Master's thesis and Internship : Framework for Evaluating the Design Requirements of ATEX-Certified Psychrometric Chambers
Van de Velde, Olivier
Promoteur(s) :
Lemort, Vincent
;
Gendebien, Samuel
Date de soutenance : 29-jui-2026/30-jui-2026 • URL permanente : http://hdl.handle.net/2268.2/26144
Détails
| Titre : | Master's thesis and Internship : Framework for Evaluating the Design Requirements of ATEX-Certified Psychrometric Chambers |
| Auteur : | Van de Velde, Olivier
|
| Date de soutenance : | 29-jui-2026/30-jui-2026 |
| Promoteur(s) : | Lemort, Vincent
Gendebien, Samuel
|
| Membre(s) du jury : | Dewallef, Pierre
kalin, Ismail |
| Langue : | Anglais |
| Nombre de pages : | 46 |
| Mots-clés : | [en] psychrometric [en] chamber [en] ATEX |
| Discipline(s) : | Ingénierie, informatique & technologie > Energie |
| Commentaire : | Link to the web application found in the extra url field. |
| URL complémentaire : | https://psychrometric-simulator.streamlit.app/ |
| Institution(s) : | Université de Liège, Liège, Belgique |
| Diplôme : | Master : ingénieur civil en génie de l'énergie à finalité spécialisée en Energy Conversion |
| Faculté : | Mémoires de la Faculté des Sciences appliquées |
Résumé
[en] Driven by increasingly stringent environmental and safety regulations, as well as emerging restrictions on per- and polyfluoroalkyl substances (PFAS), the HVAC/R industry is rapidly transitioning toward natural refrigerants like highly flammable propane (R290). The use of such fluids in HVAC/R applications requires special testing facilities to safely evaluate their thermal performance.
This thesis addresses these risks by implementing a zone-avoidance engineering strategy. By combining safety ventilation that ensures sufficient dilution, with automated fail-safe shutdown sequences, potential refrigerant leaks are properly managed. This guarantees both personnel and installation safety. This approach enables the establishment of a Zone of Negligible Extent (Zone 2 NE), thereby eliminating the need for explosion-proof instrumentation within the experimental volume.
To operationalize this framework, a comprehensive engineering design tool was developed as a Python-based Streamlit web application. The application integrates a three-tier computational engine comprising a transient 1D thermal RC network wall model for multi-layer heat transfer, a dynamic energy balance module to evaluate real-time HVAC thermal load compensation, and a tree-based decision solver to map EN 378 compliance pathways and compute mandatory volumetric safety ventilation flow rates.
Finally, a techno-economic analysis was performed on a baseline twin-chamber configuration (32.19 m³ individual volume, 30 kW dynamic thermal load compensation). A budget offer from Aralab indicates a capital investment of €600,000 without accounting for installation costs, whereas a bottom-up cost estimation for a self-assembled alternative ranges from €58,587 to €100,453. While the in-house solution offers significant cost savings, it shifts a substantial engineering workload, safety validation and full legal liability onto the university.
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