Energy-efficient conductive-gap membrane distillation

US9956528B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9956528-B2
Application numberUS-201514854946-A
CountryUS
Kind codeB2
Filing dateSep 15, 2015
Priority dateSep 15, 2014
Publication dateMay 1, 2018
Grant dateMay 1, 2018

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  4. Key dates

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  5. First independent claim

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Abstract

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Apparatus for energy-efficient conductive-gap membrane distillation includes a feed-liquid source and a distillation module. The distillation module includes a feed-liquid chamber in fluid communication with the feed-liquid source. The feed-liquid chamber includes a selectively porous material that allows a component of the feed liquid to pass through the selectively porous material and exit the feed-liquid chamber in vapor form but not in liquid form. The distillation module also includes a conductive-gap chamber adjacent to the selectively porous material on an opposite side of the selectively porous material from the feed-liquid chamber; a heat-transfer surface maintained at a lower temperature than the feed liquid in the feed-liquid chamber, wherein the heat-transfer surface is in thermal contact with the conductive-gap chamber; and a thermally conductive material extending across the conductive-gap chamber.

First claim

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What is claimed is: 1. An apparatus for energy-efficient conductive-gap distillation comprising: a feed-liquid source including a feed liquid; a distillation module comprising: a) a feed-liquid chamber containing feed liquid in fluid communication with the feed-liquid source to establish a flow of the feed liquid through the feed-liquid chamber, wherein the feed-liquid chamber includes a selectively porous material that allows a component of the feed liquid to pass through the selectively porous material and exit the feed-liquid chamber in vapor form but not in liquid form, wherein the selectively porous material has an overall thermal conductance of less than 500 W/m 2 ·K; b) a conductive-gap chamber adjacent to the selectively porous material on an opposite side of the selectively porous material from feed-liquid chamber, wherein the conductive-gap chamber is filled with liquid; c) a heat-transfer surface maintained at a lower temperature than the feed liquid locally at points of contact between the heat-transfer surface and the feed liquid in the feed-liquid chamber, wherein the heat-transfer surface is in thermal contact with the conductive-gap chamber; and d) thermally conductive fins extending from the heat-transfer surface across the conductive-gap chamber and supporting the selectively porous material from collapsing onto the heat-transfer surface. 2. An apparatus for energy-efficient conductive-gap distillation comprising: a feed-liquid source including a feed liquid; a distillation module comprising: a) a first feed-liquid chamber in fluid communication with the feed-liquid source, the first feed-liquid chamber including a heat-transfer wall; b) a conduit coupled with the first feed-liquid chamber to extract the feed liquid after the feed liquid flows through the first feed-liquid chamber; c) a heat source configured to heat the feed liquid in the conduit; d) a conductive-gap chamber filled with liquid and adjacent the heat-transfer wall; e) a second feed-liquid chamber coupled with the conduit and configured to receive the feed liquid after the feed liquid flows through the conduit and is heated by the heat source, wherein the second feed-liquid chamber includes a selectively porous material that allows a component of the feed liquid to pass through the selectively porous material and exit the second feed-liquid chamber in vapor form but not in liquid form, wherein one side of the selectively porous material faces a surface of the heat-transfer wall of the first feed-liquid chamber across the conductive-gap chamber in a configuration that allows the vapor to condense into the liquid in the conductive-gap chamber such that the liquid then conducts condensation energy through the heat-transfer wall into the first liquid chamber, and wherein the selectively porous material has an overall thermal conductance of less than 500 W/m 2 ·K; and f) thermally conductive fins extending from the heat-transfer wall across the conductive-gap chamber and supporting the selectively porous material from collapsing onto the heat-transfer wall while leaving passages for flow of the liquid condensate through the conductive-gap chamber; and a condensate collection receptacle in fluid communication with a gap between the selectively porous material and the heat-transfer wall. 3. The apparatus of claim 2 , wherein the feed liquid comprises a volatile component and a less-volatile component from which the volatile component is separated via vaporization through the selectively porous material. 4. The apparatus of claim 2 , wherein the feed liquid comprises water, and wherein the liquid in the conductive-gap chamber is water. 5. The apparatus of claim 4 , wherein the feed liquid further comprises at least one of the following: water including dissolved salt, water including suspended solute, water including suspended oil, water-alcohol mixture, and fruit juice. 6. The apparatus of claim 2 , wherein the selectively porous material has a contact angle with the feed liquid of greater than 90° and allows the vapor to pass through while preventing liquid feed from passing through. 7. The apparatus of claim 6 , wherein the selectively porous material comprises at least one of the following: a polymer membrane, a porous ceramic material, and a porous graphene material. 8. The apparatus of claim 7 , wherein the polymer membrane comprises at least one of the following: polyvinylidene difluoride, polytetrafluoroethylene, and polypropylene. 9. The apparatus of claim 2 , wherein the thermally conductive fins have a thermal conductivity greater than 5 W/(m·K). 10. The apparatus of claim 2 , wherein the thermally conductive fins have a thermal conductivity greater than 100 W/(m·K). 11. The apparatus of claim 2 , wherein the thermally conductive fins comprise at least one of the following: a metal, sapphire, a composite, a conductive plastic, carbon nanotubes, and carbon fiber. 12. The apparatus of claim 2 , wherein the thermally conductive fins are anisometric and have a thermal conductivity greater than 5 W/(m·K) in a direction through the heat-transfer wall. 13. The apparatus of claim 2 , wherein the heat transfer wall defines grooves between the fins, wherein the grooves are configured to flow pure water out of the gap, and wherein the selectively porous material is in contact with the fins. 14. The apparatus of claim 2 , wherein the surface of the heat-transfer wall that faces the selectively porous material is corrugated and increases the overall heat conductance of the gap. 15. The apparatus of claim 2 , wherein the thermally conductive fins extend across the conductive-gap chamber across top, middle, and bottom thirds of the conductive-gap chamber. 16. The apparatus of claim 2 , wherein thermally conductive fins are also included in at least one of the first and the second feed-liquid chambers, improving heat transfer in the feed-liquid chamber in which it is included. 17. The apparatus of claim 2 , wherein the selectively porous material is a flat membrane. 18. The apparatus of claim 2 , wherein the distillation module is spiral wound. 19. A method for energy-efficient liquid gap distillation, comprising: flowing a feed liquid through a first feed-liquid chamber of a distillation module, wherein the first-feed liquid chamber includes a heat-transfer wall; heating the feed liquid; flowing the heated feed liquid through a second feed-liquid chamber of the distillation module, wherein the second feed-liquid chamber includes a selectively porous material that includes an outer surface in fluid communication with a gap between the selectively porous material and the first feed-liquid chamber, wherein the selectively porous material has an overall thermal conductance of less than 500 W/m 2 ·K; transferring heat from the feed liquid in the second feed-liquid chamber through thermally conductive fins extending from the heat-transfer wall across the conductive-gap chamber and supporting the selectively porous material from collapsing into the heat-transfer wall; permeating a vapor component from the feed liquid in the second feed-liquid chamber through the selectively porous material into the conductive-gap chamber; condensing the vapor component of the feed liquid to form a liquid condensate that fills the conductive-gap chamber; removing the liquid condensate from the conductive-gap chamber; and removing from the second feed-liquid chamber a brine remaining from the feed liquid after the vapor component permeates through the selectively porous mate

Assignees

Inventors

Classifications

  • Operations & Transport · mapped topic

  • B01D61/364Primary

    Membrane distillation · CPC title

  • Polytetrafluoroethylene · CPC title

  • Apparatus therefor · CPC title

  • by membrane distillation (distillation and evaporation without the use of membranes C02F1/04) · CPC title

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What does patent US9956528B2 cover?
Apparatus for energy-efficient conductive-gap membrane distillation includes a feed-liquid source and a distillation module. The distillation module includes a feed-liquid chamber in fluid communication with the feed-liquid source. The feed-liquid chamber includes a selectively porous material that allows a component of the feed liquid to pass through the selectively porous material and exit th…
Who is the assignee on this patent?
Massachusetts Inst Technology
What technology area does this patent fall under?
Primary CPC classification B01D61/364. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue May 01 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).