Recommandé par l'IIF / Document IIF
Analyse par mécanique numérique des fluides d'une fuite de frigorigène inflammable à travers une microfissure.
Computational fluid dynamics analysis of flammable refrigerant leakage through a microcrack.
Résumé
Hydrofluorocarbons(HFCs) are potent greenhouse gases in refrigeration systems, and their contribution will accelerate climate change. In the context of global warming, low global warming refrigerants have to be reconsidered, these refrigerants are commonly flammable, so systems that use them can pose a risk. Thus, an analysis of potential pipe leaks in refrigeration systems is urgently needed. In existing research on refrigerant leak, most studies have examined holes as leak points. However, the true morphology of leak points is commonly long and extremely narrow. Therefore, a round-pipe microcrack leak model with crack opening displacement (COD) ranging from 10 to 50 µm were built to perform a simulation and experiment. The Fluent (v.20, ANSYS Inc.) software performed computational fluid dynamics analysis. The R290, R32, and R1234yf refrigerants were simulated, and the orifice flow equation was introduced to calculate leakage from the microcrack. An axial and circumferential microcrack model was constructed, and the experiment validated the simulation with largest relative error of 2.9%. The simulation results indicated that for side flow through the microcrack, using the conventional discharge coefficient () in the orifice equation may be unsuitable. Accordingly, based on the simulation results, empirical equations for predicting the of axial microcrack when R290, R32, and R1234yf are leaking are obtained. Additionally, the effect of length-to-diameter ratio and orifice-to-pipe-diameter ratio on are also discussed. Compared with existing studies, a smaller infinity discharge coefficient value was observed when COD < 30 µm.
Documents disponibles
Format PDF
Pages : 35-44
Disponible
Prix public
20 €
Prix membre*
Gratuit
* meilleur tarif applicable selon le type d'adhésion (voir le détail des avantages des adhésions individuelles et collectives)
Détails
- Titre original : Computational fluid dynamics analysis of flammable refrigerant leakage through a microcrack.
- Identifiant de la fiche : 30029324
- Langues : Anglais
- Sujet : Technologie
- Source : International Journal of Refrigeration - Revue Internationale du Froid - vol. 134
- Date d'édition : 02/2022
- DOI : http://dx.doi.org/10.1016/j.ijrefrig.2021.11.018
- Document disponible en consultation à la bibliothèque du siège de l'IIF uniquement.
Liens
Voir d'autres articles du même numéro (29)
Voir la source
Indexation
-
CFD analysis of propane dispersion in an indoor...
- Auteurs : RIGHETTI G., CALATI M., LONGO G. A., MANCIN S., ZILIO C.
- Date : 01/09/2021
- Langues : Anglais
- Source : 6th IIR Conference on Thermophysical Properties and Transfer Processes of Refrigerants
- Formats : PDF
Voir la fiche
-
Research on the field strength characteristics ...
- Auteurs : LI Y., YANG J., WU Y., LIU Y., ZHOU P., YAN Y., HAN X.
- Date : 09/2023
- Langues : Anglais
- Source : International Journal of Refrigeration - Revue Internationale du Froid - vol. 153
- Formats : PDF
Voir la fiche
-
Assessment of leakage rate and durability of fi...
- Auteurs : ELBEL S., LAWRENCE L., RAJ S.
- Date : 09/07/2018
- Langues : Anglais
- Source : 2018 Purdue Conferences. 17th International Refrigeration and Air-Conditioning Conference at Purdue.
- Formats : PDF
Voir la fiche
-
General framework for revising class A3 refrige...
- Auteurs : COLBOURNE D., SUEN K. O., LI T. X., VONSILD A.
- Date : 09/2020
- Langues : Anglais
- Source : International Journal of Refrigeration - Revue Internationale du Froid - vol. 117
- Formats : PDF
Voir la fiche
-
Theoretical analysis of the impacts of refriger...
- Auteurs : CHEN G., FANG J., LI Z., ZHANG S.
- Date : 03/2023
- Langues : Anglais
- Source : International Journal of Refrigeration - Revue Internationale du Froid - vol. 147
- Formats : PDF
Voir la fiche