Hostname: page-component-7479d7b7d-k7p5g Total loading time: 0 Render date: 2024-07-15T21:09:41.387Z Has data issue: false hasContentIssue false

Negative Adsorption in Clay-Water Systems with Interacting Double Layers

Published online by Cambridge University Press:  01 July 2024

A. K. Helmy
Affiliation:
Universidad National del Sur, 8000 Bahía Blanca, Argentina
I. M. Natale
Affiliation:
Universidad National del Sur, 8000 Bahía Blanca, Argentina
M. E. Mandolesi
Affiliation:
Universidad National del Sur, 8000 Bahía Blanca, Argentina

Abstract

A relation was derived which describes negative adsorption (salt exclusion) in systems in which double layer interaction takes place but where the surface potential remains finite, such as in clay pastes and sediments. Exclusion volumes calculated for montmorillonite pastes in equilibrium with 1:1 type electrolytes were found to compare favorably with data obtained by F. A. M. de Haan in an earlier study.

Резюме

Резюме

Было выведено отношение, которое описывает отрицательную адсорбцию (удаление соли) в системах, в которых происходит взаимодецствие двойных слоев, но, где поверххностный потенциал остается ограниченным, как в глинистых пастах и отложениях. Удаленные объемы, выс-читаные для монтмориллонитовых паст, находящихся в равновесии с электролитами типа 1:1, оказались сходными с данными, полученными ранее Ф. А. М. де Хааном. [N.R.]

Resümee

Resümee

Es wurde eine Beziehung abgeleitet, die die negative Adsorption (Salzausschluß) in Systemen beschreibt, in denen Doppelschichtwechselwirkungen stattfinden, in denen aber das Oberflächenpotential begrenzt bleibt, wie z.B. in Tonpasten und Sedimenten. Die Ausschlußvolumen, die für Montmorillonitpasten im Gleichgewicht mit 1:1 Typ Elektrolyten berechnet wurden, ließen sich gut mit den Ergebnissen einer früheren Untersuchung von F. A. M. de Haan vergleichen. [U.W.]

Résumé

Résumé

On a derivé une relation qui décrit l'adsorption negative (exclusion de sel) dans des systèmes dans lesquels l'interaction à couche double se passe mais où le potentiel de surface reste fini, tel que dans des pâtes argileuses et des sediments. Des volumes d'exclusion calculés pour des pâtes de montmorillonite en équilibre avec des électrolytes du type 1:1 pouvaient être favorablement comparés aux données obtenues par F. A. M. de Haan dans une étude précedente. [D.J.]

Type
Research Article
Copyright
Copyright © Clay Minerals Society 1980

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Bolt, G. H. and Warkentin, P. B., (1958) The negative adsorption of anions by clay suspensions Kolloid Z. 156 4146.CrossRefGoogle Scholar
Dresner, L. and Kraus, K. A., (1963) Ion exclusion and salt filtering with porous ion exchange materials J. Phys. Chem. 67 990996.CrossRefGoogle Scholar
Edwards, D. G. Posner, A. M. and Quirk, P., (1965) Repulsion of chloride ions by negatively charge clay surfaces Trans. Faraday Soc. 61 28162823.CrossRefGoogle Scholar
de Haan, F. A. M., (1964) The negative adsorption of anions (anion exclusion) in systems with interacting double layers J. Phys. Chem. 68 29702977.CrossRefGoogle Scholar
Helfferich, F., (1962) Ion Exchange New York Ch. 8, McGraw-Hill.Google Scholar
Helmy, A. K., (1963) Calculation of negative and positive adsorption in some clay electrolyte systems J. Soil Sci. 14 217224.CrossRefGoogle Scholar
Helmy, A. K. Natale, I. M. and Mandolesi, M. E., (1979) Freezing point depression of water in clay pastes Z. Phys. Chem. 260 480488.CrossRefGoogle Scholar
Lawrie, D. C., (1961) A rapid method for the determination of approximate surface area of clays Soil Sci. 92 188191.CrossRefGoogle Scholar
Lyklema, J. van den Hul, H. J., Everett, D. H. and Otterwill, R. H., (1970) Specific surface areas by negative adsorption Surface area determination London Butterworths.Google Scholar
Mattson, S., (1929) The laws of soil colloid behavior Soil Sci. 28 179220.CrossRefGoogle Scholar
O’Neill, M. J., (1964) The analysis of a temperature-controlled scanning calorimeter Anal. Chem. 36 12381245.CrossRefGoogle Scholar
Overbeek, J. Th. J., (1956) The Donnan equilibrium Progress in Biophysics and Biophysical Chemistry 6 5784.CrossRefGoogle ScholarPubMed
Peinemann, N. Ferreiro, E. A. and Helmy, A. K., (1972) Estudio mineralògico de una montmorillonita de Cerro Bandera (Provincia del Neuquen, Repûblica Argentina) Rev. Asoc. Geol. Argent. 27 399405.Google Scholar
Schofield, R. K., (1947) Calculation of surface areas from measurements of negative adsorption Nature 160 408410.CrossRefGoogle Scholar
Schofield, R. K. and Talibudeen, O., (1948) Measurement of internal surface by negative adsorption Disc. Faraday Soc 5156.CrossRefGoogle Scholar
Shone, M. G. T., (1966) The initial uptake of ions by barley roots. II. Application of measurements on sorption of anions to elucidate the structure of the free space J. Exp. Bot. 17 8995.CrossRefGoogle Scholar
Shone, M. G. T. and Barber, D. A., (1966) The initial uptake of ions by barley roots. I. Uptake of anions J. Exp. Bot. 17 7888.CrossRefGoogle Scholar
Teorell, T., (1956) Transport phenomena in membranes: flue Faraday Soc 926.CrossRefGoogle Scholar
Van den Hul, H. J. and Lyklema, J., (1967) Determination of specific surface areas of dispersed materials by negative adsorption J. Colloid Interface Sci. 23 500508.CrossRefGoogle Scholar
Van den Hul, H. J. and Lyklema, J., (1968) Determination of specific surface areas of dispersed materials. Comparison of the negative adsorption method with some other methods J. Amer. Chem. Soc. 90 30103015.CrossRefGoogle Scholar
Verwey, E. J. W. and Overbeek, J Th G, (1948) Theory of the stability of lyophobic colloids Amsterdam Elsevier.Google Scholar