sustainable building envelopes, standing
at the intersection of conflicting architectural and thermodynamic demands : providing high
visual transparency while simultaneously managing massive solar and thermal radiative fluxes.
While contemporary research frequently focuses on optimizing single functionalities in isolation,
designing a truly multi-functional smart window requires satisfying these competing constraints
simultaneously across distinct spectral regimes. This thesis addresses this bottleneck through a
twofold contribution : the development of a fully computational, multi-objective optimization
framework and the design of a performant physical blueprint for a dynamic radiative cooling
glazing system.
Methodologically, the traditional trial-and-error approach to multilayer optical design is su-
perseded by an automated workflow coupling the Transfer Matrix Method (TMM) with a
Non-dominated Sorting Genetic Algorithm (NSGA-II). This framework successfully navigates
the vast, multidimensional geometric space of layer thicknesses to map entire Pareto-optimal
fronts. Physically, the algorithmic mapping revealed that the direct integration of a thermo-
chromic vanadium dioxide (VO2) layer severely degrades visible transparency (Tlum < 70%).
To overcome this limitation, the structural paradigm was shifted toward a resonant design,
culminating in the Fabry–P´erot Angular-Selective Thermochromic (FAST) window architecture.
Optimization of a ZnSe-based FAST stack unlocked a large Long-Wave Infrared (LWIR) swit-
ching capacity of up to ∆εLWIR = 0.50 while maintaining positive solar modulation (∆Tsol > 0).
Crucially, the optimization unveiled a fundamental physical trade-off : the resonant, isotropic
enhancement of emissivity within the Fabry–P´erot cavity inherently dilutes the directional
emission engineered by the top Epsilon-Near-Zero (ENZ) layers, forcing the Angular Enfor-
cement Factor below unity (AEF < 1) at maximum switching. Nevertheless, the workflow
successfully identified viable intermediate Pareto states that, for the first time, simultaneously
reconcile all competing criteria : satisfactory luminous transparency (Tlum > 70%), high color
fidelity ( CRI > 90), positive solar modulation, highly positive LWIR switching (∆εLWIR ≫ 0),
and finite angular selectivity (AEF > 1). Ultimately, this work demonstrates that advanced
genetic algorithms can successfully architect existing materials into high-performance resonant
structures, laying a comprehensive foundation for next-generation energy-efficient smart glass.
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