Different Experimental and Numerical Models to Analyse Emptying Processes in Pressurised Pipes with Trapped Air

Author:

Paternina-Verona Duban A.1ORCID,Coronado-Hernández Oscar E.1ORCID,Espinoza-Román Hector G.2ORCID,Fuertes-Miquel Vicente S.3ORCID,Ramos Helena M.4ORCID

Affiliation:

1. Facultad de Ingeniería, Universidad Tecnológica de Bolívar, Cartagena 131001, Colombia

2. Grupo INMEDIT S.A.S., Facultad de Ingeniería, Universidad de Cartagena, Cartagena 130001, Colombia

3. Department of Hydraulic and Environmental Engineering, Universitat Politècnica de València, 46022 Valencia, Spain

4. Department of Civil Engineering, Architecture and Georesources, CERIS, Instituto Superior Técnico, University of Lisbon, 1049-001 Lisbon, Portugal

Abstract

In hydraulic engineering, some researchers have developed different mathematical and numerical tools for a better understanding of the physical interaction between water flow in pipes with trapped air during emptying processes, where they have made contributions on the use of simple and complex models in different application cases. In this article, a comparative study of different experimental and numerical models existing in the literature for the analysis of trapped air in pressurised pipelines subjected to different scenarios of emptying processes is presented, where different authors have develope, experimental, one-dimensional mathematical and complex computational fluid dynamics (CFD) models (two-dimensional and three-dimensional) to understand the level of applicability of these models in different hydraulic scenarios, from the physical and computational point of view. In general, experimental, mathematical and CFD models had maximum Reynolds numbers ranging from 2670 to 20,467, and it was possible to identify that the mathematical models offered relevant numerical information in a short simulation time on the order of seconds. However, there are restrictions to visualise some complex hydraulic and thermodynamic phenomena that CFD models are able to illustrate in detail with a numerical resolution similar to the mathematical models, and these require simulation times of hours or days. From this research, it was concluded that the knowledge of the information offered by the different models can be useful to hydraulic engineers to identify physical and numerical elements present in the air–water interaction and computational conditions necessary for the development of models that help decision-making in the field of hydraulics of pressurised pipelines.

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

Reference38 articles.

1. Experimental and numerical investigation on the motion of discrete air pockets in pressurized water flows;Chosie;J. Hydraul. Eng.,2014

2. AWWA (2016). Air Release, Air/Vacuum Valves and Combination Air Valves (M51), American Water Works Association.

3. Lauchlan, C., Escarameia, M., May, R., Burrows, R., and Gahan, C. (2005). Air in Pipelines—A Literature Review, Report SR; HR Wallingford.

4. Martin, C.S. (1976, January 22–24). Entrapped air in pipelines. Proceedings of the Second International Conference on Pressure Surges, London, UK.

5. Hydraulic modeling during filling and emptying processes in pressurized pipelines: A literature review;Urban Water J.,2019

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