This paper presents the experimental tests on the chemical dehumidification of air by a liquid desiccant and desiccant regeneration carried out in an absorption/desorption tower with random packing. The experimental set-up is fully described together with measurements, procedures, data reduction, and accuracy. The experimental tests include 46 dehumidification runs and 38 desiccant regeneration runs carried out with the traditional hygroscopic solution and the new solution in the typical operative ranges of air conditioning applications. The experimental results are reported in terms of humidity reduction, desiccant concentration change, and tower efficiency. The experimental tests show that chemical dehumidification of air by liquid desiccants ensures consistent reduction in humidity ratio, which is suitable for the application to air conditioning or drying processes. The experimental results are also compared to a one-dimensional simulation code of a packed tower: a fair agreement was found between experimental and calculated performance.
Skip Nav Destination
e-mail: tony@gest.unipd.it
Article navigation
February 2004
Technical Papers
Experimental Analysis on Chemical Dehumidification of Air by Liquid Desiccant and Desiccant Regeneration in a Packed Tower
Giovanni A. Longo,
e-mail: tony@gest.unipd.it
Giovanni A. Longo
University of Padova, Department of Management and Engineering, Stradella S. Nicola 3, I-36100 Vicenza-Italy
Search for other works by this author on:
Andrea Gasparella
Andrea Gasparella
University of Padova, Department of Management and Engineering, Stradella S. Nicola 3, I-36100 Vicenza-Italy
Search for other works by this author on:
Giovanni A. Longo
University of Padova, Department of Management and Engineering, Stradella S. Nicola 3, I-36100 Vicenza-Italy
e-mail: tony@gest.unipd.it
Andrea Gasparella
University of Padova, Department of Management and Engineering, Stradella S. Nicola 3, I-36100 Vicenza-Italy
Contributed by the Solar Energy Division of THE AMERICAN SOCIETY OF MECHANICAL ENGINEERS for publication in the ASME JOURNAL OF SOLAR ENERGY ENGINEERING. Manuscript received by the ASME Solar Energy Division, Nov. 2002; final revision, Apr. 2003. Associate Editor: V. C. Mei
J. Sol. Energy Eng. Feb 2004, 126(1): 587-591 (5 pages)
Published Online: February 12, 2004
Article history
Received:
November 1, 2002
Revised:
April 1, 2003
Online:
February 12, 2004
Citation
Longo, G. A., and Gasparella, A. (February 12, 2004). "Experimental Analysis on Chemical Dehumidification of Air by Liquid Desiccant and Desiccant Regeneration in a Packed Tower ." ASME. J. Sol. Energy Eng. February 2004; 126(1): 587–591. https://doi.org/10.1115/1.1637642
Download citation file:
Get Email Alerts
Performance of Modified Conical Solar Still Integrated With Continuous Volume Flowrate
J. Sol. Energy Eng (February 2024)
Nonimaging Behavior of Circular Trough Concentrators With Tubular Receivers
J. Sol. Energy Eng (February 2024)
In Memoriam: Professor Essam E. Khalil —A Tribute to An Outstanding Educator and Researcher
J. Sol. Energy Eng (August 2023)
Related Articles
A Liquid Sorption-Desorption System for Air Conditioning With Heat at Lower Temperature
J. Sol. Energy Eng (May,1990)
Modeling an Integral Dual Solar/Gas-Fired Generator for a Water-Lithium Bromide Absorption Chiller
J. Energy Resour. Technol (December,2000)
A Liquid Desiccant System for Solar Cooling and Dehumidification
J. Sol. Energy Eng (August,2004)
Experimental Investigation of a LiCl-Water Open Absorption System for Cooling and Dehumidification
J. Sol. Energy Eng (May,2004)
Related Proceedings Papers
Related Chapters
Two-Stage Liquid Desiccant Dehumidification∕Regeneration
Inaugural US-EU-China Thermophysics Conference-Renewable Energy 2009 (UECTC 2009 Proceedings)
Syntheses of Mesoporous Silica Materials
Silica Nanoparticles as Drug Delivery System for Immunomodulator GMDP (Biomedical & Nanomedical Technologies - Concise Monograph Series)
Analytical and Numerical Calculation of Hydrogen Desorption Rate During TDS Analysis Using the Kissinger Formula and the McNabb-Foster Model
International Hydrogen Conference (IHC 2012): Hydrogen-Materials Interactions