Mostrar el registro sencillo del ítem
dc.contributor.author | Cabrera Marcet, Enrique | es_ES |
dc.contributor.author | Gómez Sellés, Elena | es_ES |
dc.contributor.author | Espert Alemany, Vicent B. | es_ES |
dc.contributor.author | Cabrera Rochera, Enrique | es_ES |
dc.date.accessioned | 2018-09-26T04:31:20Z | |
dc.date.available | 2018-09-26T04:31:20Z | |
dc.date.issued | 2017 | es_ES |
dc.identifier.issn | 1877-7058 | es_ES |
dc.identifier.uri | http://hdl.handle.net/10251/108208 | |
dc.description.abstract | [EN] As time goes by, the need to move water is greater and this water will be pressurized. Layout flexibility, security, quality care, control, lower environmental impact and higher efficiency justify pressurized transport rather than natural gravitational water transport. On the negative side, we find the enormous amount of energy pressurized systems require with the associated negative economic and environmental impacts. Therefore, it is crucial to minimize these impacts and that only can be achieved by improving the energy efficiency of these systems. To achieve that final goal, the first step is to perform an assessment to estimate the margin of improvement from the actual performance of the system to the maximum achievable level of efficiency [1]. The second step is to perform an energy audit in order to identify exactly how the energy is used and where it is lost [2], with the third step being identification of the different actions that can be implemented in practice in a system. The final step is to perform the cost benefit analysis of the selected actions to prioritize execution. The focus of attention of this paper is on the third step, actions that can be classified in operational actions (do not require investments) and structural actions (require investments). | es_ES |
dc.language | Inglés | es_ES |
dc.publisher | Elsevier | es_ES |
dc.relation.ispartof | Procedia Engineering | es_ES |
dc.rights | Reconocimiento - No comercial - Sin obra derivada (by-nc-nd) | es_ES |
dc.subject | Energy audit | es_ES |
dc.subject | Water and energy | es_ES |
dc.subject | Improve actions | es_ES |
dc.subject | Optimal water networks | es_ES |
dc.subject.classification | MECANICA DE FLUIDOS | es_ES |
dc.subject.classification | INGENIERIA HIDRAULICA | es_ES |
dc.title | Strategies to improve the energy efficiency of pressurized water systems | es_ES |
dc.type | Artículo | es_ES |
dc.type | Comunicación en congreso | es_ES |
dc.identifier.doi | 10.1016/j.proeng.2017.03.248 | es_ES |
dc.rights.accessRights | Abierto | es_ES |
dc.contributor.affiliation | Universitat Politècnica de València. Departamento de Ingeniería Hidráulica y Medio Ambiente - Departament d'Enginyeria Hidràulica i Medi Ambient | es_ES |
dc.description.bibliographicCitation | Cabrera Marcet, E.; Gomez Selles, E.; Espert Alemany, VB.; Cabrera Rochera, E. (2017). Strategies to improve the energy efficiency of pressurized water systems. Procedia Engineering. 186:294-302. doi:10.1016/j.proeng.2017.03.248 | es_ES |
dc.description.accrualMethod | S | es_ES |
dc.relation.conferencename | 18th International Water Distribution Systems Analysis Conference (WDSA 2016) | es_ES |
dc.relation.conferencedate | Julio 24-28,2016 | es_ES |
dc.relation.conferenceplace | Cartagena de Indias, Colombia | es_ES |
dc.relation.publisherversion | https://doi.org/10.1016/j.proeng.2017.03.248 | es_ES |
dc.description.upvformatpinicio | 294 | es_ES |
dc.description.upvformatpfin | 302 | es_ES |
dc.type.version | info:eu-repo/semantics/publishedVersion | es_ES |
dc.description.volume | 186 | es_ES |
dc.relation.pasarela | S\360118 | es_ES |