Please use this identifier to cite or link to this item: https://www.um.edu.mt/library/oar/handle/123456789/79221
Title: Flat bed desiccant dehumidification : a predictive model for desiccant transient characterisation using a species transport model within CFD
Authors: Bonello, Matthew
Micallef, Daniel
Borg, Simon Paul
Keywords: Computational fluid dynamics
Humidity -- Control
Dampness in buildings
Issue Date: 2019
Publisher: Elsevier Ltd.
Citation: Bonello, M., Micallef, D., & Borg, S. P. (2019). Flat bed desiccant dehumidification : a predictive model for desiccant transient characterisation using a species transport model within CFD. Journal of Building Engineering, 23, 280-290.
Abstract: As opposed to steady state characteristics which have been, in the past, estensively investigated, the transient dehumidification characteristics of silica gel under different flat bed configurations, has not been studied in detail with respect to varying mass and air flow rates. Such data is essential in the design of systems employing this method of dehumidification. Moreover, numerical models of the performance of flat bed desiccant configurations generally take the form of fundamental studies with explicit modelling of the desiccant particle geometries. The primary objective of this work aims is to generate dehumidification characteristics in high humidity environments. Secondly, a more simplified and practical approach is proposed here on the basis of experimental calibration. The methodology consists of two main approaches: (i) the development of a test rig for the experimental determination of the transient dehumidification characteristics and, (ii) the development of a Computational Fluid Dynamics (CFD) model using experimental data as input to provide easy extrapolation of experimental data. This paper presents detailed dehumidification results for varying air volume flow rate and desiccant mass. The numerical model, on the other hand, successfully predicts the dehumidification performance of varying silica gel masses by using only a single experimental test case. This proves the validity of using such a model to extrapolate on experimental data.
URI: https://www.um.edu.mt/library/oar/handle/123456789/79221
Appears in Collections:Scholarly Works - FacBenED



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