Single-pass filtration systems and processes
US-2015360180-A1 · Dec 17, 2015 · US
US9266066B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9266066-B2 |
| Application number | US-201213680155-A |
| Country | US |
| Kind code | B2 |
| Filing date | Nov 19, 2012 |
| Priority date | Dec 13, 2011 |
| Publication date | Feb 23, 2016 |
| Grant date | Feb 23, 2016 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
Asymmetric microporous membranes with localized asymmetries, devices including the membranes, and methods of making and using the membranes, are disclosed. The asymmetric microporous membranes have a first surface and a second surface and an interior bulk defined by the first and second surfaces, wherein the first surface has at least a first region and a second region, the first region having a first porosity comprising a first mean pore size, and the second region having a second porosity comprising a second mean pore size, wherein the ratio of first mean pore size to the second mean pore size is at least about 5:1.
Opening claim text (preview).
The invention claimed is: 1. An asymmetric microporous membrane comprising a first surface and a second surface, an interior bulk defined by the first and second surfaces, and a first asymmetric section and a second asymmetric section, wherein the first surface has at least a first portion and a second portion, the first asymmetric section comprising the first portion having a first porosity extending from the first portion into the interior bulk, the interior bulk having a first asymmetric pore structure, the first porosity comprising a first mean pore size, and the second asymmetric section comprising the second portion having a second porosity extending from the second portion into the interior bulk, the interior bulk having a second asymmetric pore structure that is different than the first asymmetric pore structure, the second porosity comprising a second mean pore size, wherein the ratio of first mean pore size to the second mean pore size is at least about 5:1. 2. The asymmetric microporous membrane of claim 1 , wherein the ratio of first mean pore size to the second mean pore size is at least about 25:1. 3. The asymmetric microporous membrane of claim 1 , wherein the ratio of first mean pore size to the second mean pore size is at least about 40:1. 4. The asymmetric microporous membrane of claim 1 , wherein the first surface has a plurality of first regions and second regions. 5. The asymmetric microporous membrane of claim 1 , wherein the first surface has a predetermined pattern comprising the first region and the second region. 6. The asymmetric microporous membrane of claim 1 , wherein the second surface has a third porosity, comprising a third mean pore size, wherein the ratio of the first mean pore size to the third mean pore size is at least about 100:1. 7. The asymmetric microporous membrane of claim 1 , wherein the second surface has a third porosity, comprising a third mean pore size, wherein the third mean pore size is at least about 10 times less than the first mean pore size and/or the third mean pore size is at least about two times less than the second mean pore size. 8. The asymmetric microporous membrane of claim 1 , wherein the distance between the first region of the first surface and the second surface is at least about 10 percent greater than the distance between the second region of the first surface and the second surface. 9. The asymmetric microporous membrane of claim 1 , wherein the membrane comprises a bacteriostatic or bacteriocidal membrane. 10. The asymmetric microporous membrane of claim 1 , wherein the membrane comprises a positively charged membrane. 11. The asymmetric microporous membrane of claim 1 , wherein the membrane comprises a negatively charged membrane. 12. A method of making the asymmetric microporous membrane of claim 1 , the asymmetric microporous membrane having localized asymmetries, the method comprising: (a) obtaining a template having a predetermined geometry complementary to the localized asymmetries; (b) applying a preconditioning fluid to the template to provide a preconditioned template; (c) casting a first polymer solution over the preconditioned template; (d) optionally casting a second polymer solution over the first polymer solution; (e) precipitating the first polymer solution and the second polymer solution if present to provide the asymmetric microporous membrane; and (f) separating the asymmetric microporous membrane from the template. 13. A method of making the asymmetric microporous membrane of claim 1 , the asymmetric microporous membrane having localized asymmetries, the method comprising: (a) obtaining a template; (b) applying a preconditioning fluid in a predetermined pattern to the template to provide a preconditioned template having a predetermined geometry complementary to the localized asymmetries; (c) casting a first polymer solution over the preconditioned template; (d) optionally casting second polymer solution over the first polymer solution; (e) precipitating the first polymer solution and the second polymer solution if present to provide the asymmetric microporous membrane; and (f) separating the asymmetric microporous membrane from the template. 14. The method of claim 12 , wherein the preconditioning fluid includes at least one component for providing at least one of the following to the asymmetric microporous membrane: an antimicrobial function and a charge. 15. The method of claim 12 , further comprising at least one of: (g) leaching the asymmetric microporous membrane, and (h) drying the asymmetric microporous membrane. 16. A method of processing a fluid, the method comprising: passing the fluid through the asymmetric microporous membrane of claim 1 . 17. A method of processing a fluid, the method comprising: passing the fluid tangentially to the first surface of the asymmetric microporous membrane of claim 1 . 18. A method of processing a fluid, the method comprising: passing the fluid tangentially to the second surface of the asymmetric microporous membrane of claim 1 . 19. The asymmetric microporous membrane of claim 2 , wherein the first surface has a plurality of first regions and second regions. 20. An asymmetric microporous membrane comprising a first surface and a second surface and an interior bulk defined by the first and second surfaces, wherein the first surface has plurality of first regions and second regions in a predetermined pattern, the first regions having a first porosity comprising a first mean pore size wherein a first asymmetric pore structure extends from the first region into the interior bulk, the interior bulk having a first asymmetric pore structure, the second regions having a second porosity comprising a second mean pore size wherein a second asymmetric pore structure extends from the second region into the interior bulk, the interior bulk having a second asymmetric pore structure that is different than the first asymmetric pore structure, wherein the ratio of first mean pore size to the second mean pore size is at least about 5:1, and wherein the second surface has a third porosity, comprising a third mean pore size, wherein the ratio of the first mean pore size to the third mean pore size is at least about 100:1.
Microporous · CPC title
Operations & Transport · mapped topic
characterised by their properties · CPC title
Apparatus therefor · CPC title
Surface irregularities · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.