Claims
- 1. A method for manufacturing colloid aluminum silica gel, comprising the steps of:
dissolving a mixing solution of aluminum hydroxide in sulfuric acid, wherein the mixture includes aluminum oxide, silicic acid, potassium, iron oxide, sulfuric acid and water; adding potassium sulfate solution into the solution from (a), and stirring the mixture at a low temperature to produce compositions containing soluble aluminum double salt; purifying the compositions of the step (b) to obtain aluminum potassium sulfate with high purity and density; adding aluminum silicate and water to the aluminum potassium sulfate of the step (c) to produce alkali metal polysilicate-sulfate water salt chelate; polymerizing and precipitating the alkali metal polysilicate-sulfate water salt chelate at a low temperature to produce pectograph of aluminum silicate sieve; producing chelate by adding magnesia, iron oxide, calcium hydroxide, sodium oxide, potassium oxide, and distilled water in sequence; purifying and drying the chelate of the step (f) to produce dried microsphere; melting the dried microsphere of the step (g) at a high temperature, cooling, hardening, and mixing with diluted sulfuric acid; carrying out sequential treatments on the resultant of the step (h), that is, polymerizing, cleansing, heating, dehydrating, or drying, and performing vapor treatment, to obtain powder aluminum silicate molecular sieve with a high absorption of which particle size is under 1μ; and polymerizing the aluminum silicate molecular sieves with each other until they are matured to be a highly dense heel.
- 2. The method according to claim 1, wherein in the step (c) the compositions are continuously heated and stirred, and 0.1% of enzyme by weight is slowly dropped thereto.
- 3. The method according to claim 1, wherein in the step (d) aluminum sulfate and aluminum silicate are mixed at a ratio of 1:3 by weight and water is added to produce 24-water salt alkali metal polysilicate-sulfate chelates.
- 4. The method according to claim 1 further comprise a step, in which the matured heel from the step (j) passes through an ion-exchange resin layer several times to produce very pure and consistent colloid aluminum silica gel, and later the consistent colloid is crushed.
- 5. A surfactant having characteristic of both silica and alumina, being void of any chemical bond to form polymers by reacting with other molecules in the ecosystem, having an ability of metal substitution of zeolite at a low temperature, and containing evenly purified colloid aluminum silica gel having the particle size within a range of from several nm to several μm for a diameter.
- 6. The surfactant according to claim 5; the aluminum silica gel is manufactured by the method comprising the steps of:
dissolving a mixing solution of aluminum hydroxide in sulfuric acid, wherein the mixture includes aluminum oxide, silicic acid, potassium, iron oxide, sulfuric acid and water; adding potassium sulfate solution into the solution from (a), and stirring the mixture at a low temperature to produce compositions containing soluble aluminum double salt; purifying the compositions of the step (b) to obtain aluminum potassium sulfate with high purity and density; adding aluminum silicate and water to the aluminum potassium sulfate of the step (c) to produce alkali metal polysilicate-sulfate water salt chelate; polymerizing and precipitating the alkali metal polysilicate-sulfate water salt chelate at a low temperature to produce pectograph of aluminum silicate sieve; producing chelate by adding magnesia, iron oxide, calcium hydroxide, sodium oxide, potassium oxide, and distilled water in sequence; purifying and drying the chelate of the step (f) to produce dried microsphere; melting the dried microsphere of the step (g) at a high temperature, cooling, hardening, and mixing with diluted (thin) sulfuric acid; carrying out sequential treatments on the resultant of the step (h), that is, polymerizing, cleansing, heating, dehydrating, or drying, and performing vapor treatment, to obtain powder aluminum silicate molecular sieve with a high absorption of which particle size is under 1μ; and polymerizing the aluminum silicate molecular sieves with each other until they are matured to be a highly dense heel.
- 7. The surfactant according to claim 6, wherein in the step (c) the compositions are continuously heated and stirred, and 0.1% of enzyme by weight is slowly dropped thereto.
- 8. The surfactant according to claim 6, wherein in the step (d) aluminum sulfate and aluminum silicate are mixed at a ratio of 1:3 by weight and water is added to produce 24-water salt alkali metal polysilicate-sulfate chelates.
- 9. The surfactant according to claim 6, the method further comprise a step, in which the matured heel from the step U) passes through an ion-exchange resin layer several times to produce very pure and consistent colloid aluminum silica gel, and later the consistent colloid is crushed.
- 10. A surfactant containing alkanol amide condensate obtained from a reaction of 12-hydroxy-cis-9-octadecanoic acid, alkanol amine and water.
- 11. The surfactant according to claim 10, wherein the 12-hydroxy-cis-9-octadecanoic acid is botanical ricinoleic acid which is extracted from caster oil and has a formula C18H34O3.
- 12. The surfactant according claim 5, wherein it contains protecting colloid for ionizing strongly negative charges.
- 13. The surfactant according to claim 12, wherein said protecting colloid is phycocolloid prepard by extract mucilage of brown seaweed in the ocean.
- 14. The surfactant according to claim 13, wherein said phycocolloid is one of botanical polysaccharides having a formula of (C6H12O6)n, in which D(+) mannose as a main component possesses more than 9 glycosidic linkage.
- 15. The surfactant according to claim 5, wherein it comprises a small amount of electro deposit photocatalyst in a water-soluble state with a suitable density.
- 16. The surfactant according to claim 15, wherein the electro deposit photocatalyst is selected from a group consisting cadmium chloride having a formula, Cd(ClO4)2 26H2O, terahydrofuran as cyclic ether, and cadmium sulfide colloid active sieve that is prepared by mixing a long ring- and chain alkanethiol with sulfured hydrogen and dehydration drying.
- 17. The surfactant according to claim 10, wherein it comprises a small amount of electro deposit photocatalyst in a water-soluble state with a suitable density.
- 18. The surfactant according to claim 17, wherein the electro deposit photocatalyst is selected from a group consisting cadmium chloride having a formula, Cd(ClO4)1 26H2O, tetrahydrofuran as cyclic ether, and cadmium sulfide colloid active sieve that is prepared by mixing a long ring- and chain alkanethios with sulfured hydrogen and dehydration drying.
Priority Claims (1)
Number |
Date |
Country |
Kind |
10-2000-32494 |
Jun 2000 |
KR |
|
Parent Case Info
[0001] This application is a Divisional of co-pending application Ser. No. 09/878,963, filed on Jun. 13, 2001, the entire contents of which are hereby incorporated by reference and for which priority is claimed under 35 U.S.C. § 120; and this application claims priority of Application No. 10-2000-32494 filed in Korea on Jun. 13, 2000 under 35 U.S.C. § 119.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09878963 |
Jun 2001 |
US |
Child |
10747035 |
Dec 2003 |
US |