Field Tests of the Solar Water Detoxification SOLWATER Reactor in Los Pereyra, Tucumán, Argentina

Author:

Navntoft Christian1,Araujo Paula2,Litter Marta I.3,Apella María C.4,Fernández Diego5,Puchulu María Elena6,Hidalgo Margarita del V.6,Blesa Miguel A.7

Affiliation:

1. Unidad de Actividad Química, Centro Atómico Constituyentes, Comisión Nacional de Energía Atómica, Av. General Paz 1499, 1650 San Martín, Buenos Aires, Argentina

2. Unidad de Actividad Química, Centro Atómico Constituyentes, Comisión Nacional de Energía Atómica, Av. General Paz 1499, 1650 San Martín, Buenos Aires, Argentina; and Consejo Nacional de Investigaciones Científicas y Técnicas, Argentina

3. Unidad de Actividad Química, Centro Atómico Constituyentes, Comisión Nacional de Energía Atómica, Av. General Paz 1499, 1650 San Martín, Buenos Aires, Argentina; Consejo Nacional de Investigaciones Científicas y Técnicas; and Escuela de Posgrado, Universidad Nacional de General San Martín, Argentina

4. Consejo Nacional de Investigaciones Científicas y Técnicas; Centro de Referencia para Lactobacilos; and Facultad de Ciencias Naturales e Instituto Miguel Lillo, Universidad Nacional de Tucumán, Argentina

5. Facultad de Ciencias Naturales e Instituto Miguel Lillo, Universidad Nacional de Tucumán; and Servicio Geológico Minero Argentino, Tucumán, Argentina

6. Facultad de Ciencias Naturales e Instituto Miguel Lillo, Universidad Nacional de Tucumán, Argentina

7. Unidad de Actividad Química, Centro Atómico Constituyentes, Comisión Nacional de Energía Atómica, Av. General Paz 1499, 1650 San Martín, Buenos Aires, Argentina; Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET); and Escuela de Posgrado, Universidad Nacional de General San Martín, Argentina

Abstract

The SOLWATER reactor prototype is composed of two tubes containing a supported heterogeneous photocatalyst (Ahlstrom© paper impregnated with titanium dioxide), and two tubes containing a supported photosensitizer (designed and provided by G. Orellana, Universidad Complutense, Madrid, Spain). The tubes are placed on a CPC collector and run in series. Electricity is provided by a solar panel, and the recirculation rate is ca13Lmin−1. Total volume in the feed tank plus tubes is 20L. The reactor was designed and constructed by the consortium of a European research project whose objective is on the development of a fully autonomous solar reactor system to purify drinking water in remote locations of developing countries. The prototype was placed in the yard of a shanty house in Los Pereyra, Tucumán, Argentina. Water to feed the reactor is taken from the shallow aquifer through an open well. This water is contaminated with high counts of coliforms and Enterococcus faecalis. It also contains widely variable levels of Pseudomonas aeruginosa. The chemical composition of the water shows high levels of natural organic matter and of various inorganic pollutants. The reactor has been running since February 22, 2005. This paper presents the results collected in three months of operation. Around 4hr operation on a sunny day, and 5-6hr on a cloudy day are required to totally destroy fecal coliforms and Ent. faecalis. Even 24h after the experiment is concluded, no cultivable bacteria are seen by the membrane filtration method (measured colony forming units after 24hr=0). On the other hand, a small number of total coliforms remain (a few percent or less of the original count) at the end of some of the latest experiments. Possible explanations for this result are the drop in ambient temperature, the decrease in solar irradiance, and the exhaustion of the catalyst and sensitizer. P. aeruginosa is much more resistant, and only partial destruction is observed in those time intervals. The evolution of chemical parameters is also presented and discussed.

Publisher

ASME International

Subject

Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment

Reference41 articles.

1. Schertenleib, R., and Gujer, W., 2000, EAWAG News, 48, pp. 3–5.

2. Introducción;Blesa

3. Blanco Gálvez, J. , (coordinator) “Cost effective solar photocatalytic technology to water decontamination and disinfection in rural areas of developing countries,” http://www.psa.es/webeng/solwater/index/html

4. Blake, D. M. , 2005, “Bibliography of Work on the Photocatalytic Removal of Hazardous Compounds From Water and Air,” National Renewable Energy Laboratory, NREL/TP-430–6084, http://www.nrel.gov/vehiclesandfuels/ancillary̱loads/pdfs/wateṟair.pdf-1512.9KB

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