Disclosed is multi-flow filter cartridge assembly that includes an elongated housing that has axially opposed proximal and distal ends and defines an interior cavity and first, second and third flow paths which extend from the proximal end of the housing to the distal end. The cartridge assembly also includes first, second and third filter elements. The first filter element is disposed within the interior cavity of the housing and conditions fluid that traverses the first flow path from a first inlet port to a first outlet port. The second filter element is disposed within the interior cavity of the housing and conditions fluid that traverses the second flow path from a second inlet port to a second outlet port. Lastly, the third filter element is also disposed within the interior cavity of the housing and conditions fluid that traverses the third flow path from a third inlet port to a third outlet port. The first flow path is isolated from the second and third flow paths and the second flow path is isolated from the third flow path.
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1. A filter cartridge assembly comprising:
i) an elongated housing having axially opposed proximal and distal ends, the housing defining an interior cavity, a central axis and first, second and third flow paths which extend from the proximal end of the housing to the distal end, wherein the housing includes a pair of coaxially positioned peripheral walls of the housing;
ii) a first pleated filter element disposed along the central axis and within the interior cavity of the housing for conditioning fluid traversing the first flow path from a first inlet port to a first outlet port;
iii) a second pleated filter element disposed along the central axis and within the interior cavity of the housing for conditioning fluid traversing the second flow path from a second inlet port to a second outlet port; and
iv) a third non-pleated filter element disposed along the central axis and within the interior cavity of the housing for conditioning fluid traversing the third flow path from a third inlet port to a third outlet port; and wherein the first flow path is isolated from the second and third flow paths and the second flow path is isolated from the third flow path.
0. 2. A filter cartridge assembly as recited in
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0. 8. A filter cartridge assembly as recited in
0. 9. A filter cartridge assembly as recited in
0. 10. A filter cartridge assembly as recited in
0. 11. A filter cartridge assembly as recited in
0. 12. A filter cartridge assembly as recited in
0. 13. A filter cartridge assembly comprising:
i) an elongated housing having axially opposed proximal and distal ends, the housing defining first, second and third filter chambers and first, second and third flow paths which extend from the proximal end of the housing to the distal end;
ii) a first filter element disposed within the first filter chamber of the housing for conditioning fluid traversing the first flow path from a first inlet port to a first outlet port;
iii) a second filter element disposed within the second filter chamber of the housing for conditioning fluid traversing the second flow path from a second inlet port to a second outlet port; and
iv) a third filter element disposed within the third filter chamber of the housing for conditioning fluid traversing the third flow path from a third inlet port to a third outlet port; and wherein the first flow path is isolated from the second and third flow paths and the second flow path is isolated from the third flow path wherein the first outlet port, the second inlet port and third inlet port are located at the distal end of the housing.
0. 14. A filtration system for conditioning fluid received from three distinct fluid sources, comprising:
i) a controller including means for regulating and monitoring fluid flow in the filtration system, the controller defining an elongated receptacle;
ii) a socket assembly positioned at least partially within the elongated receptacle defined by the controller, the socket assembly including a locking element; and
iii) a filter cartridge assembly inserted into the socket assembly and secured in fluid communication with the controller by the locking element.
0. 15. A filtration system as recited in
0. 16. A filtration system as recited in
i) an elongated housing having axially opposed proximal and distal ends, the housing defining an interior cavity and first, second and third flow paths which extend from the proximal end of the housing to the distal end;
ii) a first filter element disposed within the interior cavity of the housing for conditioning fluid traversing the first flow path from a first inlet port to a first outlet port;
iii) a second filter element disposed within the interior cavity of the housing for conditioning fluid traversing the second flow path from a second inlet port to a second outlet port; and
iv) a third filter element disposed within the interior cavity of the housing for conditioning fluid traversing the third flow path from a third inlet port to a third outlet port; and wherein the first flow path is isolated from the second and third flow paths and the second flow path is isolated from the third flow path.
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This application is a continuation of and claims the benefit of priority to U.S. patent application Ser. No. 12/577,188, filed Oct. 11, 2009 and issued as U.S. Pat. No. 7,976,598 on Jul. 12, 2011, which in turn is a continuation of and claims the benefit of priority to PCT application serial number PCT/US2009/060298, filed Oct. 10, 2009, which in turn claims the benefit of priority to U.S. Patent Application Ser. No. 61/195,898, filed Oct. 10, 2008. Each of the aforementioned applications is incorporated herein by reference in its entirety.
1. Field of the Invention
The present invention is directed to a filtration system for use in, for example, healthcare applications, and more particularly to a filtration system that includes a filter cartridge assembly having a plurality of distinct fluid flow paths and filter chambers, and still more particularly to, a filtration system that includes a tri-flow filter cartridge assembly and a controller which are adapted and configured for filtering or conditioning three independent fluid sources.
2. Background of the Related Art
Many applications, such as healthcare, residential, or industrial applications, require a fluid or gas source to be filtered prior to use. For example, in laparoscopic procedures the abdominal cavity of the patient is filled or insufflated with a pressurized fluid, such as carbon dioxide gas, to create what is referred to as pneumoperitoneum. The carbon dioxide gas must be filtered prior to its being supplied to the patient's abdominal cavity.
Still further, many applications require the filtration of more than one fluid source. For example, International Patent Application No. PCT/US07/88017 which was filed on Dec. 18, 2007 and published as WO 2008/077080 and is incorporated herein by reference in its entirety, discloses a system for surgical insufflation and gas recirculation to be used in laparoscopic procedures that utilizes three independent fluid streams, which are filtered during use. FIGS. 14 and 15 of WO 2008/077080, disclose a representative system for surgical insufflation and gas recirculation that includes, among other elements, a control unit in connection with a surgical insufflator and a surgical trocar. In the disclosed system, three fluid conduits connect the trocar to the control unit. A separate filter element is provided in each of the three flow paths extending between the control unit and the trocar. The use of three separate filter elements with three filter housings is cumbersome and not desirable in an operating room setting where space is at a premium. Moreover, although the filter elements appear to be identical, in fact, the size and type of filter cartridge used will vary depending on the desired flow properties and conditioning requirements for each flow path. Therefore, there is a possibility that during maintenance procedures, the filter cartridges could be mixed up and improperly placed in wrong housing and flow path. Additionally, when the filters need to be replaced, which in a laparoscopic procedure will be before each surgery, each filter cartridge must be separately removed from within its housing and replaced, which adds to the scope of the maintenance efforts.
There is a need therefore, for a filter cartridge assembly for use in applications such as laparoscopic surgery that is adapted and configured for filtering three independent fluid sources. Additionally, there is also a need for a filtration system that can be used in a surgical environment which is compact and simple to use and maintain.
The present invention is directed to a filter cartridge assembly that includes, inter alia, an elongated housing that has axially opposed proximal and distal ends and defines an interior cavity and first, second and third flow paths which extend from the proximal end of the housing to the distal end.
The cartridge assembly also includes first, second and third filter elements. The first filter element is disposed within the interior cavity of the housing and conditions fluid that traverses the first flow path from a first inlet port to a first outlet port. The second filter element is disposed within the interior cavity of the housing and conditions fluid that traverses the second flow path from a second inlet port to a second outlet port. Lastly, the third filter element is also disposed within the interior cavity of the housing and conditions fluid that traverses the third flow path from a third inlet port to a third outlet port. The first flow path is isolated from the second and third flow paths and the second flow path is isolated from the third flow path.
Preferably, the proximal end of the housing includes a connector element. In certain embodiments of the present invention, the connector element includes the first inlet port and the second and third outlet ports.
It is envisioned that the housing includes a pair of coaxially positioned peripheral walls. In certain constructions, the peripheral walls of the housing are integrally molded. In alternative constructions, the inner peripheral wall is formed using a cylindrical inner housing element positioned within the interior cavity of the housing. It is envisioned that in such constructions a portion of the second and third flow paths extend in a gap defined between the peripheral walls of the housing.
It is presently preferred that the first filter element is a radially pleated filter and fluid is conditioned in the first flow path by traversing in a radially inward direction through the first filter element. Moreover, it is also envisioned that the second filter element is radially pleated filter and fluid is conditioned in the second flow path by traversing in a radially outward direction through the second filter element. Lastly, in preferred embodiments of the present invention, the third filter element is a disc filter and fluid is conditioned in the second flow path by traversing axially through the third filter element.
In certain constructions of the presently disclosed filter cartridge assembly, the housing further includes a second inner housing element positioned within the interior cavity of the housing and forming a second filter chamber for the second filter element. Still further, it is envisioned that in an embodiment of the present invention, the housing includes two longitudinal ribs which define two longitudinal channels in the interior cavity of the housing and the second flow path extends through one of the channels and the third flow path extends though the other channel.
Preferably, the first outlet port, the second inlet port and third inlet port are located at the distal end of the housing. Still further, it is envisioned that the first outlet port, the second inlet port and the third inlet port can be coaxially arranged.
The present invention is also directed to a filter cartridge assembly that includes, inter alia, an elongated housing that has axially opposed proximal and distal ends. The housing defines first, second and third filter chambers and first, second and third flow paths which extend from the proximal end of the housing to the distal end. A first filter element is disposed within the first filter chamber of the housing and conditions fluid that traverses the first flow path from a first inlet port to a first outlet port. A second filter element is disposed within the second filter chamber of the housing and conditions fluid that traverses the second flow path from a second inlet port to a second outlet port. A third filter element is disposed within the third filter chamber of the housing and conditions fluid that traverses the third flow path from a third inlet port to a third outlet port. The cartridge assembly is constructed such that the first flow path is isolated from the second and third flow paths and the second flow path is isolated from the third flow path.
The present invention is also directed to a filter cartridge assembly that includes, among other elements, an elongated housing that has a central axis and axially opposed proximal and distal ends. The housing defines a plurality of axially spaced apart filter chambers and a plurality of flow paths which extend from the proximal end of the housing to the distal end. The plurality of flow paths are each isolated from one another. The filter cartridge also includes a plurality of filter elements, and one of the plurality of filter elements is disposed within each of the plurality of filter chambers.
In a preferred embodiment, the housing defines three filter chambers and three flow paths. Still further, in such an embodiment it is envisioned that the plurality of filter elements includes a first filter element, a second filter element and a third filter element. The first filter element is disposed within the first filter chamber of the housing and conditions fluid traversing the first flow path from a first inlet port to a first outlet port. The second filter element is disposed within the second filter chamber of the housing and conditions fluid traversing the second flow path from a second inlet port to a second outlet port. The third filter element is disposed within the third filter chamber of the housing and conditions fluid traversing the third flow path from a third inlet port to a third outlet port.
The present invention is also directed to a filtration system for conditioning fluid received from three distinct fluid sources, the filtration system including, inter alia, a controller, a socket assembly and a filter cartridge assembly. The controller includes means for regulating and monitoring fluid flow in the filtration system and defines an elongated receptacle. The socket assembly is positioned at least partially within an elongated receptacle defined by the controller and includes a locking element. The filter cartridge assembly is inserted into the socket assembly and is secured in fluid communication with the controller by the locking element.
In a preferred embodiment of the present invention, the locking element of the socket assembly includes a cam mechanism for engaging one or more lugs extending from an exterior surface of the filter cartridge assembly.
It is presently envisioned that the filter cartridge assembly includes an elongated housing and first, second and third filter elements. The elongated housing has axially opposed proximal and distal ends and defines an interior cavity and first, second and third flow paths which extend from the proximal end of the housing to the distal end. The first filter element is disposed within the interior cavity of the housing and conditions fluid traversing the first flow path from a first inlet port to a first outlet port. The second filter element is disposed within the interior cavity of the housing and conditions fluid traversing the second flow path from a second inlet port to a second outlet port. The third filter element is disposed within the interior cavity of the housing and conditions fluid traversing the third flow path from a third inlet port to a third outlet port. The first flow path is isolated from the second and third flow paths and the second flow path is isolated from the third flow path.
So that those having ordinary skill in the art will better understand the device and methods of the subject invention, embodiments thereof will be described below with reference to the drawings wherein:
The advantages of filter cartridge assemblies and filtration systems constructed in accordance with the present invention will become more readily apparent to those having ordinary skill in the art from the following detailed description of certain preferred and exemplary embodiments taken in conjunction with the drawings which set forth representative embodiments thereof, but are not intended to limit the scope of the present invention.
Referring now to the drawings, wherein like reference numerals identify similar structural elements of the subject invention, there is illustrated in
Disposed within the interior cavity of filter cartridge 100 are first, second and third filter elements, 20, 30 and 40, respectively. The first filter element 20 conditions fluid that traverses the first flow path 25 from a first inlet port 27 (referred to in
As shown in
The second filter element 30 is positioned over the cylindrical stem 89 of filter support structure 85 and a second partition element 90 is used to seal the distal end of the second filter chamber 32 (identified in
The third filter element 40 is supported within the housing 10 on a disc holder 80. The third filter element 40 and the disc holder 80 are positioned between the proximal end cap 60 and the proximal end wall 18 of the main body portion 12 of housing 10.
As best shown in
Referring again to
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Referring now to
Disposed within the interior cavity of filter cartridge 200 are first, second and third filter elements, 120, 130 and 140, respectively. The first filter element 120 conditions fluid that traverses the first flow path 125 from a first inlet port 127 (referred to in
As shown in
Referring now to
The second interior chamber segment 156 includes a cylindrical neck portion 192 (
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Those skilled in the art will readily appreciate that the present invention is not limited to particular type of filter type or media, such as a radially pleated filter element. For example, a resin bonded cellulose type filter can be used or a fiberous media for filtering pathogenic microorganisms, such as bacteria, carbon block filter media, spiral wound media.
Referring now to
Filtration system 300 includes, among other elements, a controller 310, a socket assembly 330 and the previously described filter cartridge assembly 100. As will be discussed in detail below, controller 310 includes mechanisms for regulating and monitoring fluid flow in filtration system 300.
The controller 310 has an outer housing 312 with planar upper and lower surfaces 314 and 316 respectively, and curved side walls 318a/318b. The side walls 318a/318b each include finger recesses 320a (opposite side, not shown)/320b for moving or manipulating the controller 310. The planar lower surface 316 allows the controller 310 to be placed on a utility cart or supported from the overhead of the operating room using a boom mechanism.
The front face 322 of controller 310 includes an analog gage 324, a dial 326, a power button 328 and a jack 329. The purpose and operation of these elements will be described hereinbelow. An elongated receptacle 340 or bore is formed in the housing 312 for the controller 310 and extends into the controller 310 from its front face 322. The receptacle 340 is adapted and configured for receiving the socket assembly 330 (see
Referring now to
The locking element 336 of the socket assembly 330 includes a cam mechanism which has a cam ring 342 with a lever arm 344 extending radially outward from its outer circumference. The lever arm 344 is used to rotate the cam ring 342 with respect to the main body portion 332 of the socket assembly 330. The cam ring 342 includes four axial slots 346 each of which terminates in pitched camming channels 348 (two shown in
As shown in
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In operation controller 310 can include an insufflation unit and be connected to surgical trocar, similar to that disclosed in U.S. patent application Ser. No. 11/960,701 and International Patent Application Publication No. WO 2008/077080, published on Jun. 26, 2008. The trocar can be connected to the controller 310 by way of fluid conduits or a tube set (not shown). In the embodiment disclosed herein, the controller does not include an insufflator but receives insufflation gas from an insufflator through jack 329. The insufflator would receive the gas from, for example, a supply tank and a pressure regulator would normally be provided between the tank and the insufflator.
The operation of the controller is described in detail in U.S. patent application Ser. No. 11/960,701 and International Patent Application Publication No. WO 2008/077080, published on Jun. 26, 2008, and will not be repeated herein. As noted in these references, the system for surgical insufflation and recirculation disclosed therein requires the filtering of three separate fluid sources. The controller 310 can be utilized with any embodiments of the systems described these application. As illustrated in
As illustrated, the filter cartridge assembly 100 mounts directly to the control unit 310, such that a low profile is presented. In such a configuration, the first flow path 25 of the filter cartridge assembly 100 would be used to filter gas being removed from the abdomen patient (suction line) or for the removal of spent insufflation fluid. The second flow path 35 of filter cartridge assembly 100 would be used for conditioning the pressured gas being provided to the trocar for use in sealing the lumen used to pass instruments and the like through the trocar. The third flow path 45 of filter cartridge assembly 100 would be used to condition the pressurized gas used for insufflation and sensing.
As best seen in
In the exploded views of
Insufflation pressure passes from its port 1957, into a chamber defined by rear housing portion 1995 in the rear end plate 1990, through a flat filter 1985, into a channel 1921 defined in the housing 1920, into a channel 1911 formed in the front end cap, and through a respective port on the connector 1950.
Pressure from the unit flows through its designated port 1953, into a rear chamber defined for the pressure filter 1983 by the housing 1920 and the end plate 1990. A ring 1977 is also provided to hold the filter off of the dividing wall 1924. A channel 1929 then carries the pressure through the housing 1920, into the front end cap 1910, where a channel 1919 directs the flow through the connector 1950.
The filters 1983 and 1981 are preferably sealed against the housing 1920 by an adhesive. Grooves and matching ridges can be provided between adjoining housing sections, such can be adhered by an adhesive or by other suitable means, such as ultrasonic welding. In accordance with the invention, the filter 1900 can be configured such that channels formed in the wall of the housing 1920, such as channels 1921, 1929, and an offset arrangement of the pleated filter elements 1981, 1983 result in a housing cross-section that is not circular but has lobular portions in cross-section, corresponding to such channels.
Copley, Johnnie H., Mastri, Dominick, Stearns, Ralph, Parys, James R., Matula, Paul A., Estkowski, Christopher
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Jan 04 2016 | SURGIQUEST, INC | JPMORGAN CHASE BANK, N A , AS ADMINISTRATIVE AGENT | SECURITY INTEREST SEE DOCUMENT FOR DETAILS | 037440 | /0364 |
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