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US3896733A - Autotransfusion apparatus - Google Patents

Autotransfusion apparatus
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US3896733A
US3896733AUS407720AUS40772073AUS3896733AUS 3896733 AUS3896733 AUS 3896733AUS 407720 AUS407720 AUS 407720AUS 40772073 AUS40772073 AUS 40772073AUS 3896733 AUS3896733 AUS 3896733A
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chamber
fluid
flow
outlet
chambers
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David J Rosenberg
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Pall Corp
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Pall Corp
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Abstract

A continuous-flow two-reservoir fluid medicament- or blood-feed system is provided, for administration of such fluids to patients, composed of two reservoirs, each filled by way of check valves from a common supply, and with common connections to a vacuum line. Application of vacuum draws the fluid from the supply into one of the reservoirs, while fluid is led from the other reservoir to the patient. When the first reservoir is full and the other empty, fluid is led from the filled reservoir, and the other empty reservoir is now refilled, while fluid flow to the patient can be continuous.

Description

United States Patent 11 1 1111 3,896,733
Rosenberg 1 1 July 29, 1975 [54] AUTOTRANSFUSION APPARATUS 3507.395 4/1970 Bentley 128/214 R x 3585995 6/1971 Perkins et a1. 128/214 R [75] Inventor: David J. Rosenberg. (ilen (ove Primary Eraminer-Dalton L. Truluck [73] Assignee: Pall Corporation. Glen Cove, NY.
[22] Filed: Oct. 18, 1973 [57] ABSTRACT 12 1 App]. 407 720 A continuous-flow two-reservoir fluid medicamentor blood-feed system is provided. for administration of I 7 7 such fluids to patients, composed of two reservoirs. L-S. Cl. 1 R; l. 8/-76 each y of Check valves from a Common 51 11 01.... ..Ao)lmq05/00;A6lm;)1/(l)3 supply and with common connections to a vacuum 158] new of Search L line. Application of vacuum draws the fluid from the 278 supply into one of the reservoirs, while fluid is led from the other reservoir to the patient. When the first [56] References C'ted reservoir is full and the other empty, fluid is led from UNITED STATES P T T the filled reservoir, and the other empty reservoir is 3,19L6111) 6/1965 Everett 128/276 now refilled, while fluid flow to the patient can be 3216x418 11/1965 Scislowicz... 128/214 C continuous.
3.216.419 11/1965 scislowiczm v. 128/214C 3.492.991 2 1970 Dyer 128/214R 15 Clams, 4 Drawmg Flgures 3292, a r y a I. -vAcuuM SOURCE .1 l
FIG. 2
PATENTEU LZ HYS 3, 896,733
saw 1 BLOOD fouRcE PATENTEDJUL 2 9 i975 SHEET VACUUM :2. 5x1: f M/w/W EA H I. 2:
SEE FIG. 4
fusion Before Laparotomy, J.A.M.A.
AUTOTRANSFUSION APPARATUS During surgery, the surgeon has the choice of discarding the blood removed from the patient in the course of the operation and replacing it by donor blood, or of salvaging and reinfusing the patients own blood. The former technique is generally referred to as blood transfusion, although in fact the term is generic to both cases, while the salvaging and reuse of the patients own blood is referred to as autotransfusion.
In many cases, of course, autotransfusion is not applicable, and donated blood must be used. If available, however, autotransfusion has a number of advantages. The blood used needs no time-consuming typing or cross-matching. It is inexpensive, warm and fresh, and contains prime factors and bactericidal properties which are absent in banked donor blood. Moreover, blood lost in hemorrhages during surgery can also be collected and reinfused, which practically eliminates hemorrhaging as a dangerous problem in the course of surgery. In addition, there are virtually no fatal reactions, and nonfatal reactions are noted in only a small percentage of cases.
According to Dyer, (Amer. J. of Surgery, Vol. 112, Dec. 1966, 874-878), the intraoperative autotransfusion technique originated in 1874, when Highmore surmised, after seeing a patient become exsanguinated after a postpartum hemorrhage, that he might have been able to save the patient if he could have collected, defibrinated, and reinfused the blood.
In 1885, Duncan employed intraoperative autotransfusion on a patient with a traumatic leg amputation, and was successful. Later, techniques were developed using mopping, lading, bulb suction and line suction to collect the blood, with citrate or hemodilution as an anticoagulant, and cheesecloth and fine gauze as a filter. The blood was processed in rooms adjacent surgery, and returned for reinfusion. These techniques were remarkably successful, and interest in autotransfusion increased as a result during the period from 1914 to the early 1940s.
However, during the period since World War II, interest in autotransfusion decreased as the use of donor blood transfusions increased, possibly assisted by ready availability of donated blood.
In 1951, Stager [Blood Conservation by Autotransfusion, Arch, Surg. 63, 78 (1951)] and later, Weekes, Stone and McCann [A Plea for Autotransfusion, U. Obst. & Gynaec. Brit. Emp. 16, 7 (1960)] advocated a closed system of autotransfusion, using an improvised setup incorporating a conventional donor transfusion bottle into a tonsil suction system. Blood foaming, introduced by suction, was minimized by floating glass balls which served to catch fibrin. Although there was some hemolysis caused by vacuum, this was well tolerated in the tests carried out by Stager.
Ferrara [Autotransfusion, Its Use in Acute Hemothorax, South. M. J., 50, 516 (1957)] reported successful closed autotransfusion in acute hemothorax and hemoperitoneum via trocar thoracostomy and peritoneal tap. According to Lamm [Emergency Autotrans- 185, 1043 (1965)] autotransfusion is also being used in coronary sinus suction in cardiac bypass.
One of the difficulties in the application of autotransfusion techniques has been the lack of suitable apparatus. Dyer, in his article in the American Journal of Surgery referred to above, set forth the standards and criteria for autotransfusion apparatus:
Unquestionably, an available means of emergency, intraoperative autotransfusion for general use would be a timely asset to the patient, surgeon, and hospital. Such an apparatus must meet certain standards and criteria before it would be used.
An autotransfusion apparatus must simultaneously collect, measure, and process blood from a body cavity without disturbing the surgical field; it must work simply, rapidly, and safely to anticoagulate, defoam, defat, filter, and redeliver the blood. It must be capable of handling large as well as small volumes for the entire procedure.
The apparatus must be simple, safe, and inexpensive and should be compact, easily stored, and unbreakable. It must be able to be set up for use immediately, well in advance of procurement of available donor blood. It should cause no more hemolysis than is found when administering donor blood form a bank.
The apparatus should be a closed system, available in any operating room for use by regular operating room personnel."
In an endeavor to meet these requirements, Dyer proposed in the article and in U.S. Pat. No. 3,492,991, patented Feb. 3, 1970, an autotransfusion apparatus based on one or two chambers of a capacity from 600 to 1,000 ml. The chambers are cylindrical, with both ends closed off by rubber or plastic seals. The upper plug is provided with a minimum of three ports, a first to apply vacuum to the container, a second to provide an inlet for blood from the operative field or source of blood, and a third open to the atmosphere to permit emptying of the chamber of blood. To prevent foaming of the blood, the inner surface of the chamber is coated with an antifoaming agent, or the chamber can also be filled or partially filled with a coarse metal or plastic wool, surface-treated with silicone. A fine wire screen is placed over the exit port of each chamber to act as a filter to remove fibrin or other debris from the blood. Another filter is provided in blood-recipient apparatus connected to the outflow.
In the two-chamber system shown in FIG. 3 of the article and in FIG. 3 of the patent, a dual tubing system connects the two chambers to the vacuum line, the blood suction line, and the medication line, and surgical clamps or other conventional clamping means are used for closing the lines in a manner to permit the chambers to be used alternately, so that blood is delivered from one chamber while the other is being filled.
The two-chamber apparatus has certain advantages over the single chamber. In the single chamber, it is difficult to add measured amounts per unit volume of anticoagulant or other medicament to the blood. It is also difficult to measure the amount of blood delivered, except by shutting off the unit when it has been emptied, and then refilling it, which of course interrupts the flow of blood during the refilling.
In the two-chamber system, these problems are avoided since one chamber can be on-stream while the other is being filled, and the amount of anticoagulant is easily measured according to the volume of blood in the container before the chamber is put on-stream. However, the two-chamber system also presents problems. It is necessary to close off all lines not on-stream, to prevent cross-flow between the chambers during application of vacuum to one chamber. All of the valves are manually operated, and their operation has to be carefully synchronized, so as to maintain flow, and prevent flow of air to the patient when the chamber onstream becomes empty. The system thus requires continuous attention. During an operation, it is not always certain that attention can be given to the apparatus at the time when it is required, which is precisely when the chamber on-stream is empty, not sooner, and not later.
In accordance with the invention, an improved autotransfusion apparatus is provided, having two chambers, with simplified control of the cycling of the flow of fluid between the chambers, and safeguards to prevent cross-flow between the chambers, and passage of air to a patient from an empty chamber. As soon as one chamber is empty, influent fluid flow can be switched to the empty chamber, while the previously filled chamber is put on-stream, without danger of drawing air from the chamber that is filled into the chamber being filled. When this chamber on-stream is empty, the filled chamber is put on-stream, and so the chambers are cycled alternately, to maintain a continuous flow of blood from the apparatus. The apparatus also includes a device for controlling and inhibiting foaming during entry of fluid into each chamber.
The apparatus in accordance with the invention comprises, in combination, first and second fluid chambers each having a fluid inlet, a fluid outlet, a line connection to a source of vacuum, and a vent connection to atmospheric pressure; a check valve at the fluid inlet restricting flow through the inlet line to flow towards the chamber at fluid pressures within the chamber below the pressure in the inlet line; optionally, a check valve at the fluid outlet, restricting fluid flow through the outlet except at a higher downstream fluid pressure, a vent in each chamber that is open to the atmosphere at all times; and means for alternately opening and closing the vacuum line to each chamber, in synchronization, so that when the vacuum line is open to the first chamber it is closed to the second; and when the vacuum line is closedto the first chamber, it is open to the second.
The vent in each chamber is preferably provided with a flow-resistant filter having a pore size such that bacteria cannot pass through it, restricting flow into the chamber from the atmosphere so that a vacuum can be drawn on the chamber without closing the vent. Thus, the vent is open so the atmosphere at all times, and allows the chamber to reach equilibrium with atmospheric pressure when vacuum is not applied.
A suitable flow-resistant filter is glass cloth coated with polytetrafluoroethylene and adhered to a paper base, having a pore size of less than 3 microns and an open area less than but any porous material of comparable pore size and open area can be used.
The filter can be made hydrophobic or nonwetted by the liquid in the system so as not to accept blood or other medicament in its pores and thus block the passage of air therethrough.
The fluid is provided with a deflector directing inlet flow to impinge upon a wall of the chamber, so as to flow in a thin film down the wall, and afford an extended surface area for defoaming, thereby avoiding the need for a defoaming agent. The deflector can take the form of a turned end of the inlet tube, or the inlet tube outlet can be directed towards a wall of the chamher, and can be specially shaped to provide a wide thin film of fluid flowing along the wall.
The apparatus also includes, in each chamber, a float valve, which moves on and with the fluid level in the chamber, and when the fluid level sinks to the level of the valve seat at the bottom of the chamber, the float valve sinks into sealing engagement with the valve seat, and closes off the fluid outlet from the chamber. This prevents air from entering the outlet line leading to the patient.
The float valve can take the form of a disc, which is free in the chamber, and is light enough to float on the surface of the fluid. The disc can be provided with a resilient peripheral ring which seals flat on its lower surface against an annular valve seat surrounding the outlet. A suitable material is a polypropylene or other low density plastic with a rubber sealing ring about its periphery.
At the outlet from each chamber, below the valve seat, a coarse filter is provided, to prevent obstruction of the outlet line. A nonwoven plastic fiber cloth can be used, such as a bonded glass, nylon or polyester fiber mat.
The means for alternately closing and opening the vacuum lines to the chamber in synchronization can be manually operated, such as clamps or valves, but for fully automatic operation, such means is operated by a photoelectric level detector or a float in each chamber, actuating the means when the chamber is empty, to switch the cycle so that the filled chamber is put onstream and the empty chamber is put on the filling cycle.
A preferred embodiment of the invention is shown in the drawings, in which:
FIG. I is a top view of an autotransfusion apparatus.
FIG. 2 is a side view, partly in section, taken along theline 22 of FIG. 1.
FIG. 3 is another side view, partly in section, taken along theline 33 of the autotransfusion apparatus of FIG. 1.
FIG. 4 is a detailed view of the vent and filter combination encircled in dashed lines in FIG. 2.
The apparatus shown in the Figures comprises two thermoplastic blood reservoirs l and 2 of polycarbonate, each in upper 3, 4 and lower 5, 6 sections, fused together at theseam 7, 8. Each reservoir is connected to a source ofblood 9 by way of fluid lines ll, 12, 13, entering the top of blood reservoirs l, 2 atinlets 14, each of which is provided with and terminates in a deflector l8 directing blood flow against the wall of theupper sections 3, 4 of the reservoirs. The reservoirs are also connected at their tops atoutlets 19, 20 to a source ofvacuum 21 by way oflines 22, 23, 24, with two clamps l5, l7 controlling the application of vacuum to one reservoir at a time; or completely closing off both reservoirs from the vacuum, as desired. One three-way clamp can also be used instead ofclamps 15, 17. The clamps are arranged to be operated manually, but operation can also be controlled by an automatic mechanism.
Each reservoir at the top is further provided with avent 27, 28 which is in the form of a male Luer tip, and is open to the atmosphere. The vents are each provided with afilter 29, 30 (best seen in FIG. 4) which restricts flow into the reservoirs from the open atmosphere, to permit maintaining a partial vacuum in the reservoir. The vents also allow the reservoirs to reach atmospheric pressure when vacuum is not applied, such as when the reservoir is discharging blood or other fluid to the patient.
Also provided at the top of each reservoir is amedicament inlet 31, 32, with a female Luer socket for addition of anticoagulant or other composition to the contents of the reservoir. Each inlet is closed bycap 33, 34, when not in use.
There is also anintegral eye 35, 36 on each reservoir, which receives thehooks 37, 38 for suspending the reservoirs from anIV stand 39.
Within each reservoir is afloat valve 40, 41, which floats freely on the surface of the fluid in the reservoir. At the bottom of each reservoir is avalve seat 42, 43 and about the external periphery of the float valve, which is a disc of polypropylene or other low density plastic, is a sealingring 44, 45 of resilient material such as rubber. This seals at its lower surface against thevalve seat 42, 43, to close off theoutlets 46, 47. Across the outlet line below the valve seat is afilter 48, 49, which is supported on a recess 51, 52 and on a plurality of ribs 53, 54 projecting upwardly from the bottom wall oflower section 5, 6 and radially about theoutlets 46, 47. Thefilters 48, 49 are nonwoven mats of polyester fiber.
Extending from theoutlets 46, 47 areoutlet lines 55, 56 each of which is provided with a manually operatedclamp 57, 58, but check valves such as duckbill valves can be provided instead. A three-way clamp can also be used, and can be automatically operated, if desired. Thelines 55, 56 join intoline 59, which leads to afurther filter 61, such as a filter for microemboli, in the case of blood. From the filter, theline 62 leads to the patient, by way of standard administration set.
Operation of the device is as follows. Let it be supposed that reservoir 1 is empty, andreservoir 2 filled. (In the Figures, reservoir 1 is being filled, andreservoir 2 is being emptied, so that the apparatus as shown isshortly beyond this point in time.) Anticoagulant first is added through theinlet 31 into reservoir 1, and thecap 33 is replaced. Then, clamp is opened and clamp 17 is closed, so that vacuum is applied to reservoir 1 but not toreservoir 2. Clamp S7 is closed, whileclamp 58 is opened, so that under a head of pressure of blood inreservoir 2, the blood flows by gravity from the bottom of the reservoir throughfilter 49 and outlet 47 vialines 56, 59 to thefilter 61, and then throughline 62, to the patient or other reference point to which blood is to be supplied. Thevent 28 is always open, permitting such flow freely; and since the vent is protected by the bacteria filter 30, the interior of the reservoir 2' remains sterile.
Meanwhile, vacuum from thesource 21 is applied to reservoir 1 so that blood is drawn from thesupply 9 throughlines 11 and 12, andduckbill valve 16 anddeflector 18 into the reservoir. The blood is projected against the wall .of theupper section 3, and courses down the wall in a thin film allowing the foam to break and the air to escape. The filling operation continues until the reservoir contains one unit of blood. As the blood level rises in the reservoir, thefloat valve 40, which has already been dislodged by .the application of vacuum, rises, and opens theoutlet 46, but theclamp 57 is closed, so flow from the reservoir cannot begin. Then, theclamp 15 is closed so as to close off the application of vacuum to the reservoir. Ifreservoir 2 is still not empty, theclamp 57 can remain closed until it is.
Whenreservoir 2 is empty, theclamp 17 is opened so as to apply vacuum toreservoir 2 and theclamp 57 is opened so that the feed of blood begins from reservoir 1.Clamp 58 is closed. Now blood is drawn from the 5supply 9 throughlines 11 and 13 intoreservoir 2. This l0 on-stream as before, and the cycle is then repeated.
Throughtout the cycle, however, blood has been continuously supplied to filter 61 and lines 62.
If desired, by automatic operation of theclamps 15, 17, 57 and 58, the device can be made entirely auto- 15 matic with a continuous blood flow to the patient.
The device shown is most useful for the continuous supply of blood either in transfusion or in operations in which blood circulation systems are used. The device can also be employed for the administration of any kind of medicament to a patient from a source of supply,
and ensures continuous administration of the medicament while the supply remains filled.
If desired, thefilter 61 inline 59 can be replaced by two filters which are placed inlines 55, 56, before the point ofjunction withline 59. In this event, theclamps 57, 58 would follow the filters, rather than precede it, as in the device shown.
While the check valves shown in the drawing are of the duckbill type, any type of check valve can be used,
including unbrella valves, flap valves, and poppet valves.
Having regard to the foregoing disclosure, the following is claimed as the inventive and patentable embodiments thereofr- -1. An autotransfusion apparatus shaving two chambers with simplified control of the cycling of the flow of fluid between the chambers and safeguards to prevent cross-flow between the chambers and passage of air to a patient from an empty chamber, comprising, in combination, first and second fluid chambers each having a fluid inlet, a fluid outlet, a line connection to.a source of vacuum, and a vent connection to atmospheric pressure; the vent being provided with a flowresistant filter having a pore size such that bacteria can- -not pass through it, and restricting flow into the chamber from the atmosphere so that a vacuum can be drawn on the chamber without closing the vent, while allowing the chamber to reach equilibrium with atmospheric pressure when vacuum is not applied; the filter not being wetted by the liquid in the system so as not to accept blood or other medicament in its pores and thus block the passage of air therethrough; a check valve at the fluid inlet restricting flow through the inlet line to flow towards the chamber at fluid pressures within the chamber below the pressure in the inlet line; and means for alternately opening and closing the vacuum line to each chamber, so that when the vacuum line is open to the first chamber it is closed to the second; and when the vacuum line is closed to the first chamber, it is open to the second.
2. An autotransfusion apparatus according to claim 1, having a check valve at the fluid outlet, restricting fluid flow through the outlet except at a higher up- 65 stream fluid pressure.
3. An autotransfusion apparatus according to claim 1, having a vent in each chamber that is open to the atmosphere at all times.
4. An autotransfusion apparatus according to claim 1, in which the flow-resistant filter has a pore size of less than 3 microns and an open area less than 5%.
5. An autotransfusion apparatus according to claim 1, having two chambers with simplified control of the foaming of fluid entering the chambers in which the fluid inlet directs flow to impinge upon a wall of the chamber; so as to flow in a thin film down the wall, and afford an extended surface area for defoaming.
6. An autotransfusion apparatus according toclaim 5, having a deflector at the inlet end of the fluid inlet.
7. An autotransfusion apparatus according to claim 6 in which the deflector is a turned end of the inlet tube.
8. An autotransfusion apparatus according toclaim 5 in which the inlet tube outlet is directed towards a wall of the chamber.
9. An autotransfusion apparatus according to claim 1, having two chambers with simplified prevention of the passage of air to a patient from an empty chamber, comprising, a float valve in each chamber, moving on and with the fluid level in the chamber, and a valve seat at the bottom of the chamber, so that when the fluid level sinks to the level of the valve seat, the float valve sinks into sealing engagement with the valve seat, and closes off the fluid outlet from the chamber, preventing air from entering the outlet.
10. An autotransfusion apparatus according toclaim 9 in which the float valve is a disc, which is free in the chamber, and is light enough to float on the surface of the fluid, and is provided with a resilient peripheral ring which seals against a valve seat on its lower surface, and an annular valve seat surrounding the outlet, against which the ring seals.
11. An autotransfusion apparatus according toclaim 9 in which, at the outlet from each chamber, below the valve seat, a coarse filter is provided, to prevent obstruction of the outlet line.
12. An autotransfusion apparatus according to claim 11 in which the coarse filter is a nonwoven plastic fiber cloth.
[3. An autotransfusion apparatus having two chambers with simplified control of the cycling of the flow of fluid between the chambers and safeguards to prevent cross-flow between the chambers and passage of air to a patient from an empty chamber, comprising, in combination, first and second fluid chambers each having a fluid inlet, a fluid outlet, a line connection to a source of vacuum, and a vent connection to atmospheric pressure provided with a flow-resistant filter having a pore size such that bacteria cannot pass through it; a check valve at the fluid inlet in each chamber, restricting flow through the inlet line to flow towards the chamber at fluid pressures within the chamber below the pressure in the inlet line; the fluid inlet directing inlet flow to impringe upon a wall of the chamber, so as to flow in a thin film down the wall, and afford an extended surface area for defoaming; a float valve in each chamber, moving on and with the fluid level in the chamber, and a valve seat at the bottom of the chamber, so that when the fluid level sinks to the level of the valve seat, the float valve sinks into sealing engagement with the valve seat, and closes off the fluid outlet from the chamber, preventing air from entering the outlet; and means for alternately opening and closing the vacuum line to each chamber, in synchronization, so that when the vacuum line is open to the first chamber it is closed to the second; and when the vacuum line is closed to the first chamber, it is open to the second.
14. An autotransfusion apparatus according toclaim 13, in which each chamber has a check valve at the fluid outlet, restricting fluid flow through the outlet except at a higher upstream fluid pressure.
15. An autotransfusion apparatus according toclaim 13, in which each chamber and float valve are shaped so as to guide the float valve into sealing engagement with the valve seat.

Claims (15)

1. An autotransfusion apparatus shaving two chambers with simplified control of the cycling of the flow of fluid between the chambers and safeguards to prevent cross-flow between the chambers and passage of air to a patient from an empty chamber, comprising, in combination, first and second fluid chambers each having a fluid inlet, a fluid outlet, a line connection to a source of vacuum, and a vent connection to atmospheric pressure; the vent being provided with a flow-resistant filter having a pore size such that bacteria cannot pass through it, and restricting flow into the chamber from the atmosphere so that a vacuum can be drawn on the chamber without closing the vent, while allowing the chamber to reach equilibrium with atmospheric pressure when vacuum is not applied; the filter not being wetted by the liquid in the system so as not to accept blood or other medicament in its pores and thus block the passage of air therethrough; a check valve at the fluid inlet restricting flow through the inlet line to flow towards the chamber at fluid pressures within the chamber below the pressure in the inlet line; and means for alternately opening and closing the vacuum line to each chamber, so that when the vacuum line is open to the first chamber it is closed to the second; and when the vacuum line is closed to the first chamber, it is open to the second.
13. An autotransfusion apparatus having two chambers with simplified control of the cycling of the flow of fluid between the chambers and safeguards to prevent cross-flow between the chambers and passage of air to a patient from an empty chamber, comprising, in combination, first and second fluid chambers each having a fluid inlet, a fluid outlet, a line connection to a source of vacuum, and a vent connection to atmospheric pressure provided with a flow-resistant filter having a pore size such that bacteria cannot pass through it; a check valve at the fluid inlet in each chamber, restricting flow through the inlet line to flow towards the chamber at fluid pressures within the chamber below the pressure in the inlet line; the fluid inlet directing inlet flow to impringe upon a wall of the chamber, so as to flow in a thin film down the wall, and afford an extended surface area for defoaming; a float valve in each chamber, moving on and with the fluid level in the chamber, and a valve seat at the bottom of the chamber, so that when the fluid level sinks to the level of the valve seat, the float valve sinks into sealing engagement with the valve seat, and closes off the fluid outlet from the chamber, preventing air from entering the outlet; and means for alternately opening and closing the vacuum line to each chamber, in synchronization, so that when the vacuum line is open to the first chamber it is closed to the second; and when the vacuum line is closed to the first chamber, it is open to the second.
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Cited By (95)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3993067A (en)*1975-04-241976-11-23Sherwood Medical Industries Inc.Autotransfusion device
US4006745A (en)*1975-05-221977-02-08Sorenson Research Co., Inc.Autologous transfusion system and method
USD243458S (en)1976-03-181977-02-22Pall CorporationFilter
US4033345A (en)*1975-11-131977-07-05Sorenson Research Co., Inc.Autologous transfusion filter system and method
US4046144A (en)*1975-09-181977-09-06Mcfarlane Richard HCatheter placement assembly
US4047526A (en)*1975-05-221977-09-13Sorenson Research Co., Inc.Autologous blood system and method
USD246376S (en)*1976-10-181977-11-15Pall CorporationFilter
US4157965A (en)*1975-01-201979-06-12Bentley Laboratories, Inc.Blood treating device
US4200095A (en)*1977-08-151980-04-29Millipore CorporationArrangement for intravenous administration or the like
US4207871A (en)*1978-06-071980-06-17Imed CorporationSystem for controlling the flow of intravenous fluids to a patient
US4228798A (en)*1979-05-011980-10-21Deaton David WSuction receptacle with hygroscopic filter
US4253967A (en)*1975-01-201981-03-03Bentley Laboratories, Inc.Blood treating method
US4259952A (en)*1978-06-221981-04-07Avoy Donald RBlood diluting method and apparatus
US4332247A (en)*1978-08-301982-06-01Baxter Travenol Laboratories, Inc.Administration set including burette with pivotable air valve
US4333454A (en)*1980-01-141982-06-08Hargest Iii Thomas SAutomatic tubular feeding apparatus and method
US4428743A (en)1981-02-161984-01-31Gambro Dialysatoren KgFlow-through chamber
US4432760A (en)*1980-07-211984-02-21Baxter Travenol Laboratories, Inc.Administration set including burette with pivotable air valve
US4435170A (en)1981-06-151984-03-06Solco Basel AgAssembly for receiving and discharging a collection of blood
EP0116352A1 (en)*1983-02-101984-08-22Dieter Dr. med. RühlandAutotransfusion apparatus
US4559034A (en)*1981-04-161985-12-17Kawasumi Laboratories, Inc.Line for use in body fluid treatment
US4631050A (en)*1985-09-241986-12-23Reed Charles CAutotransfusion system and method
US4696670A (en)*1984-11-131987-09-29Kanegafuchi Kagaku Kogyo Kabushiki KaishaMethod and apparatus for treating blood constituents
US4747826A (en)*1983-06-081988-05-31University Of PittsburghRapid venous infusion system
US4804363A (en)*1986-07-161989-02-14Autologous Blood CorporationApparatus and method for storing and processing blood
WO1989005666A1 (en)*1987-12-141989-06-29White Frederick RPower infuser
US4846800A (en)*1987-10-141989-07-11Kenneth OurielTwo chambered autotransfuser device and method of use
US4886487A (en)*1985-11-181989-12-12Gambro AbAutotransfusion apparatus
US4923438A (en)*1988-07-181990-05-08Pfizer Hospital Products Group, Inc.Blood recovery system and method
US4994055A (en)*1989-03-291991-02-19Pfizer Hospital Products Group, Inc.Fluid flow control apparatus
US4994022A (en)*1989-02-021991-02-19Stryker CorporationBlood conservation system
US5024613A (en)*1988-07-181991-06-18Pfizer Hospital Products Group, Inc.Blood recovery system and method
WO1991013677A1 (en)*1990-03-071991-09-19Shettigar U RamakrishnaAutologous blood recovery membrane system and method
USRE33924E (en)*1986-07-161992-05-12Autologous Blood Corp.Apparatus and method for storing and processing blood
US5115682A (en)*1990-05-211992-05-26Feiler Ernest MCoronary artery graft flow-meter
US5149325A (en)*1991-02-251992-09-22Baxter International Inc.Vacuum system for auto transfusion device
US5223228A (en)*1991-02-251993-06-29Baxter International Inc.Tray for autotransfusion module
USD339194S (en)1991-02-251993-09-07Baxter International Inc.Pressure control module
US5382244A (en)*1991-02-251995-01-17Baxter International Inc.Stand alone control module
US5423738A (en)*1992-03-131995-06-13Robinson; Thomas C.Blood pumping and processing system
US5423346A (en)*1994-03-031995-06-13Ivac CorporationFluid container shut off valve
WO1996024431A1 (en)*1995-02-101996-08-15E.I. Du Pont De Nemours And CompanyGas permeable fabric
WO1996024397A3 (en)*1995-02-081996-10-10Medtronic IncPerfusion system
US5645540A (en)*1994-10-111997-07-08Stryker CorporationBlood conservation system
US5876611A (en)*1997-06-161999-03-02Shettigar; U. RamakrishnaIntraoperative blood salvaging system and method
US5925025A (en)*1996-06-051999-07-20Tyco Group S.A.R.L.Filtration valve cap with reflux clearing feature and related method of use thereof
US6017493A (en)*1997-09-262000-01-25Baxter International Inc.Vacuum-assisted venous drainage reservoir for CPB systems
US6099493A (en)*1997-05-062000-08-08Sherwood Services, AgContinuous autotransfusion filtration system
US6217544B1 (en)1997-05-302001-04-17Sherwood Services, AgFiltration valve cap with reflux clearing feature and related method of use thereof
NL1016515C2 (en)*2000-10-312002-05-07Straten Beheer B V VanWound drainage and retransfusion device, has retransfusion hose, filter, dosing device and closure device stored in space beneath collection vessel
US20030034313A1 (en)*2001-08-162003-02-20Mooneyham Phillip D.Engine coolant filter apparatus and method
US20030230540A1 (en)*2001-08-162003-12-18Mooneyham Phillip D.Engine coolant filter apparatus and method
US20060067857A1 (en)*1996-09-242006-03-30Samolyk Keith AMethod of recovering blood from an extracorporeal circuit
WO2006041406A1 (en)*2004-10-142006-04-20Astra Tech AbMethod and apparatus for autotransfusion
US7048727B1 (en)*2003-04-182006-05-23Gerald MossContinuous feeding and decompressing device and method
US20060270970A1 (en)*2003-04-182006-11-30Gerald MossMethod and apparatus for suctioning and refeeding gastric juices
US20060273049A1 (en)*2002-05-242006-12-07Leach Michael DMethod and apparatus for separating and concentrating a component from a multi-component material including macroparticles
US20060278588A1 (en)*2002-05-242006-12-14Woodell-May Jennifer EApparatus and method for separating and concentrating fluids containing multiple components
US20070075016A1 (en)*2005-08-232007-04-05Biomet Manufacturing Corp.Method and apparatus for collecting biological materials
US20070208321A1 (en)*2005-08-232007-09-06Biomet Manufacturing Corp.Method And Apparatus For Collecting Biological Materials
US20080045877A1 (en)*2006-08-152008-02-21G&L Consulting, LlcBlood exchange dialysis method and apparatus
US7374678B2 (en)2002-05-242008-05-20Biomet Biologics, Inc.Apparatus and method for separating and concentrating fluids containing multiple components
US7470371B2 (en)2002-05-032008-12-30Hanuman LlcMethods and apparatus for isolating platelets from blood
US7780860B2 (en)2002-05-242010-08-24Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US7806276B2 (en)2007-04-122010-10-05Hanuman, LlcBuoy suspension fractionation system
US7845499B2 (en)2002-05-242010-12-07Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US7992725B2 (en)2002-05-032011-08-09Biomet Biologics, LlcBuoy suspension fractionation system
US8313954B2 (en)2009-04-032012-11-20Biomet Biologics, LlcAll-in-one means of separating blood components
US8328024B2 (en)2007-04-122012-12-11Hanuman, LlcBuoy suspension fractionation system
US8337711B2 (en)2008-02-292012-12-25Biomet Biologics, LlcSystem and process for separating a material
US8567609B2 (en)2006-05-252013-10-29Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US8591391B2 (en)2010-04-122013-11-26Biomet Biologics, LlcMethod and apparatus for separating a material
US8783470B2 (en)2009-03-062014-07-22Biomet Biologics, LlcMethod and apparatus for producing autologous thrombin
US8945376B1 (en)2013-08-022015-02-03All Cell Recovery LLCSystems, methods, and apparatus for resuspending cells in solution
US9011800B2 (en)2009-07-162015-04-21Biomet Biologics, LlcMethod and apparatus for separating biological materials
EP2959927A1 (en)2014-06-262015-12-30Medela Holding AGDevice for the extraction and forwarding of blood
US20160051747A1 (en)*2014-08-192016-02-25Fenwal, Inc.Systems and methods for automated recovery of white blood cells after producing a leuko-reduced blood product
US9452021B2 (en)2013-08-022016-09-27All Cell Recovery LLCSystems, methods, and apparatus for resuspending cells from surgical laundry
US9556243B2 (en)2013-03-152017-01-31Biomet Biologies, LLCMethods for making cytokine compositions from tissues using non-centrifugal methods
US20170067807A1 (en)*2014-02-282017-03-09Lockheed Martin CorporationSeparation and assay of target entities using filtration membranes comprising a perforated two-dimensional material
US9642956B2 (en)2012-08-272017-05-09Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US9701728B2 (en)2008-02-272017-07-11Biomet Biologics, LlcMethods and compositions for delivering interleukin-1 receptor antagonist
US9895418B2 (en)2013-03-152018-02-20Biomet Biologics, LlcTreatment of peripheral vascular disease using protein solutions
US9950035B2 (en)2013-03-152018-04-24Biomet Biologics, LlcMethods and non-immunogenic compositions for treating inflammatory disorders
US10143725B2 (en)2013-03-152018-12-04Biomet Biologics, LlcTreatment of pain using protein solutions
US10159980B2 (en)2013-08-022018-12-25All Cell Recovery LLCSystems and methods for recovering blood cells, in a controlled environment, for storage
US10418143B2 (en)2015-08-052019-09-17Lockheed Martin CorporationPerforatable sheets of graphene-based material
US10471199B2 (en)2013-06-212019-11-12Lockheed Martin CorporationGraphene-based filter for isolating a substance from blood
US10500546B2 (en)2014-01-312019-12-10Lockheed Martin CorporationProcesses for forming composite structures with a two-dimensional material using a porous, non-sacrificial supporting layer
US20200001022A1 (en)*2016-11-302020-01-02Belmont Instrument, LlcRapid infuser with advantageous flow path for blood and fluid warming, and associated components, systems, and methods
US10576130B2 (en)2013-03-152020-03-03Biomet Manufacturing, LlcTreatment of collagen defects using protein solutions
US10653824B2 (en)2012-05-252020-05-19Lockheed Martin CorporationTwo-dimensional materials and uses thereof
US10696554B2 (en)2015-08-062020-06-30Lockheed Martin CorporationNanoparticle modification and perforation of graphene
US10980919B2 (en)2016-04-142021-04-20Lockheed Martin CorporationMethods for in vivo and in vitro use of graphene and other two-dimensional materials
US10981120B2 (en)2016-04-142021-04-20Lockheed Martin CorporationSelective interfacial mitigation of graphene defects
US11662034B2 (en)2019-07-242023-05-30Quest Medical, Inc.Filtered vacuum relief vent valve

Citations (6)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3191600A (en)*1962-05-041965-06-29Hazen F EverettBlood suction apparatus
US3216419A (en)*1963-10-171965-11-09Abbott LabApparatus for administering a parenteral solution provided with a diaphragm float valve
US3216418A (en)*1962-06-011965-11-09Abbott LabApparatus for administering parenteral solutions
US3492991A (en)*1967-02-231970-02-03Richard H Dyer JrAutotransfusion apparatus
US3507395A (en)*1967-12-011970-04-21Bentley LabCardiotomy reservoir
US3585995A (en)*1968-09-031971-06-22George D PerkinsAutotransfusion apparatus

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US3191600A (en)*1962-05-041965-06-29Hazen F EverettBlood suction apparatus
US3216418A (en)*1962-06-011965-11-09Abbott LabApparatus for administering parenteral solutions
US3216419A (en)*1963-10-171965-11-09Abbott LabApparatus for administering a parenteral solution provided with a diaphragm float valve
US3492991A (en)*1967-02-231970-02-03Richard H Dyer JrAutotransfusion apparatus
US3507395A (en)*1967-12-011970-04-21Bentley LabCardiotomy reservoir
US3585995A (en)*1968-09-031971-06-22George D PerkinsAutotransfusion apparatus

Cited By (155)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US4253967A (en)*1975-01-201981-03-03Bentley Laboratories, Inc.Blood treating method
US4157965A (en)*1975-01-201979-06-12Bentley Laboratories, Inc.Blood treating device
US3993067A (en)*1975-04-241976-11-23Sherwood Medical Industries Inc.Autotransfusion device
US4006745A (en)*1975-05-221977-02-08Sorenson Research Co., Inc.Autologous transfusion system and method
US4047526A (en)*1975-05-221977-09-13Sorenson Research Co., Inc.Autologous blood system and method
US4046144A (en)*1975-09-181977-09-06Mcfarlane Richard HCatheter placement assembly
US4033345A (en)*1975-11-131977-07-05Sorenson Research Co., Inc.Autologous transfusion filter system and method
USD243458S (en)1976-03-181977-02-22Pall CorporationFilter
USD246376S (en)*1976-10-181977-11-15Pall CorporationFilter
US4200095A (en)*1977-08-151980-04-29Millipore CorporationArrangement for intravenous administration or the like
US4207871A (en)*1978-06-071980-06-17Imed CorporationSystem for controlling the flow of intravenous fluids to a patient
US4259952A (en)*1978-06-221981-04-07Avoy Donald RBlood diluting method and apparatus
US4332247A (en)*1978-08-301982-06-01Baxter Travenol Laboratories, Inc.Administration set including burette with pivotable air valve
US4228798A (en)*1979-05-011980-10-21Deaton David WSuction receptacle with hygroscopic filter
US4333454A (en)*1980-01-141982-06-08Hargest Iii Thomas SAutomatic tubular feeding apparatus and method
US4432760A (en)*1980-07-211984-02-21Baxter Travenol Laboratories, Inc.Administration set including burette with pivotable air valve
US4428743A (en)1981-02-161984-01-31Gambro Dialysatoren KgFlow-through chamber
US4559034A (en)*1981-04-161985-12-17Kawasumi Laboratories, Inc.Line for use in body fluid treatment
US4435170A (en)1981-06-151984-03-06Solco Basel AgAssembly for receiving and discharging a collection of blood
EP0345831A1 (en)*1983-02-101989-12-13Dieter Dr. med. RühlandMethod and apparatus for autotransfusion
EP0116352A1 (en)*1983-02-101984-08-22Dieter Dr. med. RühlandAutotransfusion apparatus
EP0454178A1 (en)*1983-02-101991-10-30Dieter Dr. med. RühlandAutotransfusion apparatus
US4747826A (en)*1983-06-081988-05-31University Of PittsburghRapid venous infusion system
US4696670A (en)*1984-11-131987-09-29Kanegafuchi Kagaku Kogyo Kabushiki KaishaMethod and apparatus for treating blood constituents
US4631050A (en)*1985-09-241986-12-23Reed Charles CAutotransfusion system and method
US4886487A (en)*1985-11-181989-12-12Gambro AbAutotransfusion apparatus
US4804363A (en)*1986-07-161989-02-14Autologous Blood CorporationApparatus and method for storing and processing blood
USRE33924E (en)*1986-07-161992-05-12Autologous Blood Corp.Apparatus and method for storing and processing blood
US4846800A (en)*1987-10-141989-07-11Kenneth OurielTwo chambered autotransfuser device and method of use
AU619491B2 (en)*1987-10-141992-01-30Biosurge, Inc.Two chambered autotransfuser device and method of use
EP0312101A3 (en)*1987-10-141991-06-05Biosurge, Inc.Two chambered autotransfuser device
US4874359A (en)*1987-12-141989-10-17White Frederick RPower infuser
WO1989005666A1 (en)*1987-12-141989-06-29White Frederick RPower infuser
US5024613A (en)*1988-07-181991-06-18Pfizer Hospital Products Group, Inc.Blood recovery system and method
US4923438A (en)*1988-07-181990-05-08Pfizer Hospital Products Group, Inc.Blood recovery system and method
US4994022A (en)*1989-02-021991-02-19Stryker CorporationBlood conservation system
AU623237B2 (en)*1989-03-291992-05-07Pfizer Hospital Products Group, Inc.Fluid flow control apparatus
US4994055A (en)*1989-03-291991-02-19Pfizer Hospital Products Group, Inc.Fluid flow control apparatus
JP3012689B2 (en)1990-03-072000-02-28旭メディカル株式会社 Autologous blood collection membrane system and method
US5055198A (en)*1990-03-071991-10-08Shettigar U RamakrishnaAutologous blood recovery membrane system and method
WO1991013677A1 (en)*1990-03-071991-09-19Shettigar U RamakrishnaAutologous blood recovery membrane system and method
US5115682A (en)*1990-05-211992-05-26Feiler Ernest MCoronary artery graft flow-meter
US5223228A (en)*1991-02-251993-06-29Baxter International Inc.Tray for autotransfusion module
USD339194S (en)1991-02-251993-09-07Baxter International Inc.Pressure control module
US5382244A (en)*1991-02-251995-01-17Baxter International Inc.Stand alone control module
US5149325A (en)*1991-02-251992-09-22Baxter International Inc.Vacuum system for auto transfusion device
US5423738A (en)*1992-03-131995-06-13Robinson; Thomas C.Blood pumping and processing system
US5423346A (en)*1994-03-031995-06-13Ivac CorporationFluid container shut off valve
US5830198A (en)*1994-10-111998-11-03Stryker CorporationBlood conservation system
US5645540A (en)*1994-10-111997-07-08Stryker CorporationBlood conservation system
WO1996024397A3 (en)*1995-02-081996-10-10Medtronic IncPerfusion system
US5823986A (en)*1995-02-081998-10-20Medtronic, Inc.Perfusion system
AU697548B2 (en)*1995-02-101998-10-08E.I. Du Pont De Nemours And CompanyGas permeable fabric
WO1996024431A1 (en)*1995-02-101996-08-15E.I. Du Pont De Nemours And CompanyGas permeable fabric
US6558341B1 (en)1996-05-072003-05-06Sherwood Services, AgContinuous autotransfusion filtration system
US5925025A (en)*1996-06-051999-07-20Tyco Group S.A.R.L.Filtration valve cap with reflux clearing feature and related method of use thereof
US20060067857A1 (en)*1996-09-242006-03-30Samolyk Keith AMethod of recovering blood from an extracorporeal circuit
US7402278B2 (en)*1996-09-242008-07-22Samolyk Keith AMethod of recovering blood from an extracorporeal circuit
US6099493A (en)*1997-05-062000-08-08Sherwood Services, AgContinuous autotransfusion filtration system
US6217544B1 (en)1997-05-302001-04-17Sherwood Services, AgFiltration valve cap with reflux clearing feature and related method of use thereof
US5876611A (en)*1997-06-161999-03-02Shettigar; U. RamakrishnaIntraoperative blood salvaging system and method
US6017493A (en)*1997-09-262000-01-25Baxter International Inc.Vacuum-assisted venous drainage reservoir for CPB systems
US6537495B1 (en)1997-09-262003-03-25Edwards Lifesciences LlcVacuum-assisted venous drainage system with rigid housing and flexible reservoir
NL1016515C2 (en)*2000-10-312002-05-07Straten Beheer B V VanWound drainage and retransfusion device, has retransfusion hose, filter, dosing device and closure device stored in space beneath collection vessel
US20030034313A1 (en)*2001-08-162003-02-20Mooneyham Phillip D.Engine coolant filter apparatus and method
US6582613B2 (en)*2001-08-162003-06-24Mooneyham Phillip D.Engine coolant filter apparatus and method
US20030230540A1 (en)*2001-08-162003-12-18Mooneyham Phillip D.Engine coolant filter apparatus and method
US7470371B2 (en)2002-05-032008-12-30Hanuman LlcMethods and apparatus for isolating platelets from blood
US7837884B2 (en)2002-05-032010-11-23Hanuman, LlcMethods and apparatus for isolating platelets from blood
US8950586B2 (en)2002-05-032015-02-10Hanuman LlcMethods and apparatus for isolating platelets from blood
US8187477B2 (en)2002-05-032012-05-29Hanuman, LlcMethods and apparatus for isolating platelets from blood
US7992725B2 (en)2002-05-032011-08-09Biomet Biologics, LlcBuoy suspension fractionation system
US8603346B2 (en)2002-05-242013-12-10Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US8048321B2 (en)2002-05-242011-11-01Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US9897589B2 (en)2002-05-242018-02-20Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US7374678B2 (en)2002-05-242008-05-20Biomet Biologics, Inc.Apparatus and method for separating and concentrating fluids containing multiple components
US9114334B2 (en)2002-05-242015-08-25Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US10183042B2 (en)2002-05-242019-01-22Biomet Manufacturing, LlcApparatus and method for separating and concentrating fluids containing multiple components
US20060273049A1 (en)*2002-05-242006-12-07Leach Michael DMethod and apparatus for separating and concentrating a component from a multi-component material including macroparticles
US7780860B2 (en)2002-05-242010-08-24Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US10393728B2 (en)2002-05-242019-08-27Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US8808551B2 (en)2002-05-242014-08-19Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US7832566B2 (en)2002-05-242010-11-16Biomet Biologics, LlcMethod and apparatus for separating and concentrating a component from a multi-component material including macroparticles
US7914689B2 (en)2002-05-242011-03-29Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US7845499B2 (en)2002-05-242010-12-07Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US20060278588A1 (en)*2002-05-242006-12-14Woodell-May Jennifer EApparatus and method for separating and concentrating fluids containing multiple components
US8163184B2 (en)2002-05-242012-04-24Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US8062534B2 (en)2002-05-242011-11-22Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US7048727B1 (en)*2003-04-182006-05-23Gerald MossContinuous feeding and decompressing device and method
US20060270970A1 (en)*2003-04-182006-11-30Gerald MossMethod and apparatus for suctioning and refeeding gastric juices
US20080015485A1 (en)*2004-10-142008-01-17Astra Tech AbMethod and Apparatus For Autotransfusion
US8241264B2 (en)2004-10-142012-08-14Astra Tech AbMethod and apparatus for autotransfusion
WO2006041406A1 (en)*2004-10-142006-04-20Astra Tech AbMethod and apparatus for autotransfusion
US20100255977A1 (en)*2005-08-232010-10-07Biomet Manufacturing Corp.Method and Apparatus for Collecting Biological Materials
US7771590B2 (en)2005-08-232010-08-10Biomet Manufacturing Corp.Method and apparatus for collecting biological materials
US8236258B2 (en)2005-08-232012-08-07Biomet Biologics, LlcMethod and apparatus for collecting biological materials
US20070208321A1 (en)*2005-08-232007-09-06Biomet Manufacturing Corp.Method And Apparatus For Collecting Biological Materials
US8048297B2 (en)2005-08-232011-11-01Biomet Biologics, LlcMethod and apparatus for collecting biological materials
US20070075016A1 (en)*2005-08-232007-04-05Biomet Manufacturing Corp.Method and apparatus for collecting biological materials
US8512575B2 (en)2005-08-232013-08-20Biomet Biologics, LlcMethod and apparatus for collecting biological materials
US8048320B2 (en)2005-08-232011-11-01Biomet Manufacturing Corp.Method and apparatus for collecting biological materials
US8567609B2 (en)2006-05-252013-10-29Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US20080045877A1 (en)*2006-08-152008-02-21G&L Consulting, LlcBlood exchange dialysis method and apparatus
US8596470B2 (en)2007-04-122013-12-03Hanuman, LlcBuoy fractionation system
US8119013B2 (en)2007-04-122012-02-21Hanuman, LlcMethod of separating a selected component from a multiple component material
US8328024B2 (en)2007-04-122012-12-11Hanuman, LlcBuoy suspension fractionation system
US9138664B2 (en)2007-04-122015-09-22Biomet Biologics, LlcBuoy fractionation system
US9649579B2 (en)2007-04-122017-05-16Hanuman LlcBuoy suspension fractionation system
US7806276B2 (en)2007-04-122010-10-05Hanuman, LlcBuoy suspension fractionation system
US10400017B2 (en)2008-02-272019-09-03Biomet Biologics, LlcMethods and compositions for delivering interleukin-1 receptor antagonist
US11725031B2 (en)2008-02-272023-08-15Biomet Manufacturing, LlcMethods and compositions for delivering interleukin-1 receptor antagonist
US9701728B2 (en)2008-02-272017-07-11Biomet Biologics, LlcMethods and compositions for delivering interleukin-1 receptor antagonist
US20130196425A1 (en)*2008-02-292013-08-01Biomet Biologics, LlcSystem and Process for Separating a Material
US8337711B2 (en)2008-02-292012-12-25Biomet Biologics, LlcSystem and process for separating a material
US8801586B2 (en)*2008-02-292014-08-12Biomet Biologics, LlcSystem and process for separating a material
US9719063B2 (en)2008-02-292017-08-01Biomet Biologics, LlcSystem and process for separating a material
US8783470B2 (en)2009-03-062014-07-22Biomet Biologics, LlcMethod and apparatus for producing autologous thrombin
US8992862B2 (en)2009-04-032015-03-31Biomet Biologics, LlcAll-in-one means of separating blood components
US8313954B2 (en)2009-04-032012-11-20Biomet Biologics, LlcAll-in-one means of separating blood components
US9011800B2 (en)2009-07-162015-04-21Biomet Biologics, LlcMethod and apparatus for separating biological materials
US9533090B2 (en)2010-04-122017-01-03Biomet Biologics, LlcMethod and apparatus for separating a material
US8591391B2 (en)2010-04-122013-11-26Biomet Biologics, LlcMethod and apparatus for separating a material
US9239276B2 (en)2011-04-192016-01-19Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US10653824B2 (en)2012-05-252020-05-19Lockheed Martin CorporationTwo-dimensional materials and uses thereof
US9642956B2 (en)2012-08-272017-05-09Biomet Biologics, LlcApparatus and method for separating and concentrating fluids containing multiple components
US10576130B2 (en)2013-03-152020-03-03Biomet Manufacturing, LlcTreatment of collagen defects using protein solutions
US11957733B2 (en)2013-03-152024-04-16Biomet Manufacturing, LlcTreatment of collagen defects using protein solutions
US9895418B2 (en)2013-03-152018-02-20Biomet Biologics, LlcTreatment of peripheral vascular disease using protein solutions
US10441634B2 (en)2013-03-152019-10-15Biomet Biologics, LlcTreatment of peripheral vascular disease using protein solutions
US9950035B2 (en)2013-03-152018-04-24Biomet Biologics, LlcMethods and non-immunogenic compositions for treating inflammatory disorders
US10143725B2 (en)2013-03-152018-12-04Biomet Biologics, LlcTreatment of pain using protein solutions
US9556243B2 (en)2013-03-152017-01-31Biomet Biologies, LLCMethods for making cytokine compositions from tissues using non-centrifugal methods
US10208095B2 (en)2013-03-152019-02-19Biomet Manufacturing, LlcMethods for making cytokine compositions from tissues using non-centrifugal methods
US10471199B2 (en)2013-06-212019-11-12Lockheed Martin CorporationGraphene-based filter for isolating a substance from blood
US8945376B1 (en)2013-08-022015-02-03All Cell Recovery LLCSystems, methods, and apparatus for resuspending cells in solution
US9452021B2 (en)2013-08-022016-09-27All Cell Recovery LLCSystems, methods, and apparatus for resuspending cells from surgical laundry
US10159980B2 (en)2013-08-022018-12-25All Cell Recovery LLCSystems and methods for recovering blood cells, in a controlled environment, for storage
US10500546B2 (en)2014-01-312019-12-10Lockheed Martin CorporationProcesses for forming composite structures with a two-dimensional material using a porous, non-sacrificial supporting layer
US20170067807A1 (en)*2014-02-282017-03-09Lockheed Martin CorporationSeparation and assay of target entities using filtration membranes comprising a perforated two-dimensional material
US20170128637A1 (en)*2014-06-262017-05-11Medela Holding AgDevice for aspirating and transferring blood
EP2959927A1 (en)2014-06-262015-12-30Medela Holding AGDevice for the extraction and forwarding of blood
CN106456867A (en)*2014-06-262017-02-22美德乐控股公司Device for aspirating and transferring blood
US10617798B2 (en)*2014-06-262020-04-14Medela Holding AgDevice for aspirating and transferring blood
CN106456867B (en)*2014-06-262019-01-11美德乐控股公司 Equipment for drawing and transferring blood
WO2015197463A1 (en)2014-06-262015-12-30Medela Holding AgDevice for aspirating and transferring blood
US20160051747A1 (en)*2014-08-192016-02-25Fenwal, Inc.Systems and methods for automated recovery of white blood cells after producing a leuko-reduced blood product
US10905819B2 (en)*2014-08-192021-02-02Fenwal, Inc.Systems and methods for automated recovery of white blood cells after producing a leuko-reduced blood product
US11850347B2 (en)2014-08-192023-12-26Fenwal, Inc.Systems and methods for automated recovery of white blood cells after producing a leuko-reduced blood product
US10418143B2 (en)2015-08-052019-09-17Lockheed Martin CorporationPerforatable sheets of graphene-based material
US10696554B2 (en)2015-08-062020-06-30Lockheed Martin CorporationNanoparticle modification and perforation of graphene
US10981120B2 (en)2016-04-142021-04-20Lockheed Martin CorporationSelective interfacial mitigation of graphene defects
US10980919B2 (en)2016-04-142021-04-20Lockheed Martin CorporationMethods for in vivo and in vitro use of graphene and other two-dimensional materials
US11872382B2 (en)*2016-11-302024-01-16Belmont Instrument, LlcRapid infuser with advantageous flow path for blood and fluid warming, and associated components, systems, and methods
US20200001022A1 (en)*2016-11-302020-01-02Belmont Instrument, LlcRapid infuser with advantageous flow path for blood and fluid warming, and associated components, systems, and methods
US11662034B2 (en)2019-07-242023-05-30Quest Medical, Inc.Filtered vacuum relief vent valve

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