BLOOD PURIFYING APPARATUS
20170095603 ยท 2017-04-06
Inventors
Cpc classification
A61M1/1623
HUMAN NECESSITIES
B01D2313/40
PERFORMING OPERATIONS; TRANSPORTING
B01D63/04
PERFORMING OPERATIONS; TRANSPORTING
A61M1/3486
HUMAN NECESSITIES
B01D2319/06
PERFORMING OPERATIONS; TRANSPORTING
B01D2313/201
PERFORMING OPERATIONS; TRANSPORTING
A61M1/3475
HUMAN NECESSITIES
B01D2313/08
PERFORMING OPERATIONS; TRANSPORTING
A61M1/3417
HUMAN NECESSITIES
International classification
B01D61/24
PERFORMING OPERATIONS; TRANSPORTING
A61M1/34
HUMAN NECESSITIES
Abstract
Provided is a multi-functional filter including a first filter and a second filter to purify a biological fluid, a housing defining an adsorption section outside of the first filter and the second filter, a flow partitioning connector connecting the first filter and the second filter, and a housing port allowing a fluid to flow through the adsorption section. The housing may comprise a wall, a first cap coupled to the first filter at one end of the wall along a longitudinal direction, and a second cap coupled to the second filter at the other end of the wall along a longitudinal direction. The multi-functional filter according to the present invention in which dialysis, adsorption, and plasma separation or ultrafiltration are integrated to purify blood or dialysate and the internal flow is facilitated may provide a blood purifying apparatus that simplifies the whole apparatus, provides convenience in installation and use, and reduces a treatment cost.
Claims
1. A multi-functional filter, comprising: a first filter including a container having an internal space and a separation membrane accommodated in the internal space of the container; a second filter including a container having an internal space and a separation membrane accommodated in the internal space of the container; a housing providing an installation space for the first filter and the second filter and defining an adsorption section outside the first filter and the second filter; a housing port provided in the housing to allow a fluid to flow through the adsorption section; and a flow partitioning connector connecting the first filter and the second filter to prevent a leakage of a fluid between the first filter and the second filter, wherein the first filter container and the second filter container each comprise a flow hole in at least one side along a longitudinal direction with respect to a longitudinal middle portion thereof, and wherein the housing comprises a wall, a first cap coupled to the first filter at one side of the wall, and a second cap coupled to the second filter at the other side of the wall.
2.-4. (canceled)
5. The multi-functional filter of claim 1, wherein at least one of the first cap and the second cap comprises a flow passage that penetrates the cap, an end of the flow passage adjacent to a connecting portion of the cap.
6. The multi-functional filter of claim 5, wherein the flow partitioning connector is connected to at least one of the first cap and the second cap, and the cap connected to the flow partitioning connector further comprises a second flow passage that penetrates the cap, an end of the second flow passage adjacent to a surface of the cap facing to the adsorption section.
7. The multi-functional filter of claim 5, wherein opposite ends of the flow partitioning connector are connected to the first cap and the second cap, and one of the first cap and the second cap comprises a second flow passage that penetrates the cap, an end of the second flow passage adjacent to a surface of the cap facing to the adsorption section, and wherein the flow partitioning connector includes a flow hole surrounding the flow partitioning connector along a circumferential direction and allowing a fluid to flow therethrough.
8. The multi-functional filter of claim 6, comprising an adsorbent in the adsorption section to remove toxins and waste product.
9. The multi-functional filter of claim 8, wherein in order to prevent the adsorbent from moving through the housing port or the flow hole, the housing port or the flow hole is formed to have a size smaller than the adsorbent, the housing port or the flow hole is covered by a mesh filter with pores having a smaller size than the adsorbent, the adsorbent is covered by a mesh filter with pores having a smaller size than the adsorbent, an adsorbent block in which powder or particles are compressed is used, or a separation wall is disposed to inhibit passing of the adsorbent.
10. The multi-functional filter of claim 9, wherein the separation wall has pores of a smaller size than the adsorbent or has a structure in which a mesh filter having pores of a smaller size than the adsorbent is attached to a support wall through which a fluid flows.
11. The multi-functional filter of claim 8, wherein the first filter container or the second filter container comprises a wall protruder disposed in an inner wall of the container to reduce an internal diameter thereof.
12. A blood purifying apparatus, comprising: a multi-functional filter according to claim 9; a tube connected to the multi-functional filter to allow blood or plasma to flow therethrough; and a pump disposed on the tube to transfer blood or plasma.
13. The blood purifying apparatus of claim 12, wherein one of the first filter membrane and the second filter membrane comprises a dialysis membrane and the other one of the first filter membrane and the second filter membrane comprises a plasma separation membrane.
14. A blood purifying apparatus, comprising: a blood filter where blood and dialysate pass and mass transfer occurs therebetween; a tube in which blood or dialysate flows, the tube connected to the blood filter; and a multi-functional filter according to claim 9 to purify dialysate.
15. The multi-functional filter of claim 7, comprising an adsorbent in the adsorption section to remove toxins and waste product.
16. The multi-functional filter of claim 15, wherein in order to prevent the adsorbent from moving through the housing port or the flow hole, the housing port or the flow hole is formed to have a size smaller than the adsorbent, the housing port or the flow hole is covered by a mesh filter with pores having a smaller size than the adsorbent, the adsorbent is covered by a mesh filter with pores having a smaller size than the adsorbent, an adsorbent block in which powder or particles are compressed is used, or a separation wall is disposed to inhibit passing of the adsorbent.
17. The multi-functional filter of claim 16, wherein the separation wall has pores of a smaller size than the adsorbent or has a structure in which a mesh filter having pores of a smaller size than the adsorbent is attached to a support wall through which a fluid flows.
18. The multi-functional filter of claim 15, wherein the first filter container or the second filter container comprises a wall protruder disposed in an inner wall of the container to reduce an internal diameter thereof.
19. The multi-functional filter of claim 1, wherein the flow partitioning connector has a portion that contacts at least one of the first filter container and the second filter container.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0018] The accompanying drawings are included to provide a further understanding of the present invention, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the present invention and, together with the description, serve to explain principles of the present invention. In the drawings:
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BEST MODE
[0040] Hereinafter, a multi-functional filter and a blood purifying apparatus having the multi-functional filter according to an embodiment of the present invention will be described in detail with reference to the accompanying drawings.
[0041] In the following description of the present invention, the size, shape or the like of constituent elements illustrated in the drawings may be exaggerated or simplified for clarity and convenience of explanation. Also, the terms particularly defined taking into consideration the configurations and operations of the present invention may be changed based on the intentions of users or operators, or customs. These terms should be construed as meanings and concepts conforming to the technical spirit of the present invention based on the general context of this specification.
[0042] As shown in
[0043] Referring to
[0044] Here, the first filter container 21 and the second filter container 31 may have a flow hole in at least one of two opposite sides separated along a longitudinal direction with respect to a longitudinal middle portion of the container. For example, as shown in
[0045] As shown in
[0046] Also, at least one of the first cap 40 and the second cap 50 may include a flow passage penetrating the cap, an end of which is adjacent to the connecting portion 42 or 52 of the cap. For example, as shown in
[0047] When the first cap is coupled to the first filter, the first flow passage 43 forms a flow path through which fluid flows into the first filter.
[0048] As such, due to the coupling of the cap 40 or 50 and the filter 20 or 30, the fluid is limited to flow into a predetermined region. Various methods may be used, such as chemical adhesion of each coupling part of the cap and filter or insertion of a soft O-ring such as silicone into each adhesion part, to prevent fluids from flowing to other spaces except the predetermined spaces.
[0049] An adsorbent may be provided in the adsorption section 12 to remove toxins and waste products. Exemplary adsorbents according to an embodiment of the present invention include an anion exchange resin and activated charcoal. An anion exchange resin removes electrically charged toxins, such as bilirubin, while being combined with plasma proteins by means of ion exchange mechanism. On the other hand, activated charcoal may be used to remove tryptophan and water-soluble middle-sized toxins by physical adsorption. The adsorbent may be used in a form of powder, particle, or block in which powder and particles are compressed. The adsorbent included in the multi-functional filter according to an embodiment of the present invention is not limited in the type and number, and may be modified according to a patient requiring the blood purifying treatment.
[0050] The housing port may be desirably provided in the first cap 40 or on the wall 11 at a side close to the first cap, and the third flow hole may be provided in the second filter container at a side close to the second cap, such that a fluid flowing into the adsorption section 12 through the housing port 13 can sufficiently contact the adsorbent inside the adsorption section 12 and then move to the second filter through the third flow hole 33 provided in the second filter container 31. In the case of flow in an opposite direction, the fluid in the second filter can flow into the adsorption section through the third flow hole and pass through the adsorption section, and then be discharged through the housing port.
[0051] In this case, the adsorbent must not move through the housing port 13, and the first flow hole 23 or the third flow hole 33, and various methods may be used to prevent the passing of adsorbents. For example, the housing port or the flow hole may be formed to have a size smaller than the adsorbent, or may be covered by a mesh filter with pores having a smaller size than the adsorbent. Also, the adsorbent may be covered by a mesh filter with pores having a smaller size than the adsorbent itself, or an adsorbent block in which powder or particles are compressed may be used. Alternatively, as shown in
[0052] Similarly, when two or more kinds of adsorbent are used, the adsorbents may be covered by a mesh filter with pores of a smaller size than the adsorbents in order to prevent the adsorbents from mixing. Also, an adsorbent block in which powder or particles are compressed may be used, or the separation wall 14 may be disposed between the adsorbents.
[0053] Hereinafter, the blood purifying apparatus 80 including the multi-functional filter 10 will be described in detail with reference to the accompanying drawings.
[0054] The multi-functional filter may or may not make direct contact with blood of a patient according to an exemplary embodiment of the blood purifying apparatus. When the multi-functional filter makes contact with blood, as shown in
[0055] As shown in
[0056] Remaining blood of the second filter flows into the first filter 20 through the flow partitioning connector 60 and hemodialysis takes place therein. In order to purify blood passing through a side of the first filter membrane or the inside of the hollow-fiber membrane in case that the first filter membrane includes the hollow-fiber membrane, the dialysate needs to be supplied through the other side of the membrane, or through the outside of the hollow-fiber membrane. In this case, the dialysate may be supplied to the first filter and then discharged therefrom through the first flow path 71 which connects the first flow hole and the first flow passage. Dialysate may be used in a form of a dialysate bag or manufactured by adjusting, e.g., pH and electrolyte concentration in the ultrapure water prepared through a water treatment system.
[0057] Blood is not limited to flow into the second cap, and may be configured to flow into the first cap such that hemodialysis occurs in the first filter and then plasma is separated in the second filter. Accordingly, blood of a patient can be efficiently purified by hemodialysis in the first filter, plasma separation in the second filter, and the adsorption at the adsorption section.
[0058] On the other hand, when the multi-functional filter does not make direct contact with blood of a patient, the blood purifying apparatus 80 according to an embodiment of the present invention may include a blood filter 83 in which mass transfer occurs between blood and dialysate, a blood circuit and a dialysate circuit with the blood filter 83 therebetween, as shown in
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[0060] The multi-functional filter 10 purifies used dialysate. As described above, dialysate may be manufactured by adjusting, e.g., pH and concentration of various electrolytes such as bicarbonate and sodium in the ultrapure water prepared through a water treatment system. Particularly, a plasma protein such as albumin may be added to the dialysate for liver dialysis because the albumin functions as a medium to remove protein-bound toxins existing in the blood or plasma. The multi-functional filter 10 rids used dialysate of toxins and waste products and adjusts concentration of electrolytes, thereby allowing the dialysate to be reused. The regenerated dialysate may be stored in a dialysate reservoir 84 and then supplied to the blood filter.
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[0062] Here, the amount of dialysate separated from the dialysate flowing into the multi-functional filter 10 and then supplied to the adsorption section is not limited to have a predetermined value, and may be determined in consideration of the amount of toxin that needs to be removed form the dialysate by the adsorption, the stability of dialysate flow passing thorough the multi-functional filter, etc. Thus, all of the used dialysate may flow into the adsorption section or all of the dialysate may be configured to pass through the second cap.
[0063] The dialysate having passed the second filter flows into the first filter 20 through the flow partitioning connector 60 and is purified again by the hemodialysis. Fresh dialysate may be supplied or discharged through the first flow path 71.
[0064] According to an exemplary embodiment of the present invention, the used dialysate is not limited to flow into the multi-functional filter 10 through the second cap 50, and may be configured to flow into the multi-functional filter through the first cap 40. In this case, a portion of dialysate flowing to the first cap is separated and supplied to the adsorption section 12. The dialysate which is not separated flows into the first filter and hemodialysis occurs therein. The dialysate moves to the second filter 30 where the dialysate having passed the adsorption section 12 is returned and mixed with the dialysate having passed the first filter, such that the dialysate of the second filter is supplied to the blood filter 83.
[0065] Alternatively, as shown in
[0066] Similarly, the amount of dialysate ultrafiltered in the second filter is not limited to have a predetermined value, but may be desirably determined in consideration of adsorption efficiency and flow stability. As such, the multi-functional filter 10 according to an embodiment of the present invention may have various configurations of dialysate flow in consideration of the purification efficiency and the stability in the flow of dialysate.
[0067] Various methods may be used for the pump 82 to transfer blood, plasma or dialysate. A roller pump having a roller which squeezes the tube 81 to transfer fluid therein and a roller driver rotating the roller is illustrated in
[0068] Accordingly, the multi-functional filter 10 according to an embodiment of the present invention can efficiently purify blood or used dialysate through hemodialysis in the first filter, plasma separation or ultrafiltration in the second filter, and adsorption in the adsorption section.
[0069] Here, the multi-functional filter 10 may be modified into a structure in which a flow path to supply dialysate to the first filter 20 and a flow path to discharge dialysate therefrom are separated from each other. When blood or used dialysate flow into a side of the first filter membrane 22, fresh dialysate may flow through the other side thereof to perform hemodialysis. In this case, the hemodialysis efficiency may be further improved by separating the inflow and the outflow of dialysate.
[0070] To this end, as shown in
[0071] In addition, as shown in
[0072] The second flow path 72 may be formed by the coupling of the flow partitioning connector 60, the first filter 20, and the first cap 40. As shown in
[0073] As such, dialysate is limited to flow into a predetermined space due to the coupling of the first cap 40, the first filter 20, and the flow partitioning connector 60, and as described above, various methods can be used to limit the flow into the predetermined space.
[0074] According to an exemplary flow inside the multi-functional filter 10 illustrated in
[0075] To this end, the third flow hole 33 may be provided in the second filter container at a place which is connected to the second cap 50 as shown in
[0076] As described above, the second filter 30 and the second cap 50 are coupled to each other by seating an end of the second filter container 31 in the second cap connecting portion 52. When the second filter and the second cap are coupled to each other, the fluid passing through the third flow hole 33 is limited to flow into the third flow passage 53 provided in the second cap 50. The third flow path 73 created due to the coupling of the second filter and the second cap can be formed under the same principle as that of forming the first flow path shown in
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[0078] In a similar manner with the first and second flow paths 71 and 72 separating inflow and outflow of dialysate through the first filter 20, the multi-functional filter 10 according to an embodiment of the present invention may be modified to include a fourth flow path, as well as the third flow path 73, so as to separate inflow and outflow of a fluid through the second filter.
[0079] In order to form the fourth flow path, as shown in
[0080] Also, as shown in
[0081] Also, the second cap 50 may additionally include the fourth flow passage 54 connecting a surface of the cap facing to the adsorption section and the outer surface thereof.
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[0084] In the exemplary flow shown in
[0085] The wall protruder may also be disposed in the first filter container 21, such that a greater change in the pressure of dialysate can be achieved when dialysate passes through the first filter, thereby improving hemodialysis efficiency by filtration.
[0086] Finally, the fourth flow path 74 is not limited to pass through the second cap. As shown in
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[0088] Here, aforementioned various methods can be used to prevent the adsorbent from passing through the housing port 13 or the flow partitioning connector hole 65.
[0089] Accordingly, exemplary embodiments of the present invention provide the multi-functional filter 10 in which dialysis, adsorption, and ultrafiltration or plasma separation are integrated to purify blood or used dialysate and the blood purifying apparatus which is configured to simplify the whole apparatus by facilitating the flow inside the filter, provide convenience in installation and use, and reduce the treatment cost.
[0090] The embodiment of the present invention described above and illustrated in the drawings should not be construed as limiting the technical spirit of the present invention. The scope of the present invention should be defined as disclosed in the accompanying claims, and those skilled in the art will appreciate that various modifications, additions and substitutions are possible without departing from the scope and spirit of the invention.