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Colloids peptization

Solution methods starting with a suspension and producing a colloid (peptization). [Pg.157]

This peptization process can partially be modified by adding ammonia solution at a controlled rate, which precipitates part of the colloidal peptized suspension. The paste is extruded in a ram extruder at a given velocity. [Pg.844]

Hydrated Stannic Oxide. Hydrated stannic oxide of variable water content is obtained by the hydrolysis of stannates. Acidification of a sodium stannate solution precipitates the hydrate as a flocculent white mass. The colloidal solution, which is obtained by washing the mass free of water-soluble ions and peptization with potassium hydroxide, is stable below 50°C and forms the basis for the patented Tin Sol process for replenishing tin in staimate tin-plating baths. A similar type of solution (Staimasol A and B) is prepared by the direct electrolysis of concentrated potassium staimate solutions (26). [Pg.66]

Hydrolysis of solutions of Ti(IV) salts leads to precipitation of a hydrated titanium dioxide. The composition and properties of this product depend critically on the precipitation conditions, including the reactant concentration, temperature, pH, and choice of the salt (46—49). At room temperature, a voluminous and gelatinous precipitate forms. This has been referred to as orthotitanic acid [20338-08-3] and has been represented by the nominal formula Ti02 2H20 (Ti(OH). The gelatinous precipitate either redissolves or peptizes to a colloidal suspension ia dilute hydrochloric or nitric acids. If the suspension is boiled, or if precipitation is from hot solutions, a less-hydrated oxide forms. This has been referred to as metatitanic acid [12026-28-7] nominal formula Ti02 H2O (TiO(OH)2). The latter precipitate is more difficult to dissolve ia acid and is only soluble ia concentrated sulfuric acid or hydrofluoric acid. [Pg.120]

Colloidal State. The principal outcome of many of the composition studies has been the delineation of the asphalt system as a colloidal system at ambient or normal service conditions. This particular concept was proposed in 1924 and described the system as an oil medium in which the asphaltene fraction was dispersed. The transition from a coUoid to a Newtonian Hquid is dependent on temperature, hardness, shear rate, chemical nature, etc. At normal service temperatures asphalt is viscoelastic, and viscous at higher temperatures. The disperse phase is a micelle composed of the molecular species that make up the asphaltenes and the higher molecular weight aromatic components of the petrolenes or the maltenes (ie, the nonasphaltene components). Complete peptization of the micelle seems probable if the system contains sufficient aromatic constituents, in relation to the concentration of asphaltenes, to allow the asphaltenes to remain in the dispersed phase. [Pg.367]

Many attempts have been made to characterize the stabiUty of the colloidal state of asphalt at ordinary temperature on the basis of chemical analysis in generic groups. For example, a colloidal instabiUty index has been defined as the ratio of the sum of the amounts in asphaltenes and flocculants (saturated oils) to the sum of the amounts in peptizers (resins) and solvents (aromatic oils) (66) ... [Pg.367]

If unchanged barium methyliminodiacetate remains in solution, it peptizes the barium sulfate and the filtration is likely to be troublesome. If colloidal barium sulfate is encountered, it... [Pg.57]

Figure 4. Asphaltene particle peptization effected by adsorbed resin molecules. This physical model is the basis of our asphaltene Thermodynamic-Colloidal Model. Figure 4. Asphaltene particle peptization effected by adsorbed resin molecules. This physical model is the basis of our asphaltene Thermodynamic-Colloidal Model.
Yonezawa Y, Sato T, Kuroda S, Kuge KJ (1991) Photochemical formation of colloidal silver peptizing action of acetone ketyl radical. J Chem Soc Faraday Trans 87 1905-1910... [Pg.167]

To peptize means a bulk phase enters solution as a colloid (here, as a micelle). [Pg.520]

Washing of the precipitate (AgCl) with 0.01 N HN03 is always recommended to prevent loss of AgCl by virtue of its return to colloidal condition (peptization) and to get rid of the soluble salts, namely AgNO and NaN03, and... [Pg.179]

Mack (58, 59) points out that asphaltenes from different sources in the same petro-lenes give mixtures of approximately the same rheological type, but sols of the same asphaltenes in different petrolenes differ in flow behavior. Those in aromatic petrolenes show viscous behavior and presumably approach true solution. Those in paraffinic media show complex flow and are considered to be true colloidal systems. Pfeiffer and associates (91) consider that degree of peptization of asphaltene micelles determines the flow behavior. Thus, a low concentration of asphaltenes well peptized by aromatic petrolenes leads to purely viscous flow. High concentrations of asphaltenes and petrolenes of low aromatic content result in gel-type asphalts. All shades of flow behavior between these extremes are observed. [Pg.268]

Positively-charged hydroxide sols can be prepared from many metals. To produce a colloidal solution from the precipitate, a process termed peptization, a solution of the salt, itself, is not... [Pg.248]


See other pages where Colloids peptization is mentioned: [Pg.221]    [Pg.200]    [Pg.6]    [Pg.221]    [Pg.200]    [Pg.6]    [Pg.103]    [Pg.243]    [Pg.299]    [Pg.259]    [Pg.442]    [Pg.339]    [Pg.277]    [Pg.278]    [Pg.529]    [Pg.448]    [Pg.449]    [Pg.451]    [Pg.455]    [Pg.456]    [Pg.725]    [Pg.222]    [Pg.242]    [Pg.16]    [Pg.21]    [Pg.27]    [Pg.27]    [Pg.28]    [Pg.36]    [Pg.38]    [Pg.282]    [Pg.260]    [Pg.252]    [Pg.253]    [Pg.504]    [Pg.4]    [Pg.490]    [Pg.208]    [Pg.142]    [Pg.250]   
See also in sourсe #XX -- [ Pg.162 ]

See also in sourсe #XX -- [ Pg.206 ]




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Colloidal solution peptization

Peptization

Peptization Peptizers

Peptization of colloid

Peptizer

Peptizers

Peptizing colloids

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