Published 2008 | Version v1
Miscellaneous

Foam stabilization by solid particle aggregates

  • 1. CEA Marcoule, Lab. des Procedes Avances de Decontamination, 30 (France)
  • 2. UniversiteParis-Est Marne-La-Valle, Lab. Physique des Materiaux Divises et des Interfaces (LPMDI), 77 - Marne la Vallee (France)

Description

During the dismantling of nuclear facilities, radioactive deposits on exposed areas are removed and solubilized by successive rinses of reactive liquid. Using this liquid in a foam state reduces the amount of resulting wastes. During the required decontamination time (1 to 5 hours) the foam has to be sufficiently wet (1). In the Laboratory of Advanced Processes for Decontamination, new formulations are currently studied to slow down the drainage kinetics of these foams, by adding colloidal particles of hydrophilic fumed silica into the classical mixtures of well-defined non ionic foaming surfactants previously used (2). The objective of our study is to shed light on the foam surprising stability induced by these particles. The study focuses on drainage of foams generated by air sparging through a suspension lying on a porous glass. The foaming suspensions contain between 0 and 70 g.L-1 of a fumed silica (Aerosil 380) which is well-known to form gels for concentrations above 200 g.L-1. In the studied solutions this silica builds up into aggregates of dozens of microns, whose volume-averaged mean diameter after sonication is centred around 300 nm. Under gentle stirring, they display no sign of re-aggregation during 24 h. On a free drainage configuration, a foam that contains particles keeps a significant amount of its initial liquid: up to 60 % during up to 5 hours, in contrast to classical foams that drain out all of their liquid in about 20 minutes. From a rheological point of view, the most concentrated suspensions display a yield stress behaviour. This evidences the structuring of the aggregates into a coherent network that might explain the incomplete drainage of the solutions. For the lowest concentrated solutions, such rheological properties have not been observed although the corresponding foams can retain large amount of solution. This suggests that local concentrations of aggregates can rise owing to their retention by foam channels, until they form irreversible plugs. To establish the respective role of aggregates size and concentration, a series of experiments is currently performed consisting in studying the flow of foaming solution through glass-beds of various pore sizes containing the aggregates. The behaviour of foams containing sonicated particles appears to be more surprising since they do not display any yield stress and their sizes prevent them from being efficient plugs. Study of the flow of suspensions on the Plateau Border scale is currently performed to elucidate this behaviour. (authors)

Part of:
Decommissioning challenges: an industrial reality?

Additional details

Additional titles

Original title (English)
Les defis du demantelement: une realite industrielle?

Publishing Information

Imprint Title
Decommissioning challenges: an industrial reality?
Imprint Pagination
2256 p.
Journal Page Range
p. 2256
Report number
INIS-FR--09-1169

Conference

Title
an industrial reality?
Original Conference Title
Conference les defis du demantelement: une realite industrielle?
Acronym
Conference decommissioning challenges
Dates
28 Sep - 2 Oct 2008
Place
Avignon (France)

INIS

Country of Publication
France
Country of Input or Organization
France
INIS RN
40102172
Subject category
S22: GENERAL STUDIES OF NUCLEAR REACTORS;
Resource subtype / Literary indicator
Conference, Non-conventional Literature
Descriptors DEI
AGGLOMERATION; DECONTAMINATION; DRAINAGE; FOAMS; PARTICULATES; REACTOR DISMANTLING; STABILIZATION
Descriptors DEC
CLEANING; COLLOIDS; DEMOLITION; DISPERSIONS; PARTICLES

Optional Information

Notes
Imprint:Les defis du demantelement: une realite industrielle?