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Mathematical modeling and experimental validation of an absorption-driven multiple-effect evaporator

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dc.contributor.author Yanniotis, S en
dc.contributor.author Pilavachi, PA en
dc.date.accessioned 2014-06-06T06:43:11Z
dc.date.available 2014-06-06T06:43:11Z
dc.date.issued 1996 en
dc.identifier.issn 09307516 en
dc.identifier.uri http://62.217.125.90/xmlui/handle/123456789/1075
dc.relation.uri http://www.scopus.com/inward/record.url?eid=2-s2.0-0030268095&partnerID=40&md5=7809c8741fa574c34170aff4736f7e15 en
dc.subject.other Absorption en
dc.subject.other Caustic soda en
dc.subject.other Enthalpy en
dc.subject.other Heat transfer en
dc.subject.other Mathematical models en
dc.subject.other Absorption driven multiple effect evaporators en
dc.subject.other Evaporators en
dc.subject.other evaporators en
dc.subject.other heat transfer en
dc.subject.other modelling-mathematical en
dc.title Mathematical modeling and experimental validation of an absorption-driven multiple-effect evaporator en
heal.type journalArticle en
heal.publicationDate 1996 en
heal.abstract A mathematical model has been developed to simulate the operation of an absorption-driven multiple-effect evaporator. The model is based on mass and enthalpy balances and heat transfer rate equations of the various components of the system. The model has been validated by comparing model predictions to experimental results from the operation of a four effect absorption-driven falling film evaporator coupled with a two-effect regenerator which operated using solutions of sodium hydroxide as an absorptive medium. The model predictions are in satisfactory agreement with the experimental results. © VCH Verlagsgesellschaft mbH, D-69451 Weinheim, 1996. en
heal.journalName Chemical Engineering and Technology en
dc.identifier.issue 5 en
dc.identifier.volume 19 en
dc.identifier.spage 448 en
dc.identifier.epage 455 en


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