Claims
- 1. A method of manufacturing stabilizing and/or filtering aids that adsorb polyphenols, for use in the processing of beverage-type liquids, using a mixture of various materials, at least one of which is in the form of granular particles selected from the group consisting of fine to very fine particles, said method including the steps of:
- compressing said mixture;
- heating said compressed mixture to agglomerate said mixture by heating said mixture to near the melting point of a meltable material of said mixture to melt said meltable material;
- fixing said agglomerated mixture via a sintering-type process;
- subjecting said fixated agglomerate to a grinding processes or a screening process to provide a granular stabilizing and/or filtering aid, wherein a granule size is selected in conformity with an intended application.
- 2. A method according to claim 1, which, to produce granular beverage-stabilizing aids of a given size and stability, includes the step of using granular particles of synthetic origin or modified cellulose.
- 3. A method according to claim 2, wherein said synthetic organic particles have different granule fractions.
- 4. A method according to claim 2, which includes the steps of: subjecting said particles to a compacting process such that, in a screw press that is disposed upstream of a compacting apparatus, said particles are precompressed and heated for a duration of 10 to 120 minutes at temperatures in the vicinity of the melting point, 140.degree. to 260.degree. C.; and subsequently sintering said particles together to form said agglomerate in compacting rollers of said compacting apparatus at a specific sintering temperature of 160.degree. to 170.degree. C. for a suitable length of time of preferably 0.1 to 5 minutes.
- 5. A method according to claim 1, which includes mixing and homogenizing fine organic granular particles of synthetic origin with organic fibers of synthetic origin, selected from at least one of the group consisting of polypropylene (PP) and polyethylene (PE) synthesis pulp, high density polyethylene (HDPE), high density polypropylene (HDPP), halogenated polyethylenes, polyoxymethylene, and polyamides, and carrying out said mixing in such a way that very fine particles of said granular particles adhere to moist surfaces of said fibers; wherein wetting water is evaporated prior to sintering said fine particles together, and finally providing a desired particle size.
- 6. A method according to claim 1, which includes the step of using at least one of the materials selected from the group consisting of: organic particles of synthetic origin; and particles of natural origin, selected from at least one of the group consisting of cellulose and starch particles.
- 7. A method according to claim 1, which includes the step of using at least one of the materials selected from the group consisting of: organic particles of synthetic origin; inorganic particles selected from the group consisting of diatomires, perlites, highly calcined, alkali and acid resistant oxides further selected from the group consisting of .alpha.-aluminum oxide, zirconium dioxide, and titanium dioxide; carbon particles; and zeolites.
- 8. A method according to claim 1, which includes the step of using at least one of the material selected from the group consisting of: organic fibers of synthetic origin; and fibers of natural origin, selected from the group consisting of nearly alkali and acid resistant .alpha.-cellulose fibers, and those that have been bleached with chlorine or hydrogen peroxide and have been wet and/or dry conditioned, with said fibers having a fiber length of up to 5000 .mu.m and a fiber thickness of from about 0.1 to 50 .mu.m.
- 9. A method according to claim 1, which includes the step of using at least one of the materials selected from the group consisting of: organic fibers of synthetic origin; fibers of natural origin; inorganic fibers, selected from the group consisting of glass fibers, carbon fibers, aluminum oxide fibers, and metal fibers, in fiber lengths of up to 5000 .mu.m and fiber thicknesses of from about 0.1 to 50 .mu.m, and finely ground high-grade steel in the form of dust or particles, with a thickness of 0.1 to 0.5 .mu.m.
- 10. A method according to claim 1, which includes the step of using hydrophilic thermoplastic fibrils having a water content of from 0 to 60%.
- 11. A method according to claim 10, which includes the step of using fine-fibrous thermoplastic fibrils.
- 12. A method according to claim 10, wherein said heating step includes slowly increasing the temperature of a mixture of fine-grained material and moist hydrophilic thermoplastic fibrils to evaporate the water fraction.
- 13. A method according to claim 10, wherein said thermoplastic fibrils have a fiber length of about 0.05 to 5 mm.
- 14. A method according to claim 1, which includes the steps of: keeping said mixture in motion during said heating step, and effecting said heating step in an inert atmosphere.
- 15. A method of manufacturing filtering and stabilizing aids for liquids, said method including the steps of:
- intensely mixing together organic fibers of synthetic origin, selected from the group consisting of alkali and acid resistant synthetic fibers of PE, PP, HDPP, HDPE, halogenated polyethylene, polyoxymethylenes, and polyamides, with one of the group consisting of: fine organic granular particles of synthetic origin, and synthetic granulates selected from the group consisting of PE granulates and modified cellulose, to form a mixture;
- supplying said mixture to a compacting machine;
- maintaining an operating temperature near the melting point of a meltable material of said mixture to melt said meltable material to thereby form an agglomerate; and
- converting said agglomerate, by means of crushing and mixing apparatus, to desired grain size fractions.
- 16. A method according to claim 15, wherein fine-grained PVPP and PE fibers are sintered together in such a way that an agglomerate results having a grain size of from 30 to 200 .mu.m.
- 17. A method of manufacturing stabilizing and/or filtering aids, for use in the processing of liquids, using particles selected from the group consisting of fine organic and inorganic granular particles, said method including the steps of:
- for manufacturing filtering aids for alluvial and/or cake filtration, providing a mixture comprising: one of the materials selected from the group consisting of granular organic particles of natural or synthetic origin, inorganic particles selected from the group consisting of diatomites, perlites, highly calcined oxides (.alpha.-Al.sub.2 O.sub.3, zirconium dioxide) and carbon particles, and mixtures thereof; and at least one of the materials selected from the group consisting of organic fibers of cellulose and inorganic fibers, having a size up to about 5000 .mu.m in length and a thickness of about 0.5 to 50 .mu.m;
- spraying said mixture, in a drying tower or a fluidized bed, with a binder selected from the group consisting of a melamine formaldehyde resin and an epichloorohydrin or epoxy resin;
- condensing said binder out onto said mixture at a given temperature to form coated, agglomerated particles; and
- providing a desired grain size of said coated particles.
- 18. A method of using stabilizing and/or filtering aid manufactured according to the method of claim 17, said method including the step of using said aid as deposition medium for the filtration of pharmaceutical liquids, chemical liquids, or beverages.
- 19. A method of using the stabilizing and/or filtering aid manufactured according to the method of claim 17, said method including the step of using said aid for the cake and/or deep bed filtration of pharmaceutical-liquids, chemical liquids, or beverages for the separation of particles selected from the group consisting of particulate matter and colloidal particles.
- 20. A method of using a stabilizing aid manufactured according to the method of claim 1, said method including the step of using said aid to stabilize a beverage.
- 21. A method of using a stabilizing aid as in claim 20, sdaid method including the step of using said aid in a stabilizing and regenerating unit (STR).
- 22. A method of stabilizing beverages using stabilizing and/or filtering aids manufactured according to the method of claim 1, said method including the steps of:
- adding said stabilizing and/or filtering aids to a stream of unfiltered material in a filter column to deposit said aids to form a filter cake;
- regenerating said filter cake in column form;
- discharging said regenerated filter cake in a dosing vessel and utilizing said filter cake for resuspension such that said stabilizing and/or filtering aids are redeposited in a column; and
- carrying out the aforementioned steps such that at least two filter columns are continuously operated in such a way that filtering and/or stabilizing takes place in one column while regeneration takes place in another, wherein said filter columns have a height of up to 1.5 m and a diameter of up to 1.5 m.
- 23. A method of stabilizing beverages using stabilizing and/or filtering aids manufactured according to the method of claim 1, said method including the steps of:
- disposing said stabilizing and/or filtering aids in from four to one hundred filter columns;
- conveying a specific quantity of unfiltered material through one of said columns until about 80% of the adsorption capacity thereof is used up;
- thereupon introducing unfiltered material into another regenerating column until about 80% of the adsorption capacity thereof is also used up; and
- continuing the aforementioned steps until gradually all regenerated columns are operated while at the same time used-up columns are also continuously and successively regenerated, wherein said filter columns have a height of up to 1.5 m and a diameter of up to 1.5 m.
- 24. A method for the combined stabilization and filtration of beverages using stabilizing and/or filtering aids manufactured according to the method of claim 1, said method including the steps of:
- continuously adding filtering aid and PVPP particles to a stream of unfiltered material to form a deposited filter cake; and
- after termination of a combination filtration/stabilization in a filter, regenerating said deposited filter cake in said filter and making said filter cake available for a new combination filtration/stabilization operation, wherein said filter columns have a height of 1.5 m and a diameter of up to 1.5 m.
- 25. A method of using column-type vessels in conjunction with filtering and/or stabilizing aids manufactured according to the method of claim 1, said method including the step of using said aid for the stabilization and/or filtration and/or regeneration of liquids.
- 26. A method according to claim 3, wherein said granule fractions are at least one fraction selected from the group consisting of between 0.1 .mu.m to about 10 .mu.m, between 10 .mu.m to about 50 .mu.m, and greater than 50 .mu.m.
- 27. A method according to claim 15, wherein said fine organic granular particles of synthetic origin have different grain fractions, being selected from the group consisting of less than 1 .mu.m to about 10 .mu.m, greater than 10 .mu.m to about 50 .mu.m, and greater than 50 .mu.m.
Priority Claims (2)
Number |
Date |
Country |
Kind |
40 41 478.7 |
Dec 1990 |
DEX |
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41 25 594.1 |
Aug 1991 |
DEX |
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Parent Case Info
This application is a continuation of application Ser. No. 07/956,890 filed as a PCT/EP91/01815, Sep. 23, 1991, now abandoned.
US Referenced Citations (4)
Number |
Name |
Date |
Kind |
3172935 |
Hoffman |
Mar 1965 |
|
4166141 |
Westermann et al. |
Aug 1979 |
|
4820420 |
Hums et al. |
Apr 1989 |
|
4871498 |
Nakamura et al. |
Oct 1989 |
|
Foreign Referenced Citations (8)
Number |
Date |
Country |
0159696 |
Oct 1985 |
EPX |
2298965 |
Aug 1976 |
FRX |
2520752 |
Aug 1983 |
FRX |
1907610 |
Feb 1969 |
DEX |
2648978 |
Oct 1976 |
DEX |
3015439 |
Apr 1980 |
DEX |
3626378 |
Aug 1986 |
DEX |
620133 |
Feb 1977 |
CHX |
Non-Patent Literature Citations (1)
Entry |
PCT/DE 86/00117 of 19 Mar. 1986, "Process . . . Especially Beer", Hums, Norbert et al.; Haft Berngruber Czybulka. |
Continuations (1)
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Number |
Date |
Country |
Parent |
956890 |
Oct 1992 |
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