The present disclosure relates generally to a fluid filter device and methods of making and using the same. More particularly, the present disclosure relates to a disposable fluid filter device comprising a polymeric film.
There are currently a number of fluid filter products available for use in research, development, and manufacturing. Some of these products comprise some type of disposable filter media designed to decontaminate or sterilize a fluid source. The disposable filter media is typically disposed in a reusable metal housing. The metal housing contacts the fluid being processed and is typically cleaned or sanitized during filter media replacement. In order to reduce the risk of contamination between filter changes and product batch changes, disposable filter cartridges that eliminate fluid contact with a reusable housing have been developed. Such products are often relatively bulky and heavy, making them less desirable for handling. The relatively large size can also result in increased waste upon disposal of the product. Such products may also have hold up volumes (i.e., the fluid contained within the cartridge assembly during operation) that are difficult to reclaim upon completion of the filtering process.
Accordingly, there is a continuing need for disposable filter products that are easy to handle, cost effective, and reduce waste both directly (e.g., reduced filter media waste) and indirectly (e.g., reduced hold up volumes).
The present disclosure relates generally to a fluid filter device and methods of making and using the same. More particularly, the present disclosure relates to a disposable fluid filter device comprising a polymeric film. The filter device of the present disclosure can reduce the size and amount of material used and disposed of in a filtering operation by replacing larger and less efficient filter elements with smaller and thinner filter elements.
The present application discloses a filter device having at least one filter media and at least first and second non-permeable films attached thereto. Some embodiments of further comprise at least one drainage substrate configured to enhance performance of the device. In some embodiments, at least one of the non permeable films further comprises at least one fluid communication port configured to allow fluid to enter or leave the filter device. The non-permeable films may be attached together to substantially planarly encapsulate the filter device. In some embodiments, the at least one filter media may be further attached to at least one substrate configured to provide support, further attachment area, or filtration, flow or drainage enhancement. In some embodiments, the filter media comprises planarly disposed pleats, although it is envisioned that a multitude of filter media configurations, for example, flat sheet media, could be successfully employed. Embodiments comprising multiple filter elements may be employed to further increase filtration surface area while maintaining a substantially flat configuration. Also disclosed are various apparatuses configured to contain and facilitate the use of embodiments of the disclosed filter device, although it is envisioned some embodiments of the disclosed filter device may be independently employed. It is to be understood that, while the disclosed filter device may be employed in a substantially flat configuration, some embodiments are of a flexible nature that may be manipulated to conform to a variety of alternatively shaped configurations.
These and other aspects of the disclosure will be apparent from the detailed description below. In no event, however, should the above summaries be construed as limitations to the claimed subject matter, which subject matter is defined solely by the attached claims, as may be amended during prosecution.
Throughout the specification, reference is made to the appended drawings, where like reference numerals designate like elements, and wherein:
a is a non-rectangular filter element having planarly disposed pleats having folds that are welded along an edge;
b is a cross-sectional view detailing one possible configuration of planarly disposed pleats;
a is a partial cutaway view of a filter element comprising a filter media having planarly disposed pleats having folds that are welded along each edge, wherein each edge is further attached to a substrate that extends beyond the width of the filter media;
b are a partial cutaway views of a filter element comprising a filter media having planarly disposed pleats having folds that are welded along each parallel edge and further along a first end and a second end, wherein the parallel edges and the first and second ends define a rectangular periphery that surrounds an operative filtration, wherein at least a portion of the rectangular periphery is further attached to a framing substrate, the framing substrate having one or more apertures permitting fluid communication with the operative filtration area;
a is a cross-sectional view of a filter device having fluid communication ports and a filter media comprising planarly disposed pleats, wherein the filter media is further attached to a framing substrate;
a are cross-sectional representations of filter devices having fluid communication ports, two filter elements, and a drainage substrate disposed between the filter elements;
a show an overhead view and a partial cross-section of one example of a stackable member configured for use, for example, in the apparatus shown in
For example, the at least one filter media 12 may be formed of a single material. In other embodiments, the filter media 12 may be formed of multiple materials. In some cases, it may be desirable to form the filter media 12 of a composite of materials configured to provide improved pressure drop characteristics, such as by employing multiple materials having different degrees of porosity to selectively capture particulates and prevent premature loading or clogging of the filter media 12. In other embodiments, the at least one filter media 12 may be formed of multiple materials.
In
b is a detailed view of one possible configuration for planarly disposed pleats 14. The planarly disposed pleats 14 may be configured such that the crown 14c of a given pleat rests at or near the root 14b of a corresponding pleat. The planarly disposed pleats 14 may also be configured such that the crown 14c of a given pleat rests substantially against the leg 14d of a corresponding pleat in no specific relation to the root 14b of a corresponding pleat. It is envisioned that, in some embodiments, the planarly disposed pleats 14 may exhibit a combination of the above configurations or even a random assortment of pleat sizes. In such configurations, the resulting pleated filter element 10 may have one, three, five, seven, nine, eleven, thirteen or even fifteen layers of filter media at any given cross-section, each layer of filter media comprising either a single filter material or a composite of multiple filter materials.
As used in the present disclosure, the term “pleat” refers to successive folds in a filter media forming first pleat legs having a first length and second pleat legs having a second length. Pleats may be formed with similar or dissimilar first and second leg lengths. Further, similar pleats may be uniformly distributed throughout a filter media or dissimilar pleats may be distributed in a repeating pattern or in an irregular or random pattern such that varying leg lengths are produced. The use of pleats in the filter media increases the amount of available surface area of the filter media in the filter device, and generally improves filter flow and throughput.
It is envisioned that the substantially flat filter element 10 could be manufactured either in discrete lengths for incorporation into a filtration application, wherein the at least one filter media 12 has a first end 12a and a second end 12b as shown in
In other embodiments, the folds 14a need not be perpendicular to edges 18a, 18b, such as where the filter element 10 is formed in a non-rectangular configuration. Where edges are welded, such welds may be substantially continuous, i.e., uninterrupted along the at least one edge 18a, 18b, or may be, for example, discrete tacks sufficient to hold each planarly disposed pleat 14 in a substantially flat configuration. In
In some embodiments, such as in
As shown in
As shown in
In some embodiments, at least a portion of the framing substrate 34 is attached directly to at least a portion of the pleated filter media 12. In other embodiments, at least a portion of the framing substrate 34 is attached to at least a portion of at least one substrate 20a, 20b, which may be directly attached to at least a portion of the pleated filter media 12. In still other embodiments, at least a portion of the framing substrate 34 is attached to at least a portion of a third substrate 20c, which is attached to at least one first or second substrate 20a, 20b, which may be directly attached to at least a portion of the pleated filter media 12. In appropriate applications and embodiments, the framing substrate 34 may be continuously or intermittently attached about a periphery 30 surrounding an operative filtration area 32.
In some embodiments, the framing substrate 34 may be composed of a single, continuous member. In other embodiments, a framing substrate 34 may be constructed of multiple members and subsequently assembled in a suitable framing configuration. Such a multiple-member framing substrate 34 may be, for example, easier or more efficient to manufacture, depending upon the capabilities of the fabrication means employed.
In the framing substrate 34, within the periphery 30, there may be a single aperture 36 or multiple apertures 36′ enabling fluid communication through the framing substrate 34 to the pleated filter media 12. Such apertures 36 or 36′ may be configured in a manner similar to a typical picture frame as in
In
a is a cross-sectional view of a filter device 8 having fluid communication ports 54, 56 and a filter element 10 comprising planarly disposed pleats 14 of filter media 12 attached to a framing substrate 34. As shown in
a are cross-sectional representations of filter devices having multiple fluid communication ports 54, 54′, 56, 56′, two filter elements 10, 10′, and a drainage substrate 52 disposed between the filter elements 10, 10′. A shown in
As shown in
The stackable members 72 are generally configured with a depressed area that provides a cavity when two stackable members are placed in intimate contact. The stackable member cavity is configured to provide mechanical support for the filter device 8. In some embodiments, the stackable member cavity is configured to be slightly smaller than the outer geometry of the filter device 8 to eliminate any unsupported areas for the first and second non-permeable films 40, 42. The stackable members 72 can all be identical as shown in
a show an overhead view and a partial cross-section of one example of a stackable member 72 configured for use, for example, in the apparatus 70 shown in
The pressure port 88 is in fluid communication with cavity 86 and allows pressure and/or vacuum to be applied to the exterior of the filter device 8 within the cavity 86. The application of pressure to the exterior of the filter device can be used to promote evacuation of the filter device. Likewise, the application of vacuum to the exterior of the filter device can be used to promote filling of the filter device. The sealing member 78 along with pressure port seal 96 create a fluid seal between the exterior surface of the filter device and atmosphere The pressure applied to the exterior of the filter device through pressure port 88 can be created with liquid or gas. In some embodiments, the liquid or gas can be introduced at a desired temperature.
The stackable members can be made from any materials that can withstand the expected operating pressures, including metal in high pressure operations, and plastic in lower pressure operations. Since the stackable members are predominantly in a compressive state within the clamping device, plastic is suitable for many applications. In some embodiments, the stackable members are made from a transparent plastic that allows the operator to visually inspect the filter devices and related connections during operation.
As shown in
In some embodiments, the filter devices are configured to support tangential flow filtration. In such configurations, two fluid communication ports are in fluid communication with at least one of the chambers and are separated from each other such that the source fluid needs to travel along a length of the filter media (i.e., tangential flow).
In addition to the use as filtering device, one of ordinary skill in the art of cell growth technology will recognize the capability of using the apparatuses and methods of the present disclosure for cell growth. For such purposes, the filter media of the filter device described can be replaced with a suitable cell growth media. The filter device can thus become a cell growth device.
The cell growth device provides an apparatus for maintaining a controlled environment for the growth of cells. In certain preferred embodiments, multiple cell growth devices are interconnected by multiple fluid inlet and outlet ports to provide the necessary liquid and gas exchange required for optimum cell growth. The individual cell growth devices can be further sealed by a chamber formed by multiple rigid stackable members that may direct a positive or negative fluid pressure, for example, via pressure port similar to pressure port 88, to the outer film walls of the film enclosures of the cell growth device. The compressive and expansion effect on the films walls can create either a directional fluid flow through the cell growth substrate or a rise and fall of the liquid/gas interface across the surface of the cell growth substrate within the cell growth device. The action of compressing or expanding the outer cell growth device walls allows for the controlled rise or fall of the fluid within the cell growth device. The use of valves, including, for example check valves, at up and/or down stream fluid locations allows directional fluid flow to be achieved.
In some embodiments, a combination of cell growth devices and filter devices are configured in stackable members such that both cell growth and filtration can be accomplished within a single apparatus. In some embodiments, cell growth fluid is periodically moved from at least one of the filter devices to at least one of the cell growth devices. Valves are used to control the direction and flow of fluids in accordance with the desired protocol. In some embodiments, waste product may be removed and/or nutrients may be added during the process. In some embodiments, a third expandable device for fluid storage is used that is neither a cell growth device nor a filter device. This third type of device can be used as a temporary storage unit for fluid when rotating fluids between devices in the apparatus (i.e., exchanging fluid in a cell growth device with fluid in a filter device) or adjusting cell growth fluid levels within the cell growth devices.
Various modifications and alterations of the embodiments will be apparent to those skilled in the art without departing from the spirit and scope of the disclosure. It should be understood that the disclosure is not limited to illustrative embodiments set forth herein.
This application is a divisional of U.S. patent application Ser. No. 12/809,194 filed on Jun. 18, 2010 as a national stage entry of PCT/US08/86923, filed on Dec. 16, 2008, which claims priority to U.S. Prov. Appln. No. 61/016,149, filed on Dec. 21, 2007, the disclosures of which are incorporated herein by reference in their entireties.
Number | Name | Date | Kind |
---|---|---|---|
624014 | Hagerty | May 1899 | A |
1647799 | Hammer | Nov 1927 | A |
1809716 | McDonough | Jun 1931 | A |
1846584 | Clark | Feb 1932 | A |
2323896 | Cahill | Jul 1943 | A |
2387368 | Vokes | Oct 1945 | A |
2395449 | Briggs | Feb 1946 | A |
2420414 | Briggs | May 1947 | A |
2448157 | Schneider | Aug 1948 | A |
2586078 | O'Malley | Feb 1952 | A |
2689652 | Gretzinger | Sep 1954 | A |
2758760 | Bock et al. | Aug 1956 | A |
2792118 | Kraissl, Jr. | May 1957 | A |
2801009 | Bowers | Jul 1957 | A |
2840283 | Roussos | Jun 1958 | A |
2979240 | Liebeskind | Apr 1961 | A |
3106528 | Burks | Oct 1963 | A |
3306794 | Humbert, Jr. | Feb 1967 | A |
3349159 | Luboshez | Oct 1967 | A |
3390218 | Painter et al. | Jun 1968 | A |
3474599 | Schwab | Oct 1969 | A |
3542636 | Wandel | Nov 1970 | A |
3701433 | Krakauer et al. | Oct 1972 | A |
3733267 | Haase | May 1973 | A |
3988244 | Brooks | Oct 1976 | A |
4035304 | Watanabe | Jul 1977 | A |
4081379 | Smith | Mar 1978 | A |
4086116 | Yazaki et al. | Apr 1978 | A |
4377431 | Chodosh | Mar 1983 | A |
4422939 | Sharp et al. | Dec 1983 | A |
4465213 | Lehmann et al. | Aug 1984 | A |
4552661 | Morgan | Nov 1985 | A |
4680118 | Taga | Jul 1987 | A |
4701267 | Watanabe et al. | Oct 1987 | A |
4828698 | Jewell et al. | May 1989 | A |
4863602 | Johnson | Sep 1989 | A |
4877526 | Johnson et al. | Oct 1989 | A |
5075004 | Gershenson et al. | Dec 1991 | A |
5174896 | Harms, II | Dec 1992 | A |
5211091 | Cole | May 1993 | A |
5252207 | Miller et al. | Oct 1993 | A |
5275743 | Miller et al. | Jan 1994 | A |
5342511 | Brown et al. | Aug 1994 | A |
5472606 | Steere et al. | Dec 1995 | A |
RE35241 | Capy et al. | May 1996 | E |
5543047 | Stoyell et al. | Aug 1996 | A |
5702037 | Merkel | Dec 1997 | A |
5709771 | Fritzman | Jan 1998 | A |
5814219 | Friedmann et al. | Sep 1998 | A |
5840188 | Kirsgalvis | Nov 1998 | A |
5882288 | Paul et al. | Mar 1999 | A |
6030531 | Gershenson | Feb 2000 | A |
6048298 | Paul et al. | Apr 2000 | A |
6113784 | Stoyell et al. | Sep 2000 | A |
6238560 | Gershenson | May 2001 | B1 |
6315130 | Olsen | Nov 2001 | B1 |
6409919 | Tara | Jun 2002 | B1 |
6511598 | Gershenson | Jan 2003 | B2 |
6585892 | Gershenson | Jul 2003 | B2 |
6585893 | Gershenson | Jul 2003 | B2 |
6626299 | Brown et al. | Sep 2003 | B1 |
6706198 | Gershenson | Mar 2004 | B2 |
6712967 | Gershenson | Mar 2004 | B2 |
6780217 | Palmer | Aug 2004 | B1 |
6871480 | Goodrich | Mar 2005 | B1 |
6872309 | Pearson et al. | Mar 2005 | B2 |
7922006 | Fall et al. | Apr 2011 | B2 |
20040075221 | Gershenson et al. | Apr 2004 | A1 |
20050061723 | Matsushita | Mar 2005 | A1 |
20060108277 | Fall et al. | May 2006 | A1 |
20070007218 | Hundley et al. | Jan 2007 | A1 |
20070084786 | Smithies | Apr 2007 | A1 |
20070102101 | Spearin et al. | May 2007 | A1 |
20110152054 | Fall et al. | Jun 2011 | A1 |
Number | Date | Country |
---|---|---|
1118758 | Dec 1961 | DE |
3905854 | Sep 1990 | DE |
0516846 | Dec 1992 | EP |
0667800 | Nov 1995 | EP |
823648 | Nov 1959 | GB |
1400147 | Jul 1975 | GB |
1517731 | Jul 1978 | GB |
2176416 | Dec 1986 | GB |
60125220 | Jul 1985 | JP |
1761201 | Sep 1992 | SU |
WO 9411082 | May 1994 | WO |
WO 0040319 | Jul 2000 | WO |
WO 0121279 | Mar 2001 | WO |
WO 2006055710 | May 2006 | WO |
WO 2009085726 | Jul 2009 | WO |
Entry |
---|
PCT Search Report for PCT/US2008/086923, mailed Jun. 18, 2009. |
Int'l Search Report for PCT/US2006/043776, mailed Apr. 6, 2007. |
PCT Search Report for PCT/US2005/041682, mailed Jun. 14, 2006. |
EP Appl No. 08867451.0 Extended Search Report, Apr. 5, 2011. |
EP Appl. No. 06837315.8, Extended Search Report, Dec. 10, 2009. |
Number | Date | Country | |
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20130199985 A1 | Aug 2013 | US |
Number | Date | Country | |
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61016149 | Dec 2007 | US |
Number | Date | Country | |
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Parent | 12809194 | US | |
Child | 13734557 | US |