Osmotic distillation process using a membrane laminate

Information

  • Patent Grant
  • 5938928
  • Patent Number
    5,938,928
  • Date Filed
    Thursday, September 18, 1997
    27 years ago
  • Date Issued
    Tuesday, August 17, 1999
    25 years ago
Abstract
An osmotic concentration process for selectively extracting one or more volatile components from other components in a liquid mixture across a membrane structure which includes a semipermeable barrier film attached to a non-liquid-wettable microporous membrane is disclosed. The process includes the steps of:(a) contacting the liquid mixture with a surface of the semipermeable barrier film;(b) contacting a surface of the non-liquid-wettable microporous membrane with an extracting liquid in which one or more volatile components is soluble; and(c) collecting the remaining liquid mixture. As a result of the process the volatile component or components are extracted from the liquid mixture, passed through the membrane structure in a vapor phase and are dissolved in the extracting liquid. Also disclosed is a membrane arrangement for use in osmotic concentration of aqueous solution such as juice and other beverages, is constituted by a water-permeable sheet attached to a non-water-wettable microporous membrane. Preferably, the structure is in the form of a laminate in which the sheet is laid upon or bounded to the membrane.
Description

FIELD OF THE INVENTION
This invention relates to a membrane arrangement and its use in the osmotic concentration of aqueous solutions.
One preferred use for osmotic concentration of aqueous solutions is in the concentration of juices and beverages.
BACKGROUND OF THE INVENTION
A desirable membrane structure for use in the osmotic concentration of aqueous solutions via osmotic transfer of water to concentrated aqueous saline solutions, is a microporous, non-water-wettable membrane, contacted on its opposite surfaces by the solution to be concentrated and the brine into which the water is to be transferred. The membrane operates such that the pores thereof are filled only with water vapor, and water transport occurs only by molecular transport through the vapor phase. Membranes of such properties are well-known to those skilled in the membrane art, and include microporous structures fabricated from poly tetrafluorethylene, for example GORE-TEX (trade mark of W. L. Gore & Associates, Inc.), from polypropylene, for example CELGARD (Registered Trade Mark), ACCUREL (Registered Trade Mark) and the like.
In many instances, however, the proper functioning of such a membrane is prevented by the presence of contaminants or other components of the feed liquid which promote wetting of the membrane by that solution, and the subsequent penetration of the membrane pores by the wetting liquid. In such a situation, there may be leakage of the feed liquid into the brine-compartment, or of brine into the feed liquid.
Contaminants or other components present in the feed liquid which are likely to cause this problem include emulsified oil droplets, colloidal hydrogel particles, proteins and other biological macromolecules, and surface active agents. These components are, for the most part, non-volatile under the conditions of osmotic concentration, with the result that they remain behind in the feed liquid and may preferentially and adversely accumulate at the upstream membrane surface.
Components of solutions used to clean membrane devices often contain surface active agents, and that residual from these solutions, rather than feed components, might also promote membrane wetting.





It is an object of the invention to provide a process utilizing an improved membrane structure.
DESCRIPTION OF THE INVENTION
In one form of the invention, a process is provided for selectively extracting one or more volatile components from other components in a liquid mixture across a membrane structure which includes a semipermeable barrier film attached to a non-liquid-wettable microporous membrane comprising the steps of:
(a) contacting the liquid mixture with a surface of the semipermeable barrier film;
(b) contacting a surface of the non-liquid-wettable microporous membrane with an extracting liquid in which one or more volatile components is soluble; and
(c) collecting the remaining liquid mixture;
whereby the volatile component or components are extracted from the liquid mixture, passed through the membrane structure in a vapor phase and are dissolved In the extracting liquid.
Preferably, the semipermeable barrier film is macrosolute-impermeable and microsolute-permeable. The semipermeable barrier film is semipermeable in that it is permeable to the volatile component or components whose extraction from the liquid mixture is desired and usually also to the solvent, but preferably should be impermeable to all other mixture components. In particular, the film should be impermeable to nonvolatile solutes whose presence in the liquid mixture would promote wetting of the microporous membrane by the liquid in the absence of the film.
Preferably, the semipermeable barrier film forms a laminate with the membrane. Preferably the semipermeable barrier film is a thin film.
Preferably the volatile component to be extracted is water.
Preferably the liquid mixture is an aqueous solution or dispersion. More preferable, it is fruit or vegetable juice.
Preferably the extracting liquid is an aqueous solution of a nonvolatile solute. More preferably, it is an aqueous salt solution or brine.
In a further preferred embodiment, the volatile component is alcohol and the liquid mixture includes water and alcohol. Preferably, the extracting liquid is water or an aqueous solution of a nonvolatile solute. Preferable, the liquid mixture is an alcoholic beverage.
Embodiments of the invention, which may be preferred, will be described in detail hereinafter.
The previously-described problem, of the proper function of the membrane used in osmotic concentration being prevented by wetting of the membrane taking place, is believed to be overcome by the present invention.
As suggested above a barrier film is imposed between the feed liquid and the microporous hydrophobic membrane. The barrier film is substantially freely permeable to water (Fand may be permeable also to other microsolutes present), but which is essentially impermeable to macrosolutes and colloids. If such a barrier were deposited on the feed-liquid side of the membrane, then none of the wettability-altering components of the feed solution would contact the membrane surface, but water transporting across that barrier would be free to evaporate and migrate through the vapor-filled membrane pores and condense in the brine on the opposite surface.
Any (non-volatile) microsolutes, such as sugar, which can migrate Into the barrier layer, will be concentrated at the layer/membrane boundary, and must then migrate by molecular diffusion back through the barrier into the feed solution. In order to minimize the additional resistance to water transport imposed by this back-transport of solutes (so called solute-polarization), it is desirable that this barrier film be as thin as possible, commensurate with the rate of transport of water from the feed liquid into the brine.
In one particular embodiment, the membrane structure could be a laminate comprising the microporous membrane described hereinabove with a thin, hydrophilic gel-type membrane of high intrinsic water-permeability but very low permeability to macrosolutes. One such likely candidate for this laminate is dialysis grade cellophane or CUPROPHAN (Registered Trade Mark) as is used in the fabrication of hemodialyzers. This film might simply be laid on the surface of the microporous membrane, and the assembly mounted in the same module as is currently used for osmotic concentration. Cellophane membranes as thin as 12.5 microns (0.5 mil) are commercially available, and would probably be suitable for this purpose. To be functional for this embodiment, it is essential that the hydrogel-film-side of the laminate be in contact with the feed liquid or solution to be concentrated. Any other hydrophilic polymer film of adequately high intrinsic water permeability and virtual impermeability to macrosolutes and colloids, which can be fabricated in sufficient thinness, is suitable for this purpose, such films including (but not limited to) those comprised of esters and ethers of cellulose; crosslinked gelatin; gelatinized starch; chitin; agar; alginic acid; crosslinked polyacrylamide; poly (hydroxyethyl) methacrylate; crosslinked polyvinyl alcohol; and the like.
In another embodiment, as an alternative to a hydrogel film for fabrication for such a laminate, is an asymmetric, ultramicroporous, water-wettable membrane, such as an ultrafiltration membrane, the pore size of which is too small to admit the objectionable macrosolutes or colloids. In this case also (since such membranes are permeable to microsolutes), the film should be as thin as possible to minimise polarization within the film, and consequent impedance to water transport. A number of commercially available asymmetric ultrafiltration membranes are useful for this purpose, Including (but not limited to) those comprised of cellulose acetate, polyacrylonitrile, Dynel (trade mark), polyearbonate, polyamide, polysulfone, polyolefin, and polyvinylidene difluoride.
Yet another embodiment of such a laminate, involves coating the microporous membrane with a solution of a highly water-permeable polymer in a volatile, non-wetting solvent which, upon evaporation, leaves a very thin (but defect-free) coating of that polymer on the membrane. Once class of polymers useful for this purpose are the hydrophilic thermoplastic polyurethanes, for example, ESTANE (Registered Trade Mark) which are soluble in such solvents as tetrahydrofuran, DMF, and N-methyl pyrrolidone, from which thin films are easily cast.
Other film-forming coating formulations suitable for this purpose include (but are not limited to) (1) aqueous solutions of thermally curable or cross-linkable polymers such as polyvinyl alcohol/glyoxal; ammonium carboxymethylcellulose; zinc ammonium alginate; gelatin/formaldehyde; chitoasan formate; (2) alcohol or acetone solutions of hydroxyethylated for hydroxypropylated cellulose esters or ethers; (3) alcohol solutions of polyhydroxyethyl methacrylate; and the like.
The processes according to the Invention will permit processing of juices and beverages, with or without pulp, and without pretreatment.
The invention is considered to be additionally suitable for the selective removal of volatile organic solutes from aqueous solutions containing such volatile components as ethyl alcohol, and flavor and fragrance components such as aliphatic and aromatic esters, ethers, ketones, other alcohols, and aldehydes, using as the extracting liquid water or an aqueous solution of a salt or other non-volatile solute. If a liquid containing these surface-active components were allowed to contact directly the non-water-wettable membrane, their presence would tend to promote wetting and liquid penetration. On the other hand, if a barrier film the type above described separates the feed liquid from the membrane, then none of the surface active components will be present as a liquid phase in the membrane, and wetting will not occur. This particular situation is likely to be encountered in osmotic concentration of alcoholic beverages, or of fruit or vegetable extracts rich in flavor/fragrance components. So long as the extracting solution into which these volatiles will condense is sufficiently dilute in those volatiles, and or sufficiently rich in salt or other non-volatile solute, that solution will not be capable of wetting the pores of the membrane, and establishing a liquid pathway for transport.
Claims
  • 1. An osmotic concentration process for selectively extracting one or more volatile components from one or more heat sensitive components in a liquid mixture across a membrane laminate structure which includes a water-insoluble, water absorptive, and water permeable semipermeable barrier film attached to a non-liquid-wettable microporous membrane comprising the steps of:
  • (a) contacting the liquid mixture with a surface of the semipermeable barrier film;
  • (b) contacting a surface of the non-liquid-wettable microporous membrane with an extracting liquid in which one or more volatile components is soluble; and
  • (c) collecting the remaining liquid mixture;
  • whereby one or more volatile components in the liquid mixture passes through the membrane laminate structure in a vapor phase and are dissolved in the extracting liquid and,
  • wherein said contacting steps are performed in the absence of heating.
  • 2. The process of claim 1 wherein the semipermeable barrier film is macrosolute-impermeable and microsolute-permeable.
  • 3. The process of claim 1 wherein the liquid mixture is an aqueous solution or dispersion.
  • 4. The process of claim 3 wherein the volatile component to be extracted is water.
  • 5. The process of claim 4 wherein the semipermeable barrier film is macrosolute-impermeable and microsolute-permeable and the extracting liquid is an aqueous solution of a nonvolatile solute.
  • 6. The process of claim 1 wherein the extracting liquid is an aqueous solution of nonvolatile solute.
  • 7. The process of claim 1 wherein the one or more volatile components to be extracted is water and the other volatile components in the liquid mixture include fragrance and/or flavor components.
  • 8. The process of claim 1 wherein the liquid mixture is an aqueous solution or dispersion, the volatile components to be extracted are fragrance and/or flavor components, and the extracting liquid is water or an aqueous solution of a nonvolatile solute.
  • 9. The process of claim 1 wherein the liquid mixture includes water and alcohol, and the volatile component to be extracted is alcohol.
  • 10. The process of claim 9 wherein the liquid mixture is an alcoholic beverage.
  • 11. The process of claim 9 wherein the extracting liquid is water or an aqueous solution of a nonvolatile solute.
  • 12. The process of any of claims 1, 2, 3, or 9 wherein the extracting liquid is an aqueous salt solution.
  • 13. The process of claim 12 wherein the aqueous salt solution is brine.
  • 14. The process of claims 1 or 2 wherein the liquid mixture is fruit or vegetable juice.
  • 15. The process of claim 14 wherein the extracting liquid is an aqueous salt solution.
  • 16. The process of claim 1 wherein the semipermeable barrier film and the membrane form a laminate in which the semipermeable barrier film is laid upon or bonded to the membrane.
  • 17. The process of claim 16 wherein the semipermeable barrier film is an ultramicroporous, water-wettable, macrosolute-impermeable and microsolute-permeable ultrafiltration membrane.
  • 18. The process of claim 16, wherein the semipermeable barrier film is applied as a coating to a surface of the microporous membrane.
  • 19. The process of claim 1 wherein the semipermeable barrier film consists of a polysaccharide.
  • 20. The process of claim 19 wherein the semipermeable barrier film consists of regenerated cellulose (cellophane), an ether or ester of cellulose, agar or an agar derivative.
  • 21. The process of claim 1 wherein the semipermeable barrier film consists of an hydroxyalkylated acrylate or methacrylate ester, crosslinked poly(vinyl alcohol), or a linear polyurethane.
  • 22. The process of claim 1 wherein the semipermeable barrier film is freely permeable to one or more volatile components to be extracted from the liquid mixture, but is substantially impermeable to all components in the liquid mixture which, in the absence of the semipermeable barrier film, would promote wetting of the microporous membrane by the liquid mixture.
Priority Claims (1)
Number Date Country Kind
PK7553 Aug 1991 AUX
Parent Case Info

This is a continuation, of application Ser. No. 08/682.406, filed Jul. 17, 1996. This is a continuation of U.S. application Ser. No. 08/196,204, filed as PCT/AU92/00396 Jul.31,1992, now abandoned.

US Referenced Citations (53)
Number Name Date Kind
1765667 Gusmer Jun 1930
2611490 Robinson Sep 1952
3186917 Gerhardt et al. Jun 1965
3291613 Raible Dec 1966
3335545 Robb et al. Aug 1967
3425839 Pinnegar Feb 1969
3502651 Oldenburg Mar 1970
3552574 Lowe et al. Jan 1971
3721621 Hough et al. Mar 1973
3847163 Molyneux Nov 1974
3865960 Wucherpfennig et al. Feb 1975
3865961 Wucherpfennig et al. Feb 1975
3915820 Ito et al. Oct 1975
3956112 Lee et al. May 1976
4015020 Nagasawa et al. Mar 1977
4083904 Sano et al. Apr 1978
4187390 Gore Feb 1980
4218312 Perry Aug 1980
4265713 Cheng May 1981
4268279 Shindo et al. May 1981
4316772 Cheng et al. Feb 1982
4401678 Beaumont Aug 1983
4419187 Cheng et al. Dec 1983
4419242 Cheng et al. Dec 1983
4499117 Bonneau Feb 1985
4532140 Bonnome Jul 1985
4539117 Meyer et al. Sep 1985
4581236 Bandel et al. Apr 1986
4610791 Henne et al. Sep 1986
4610887 Galzy et al. Sep 1986
4612196 Goldstein et al. Sep 1986
4617127 Light Oct 1986
4655927 Ford Apr 1987
4728431 Nagura et al. Mar 1988
4743378 Ford May 1988
4778688 Matson Oct 1988
4952751 Blume et al. Aug 1990
4960520 Semmens Oct 1990
4963381 Girard et al. Oct 1990
4983303 Uragami Jan 1991
4988525 Gresch Jan 1991
5066403 Dutta et al. Nov 1991
5076932 Taylor Dec 1991
5098566 Lefebvre Mar 1992
5102550 Pizzino et al. Apr 1992
5143526 Lee et al. Sep 1992
5281430 Herron et al. Jan 1994
5382364 Bowser et al. Jan 1995
5382365 Deblay Jan 1995
5510125 Gresch Apr 1996
5512180 Ho Apr 1996
5552053 Ho et al. Sep 1996
5582735 Mancusi, III et al. Dec 1996
Foreign Referenced Citations (21)
Number Date Country
3354368 Aug 1972 AUX
0 394 193 Oct 1990 EPX
0 401 486 Dec 1990 EPX
0 456 939 Nov 1991 EPX
2944499 May 1981 DEX
4109080 Nov 1992 DEX
53-024568 Mar 1978 JPX
58-78578 May 1983 JPX
64-23882 Jan 1989 JPX
3-30663 Feb 1991 JPX
3-89922 Apr 1991 JPX
1777126 Jan 1970 GBX
1447505 Aug 1976 GBX
2054644 Feb 1981 GBX
1079517 Aug 1987 GBX
WO 8500532 Feb 1985 WOX
WO 8702380 Apr 1987 WOX
WO 8706850 Nov 1987 WOX
WO 8805768 Aug 1988 WOX
WO 9204109 Mar 1992 WOX
WO 930825 Apr 1993 WOX
Non-Patent Literature Citations (3)
Entry
Braatz, J.A.., "Biocompatible Polyurethane-Based Hydrogel", J. Biomaterials Applications, 1994, 9, 71-96.
Michaels, A.S. et al., "Membrane Permeation: Theory and Practice", Progress in Separation and Purification, Perry, E.S., Ed., 1968, vol. 1, John Wiley & Sons, Inc., New York, 143-186.
Excerpt from a Ph.D. dissertation of 1988 by Dr. Antonios Franken of the Netherlands.
Continuations (2)
Number Date Country
Parent 682406 Jul 1996
Parent 196204