Claims
- 1. Apparatus comprising:
- (a) a centrifuge bowl;
- (b) an enclosed fractionation volume within said bowl;
- (c) an inlet and outlet port mounted on said bowl, the ports being in fluid communication with said fractionation volume;
- (d) a phlebotomy needle coupled by a first conduit to a source of anticoagulant and to said inlet port;
- (e) a source of anticoagulant;
- (f) receptacle means outside said centrifuge and coupled by a second conduit to said outlet port for collecting a first fractionated whole blood component from said outlet port;
- (g) blood pump means for first causing whole blood to flow through said phlebotomy needle and said first conduit into said inlet port at a predetermined rate;
- (h) anticoagulant pump means for causing anti coagulant from said source of anticoagulant to mix with said whole blood in said first conduit; and
- (i) surge pump means for causing a first fractionated component of anticoagulated whole blood to be recirculated to the inlet port of said centrifuge to elutriate the contents in the fractionation volume.
- 2. The apparatus of claim 1 in which the fractionation volume is about 225 ml and the flow rate caused by said surge pump is about 200 ml per minute.
- 3. The apparatus of claim 2 in which the blood pump means is initially deenergized just prior to the point in time when substantial quantity of a blood component being harvested has exited the outlet port and thereafter the surge pump means is energized to cause said first fractionated component to be recirculated.
- 4. The method of increasing component yield from donated whole blood in a centrifugation bowl having an inlet and an outlet port wherein:
- (i) lower density plasma blood component is separated in the bowl from higher density blood component in the bowl and the lower density plasma blood component is displaced out the outlet port to a separate air/plasma container and collected until the buffy coat comprising platelets and white cells gets to a predetermined location; and
- (ii) returning the lower density plasma blood to the bowl to elutriate the higher density components remaining in the bowl; and
- (iii) displacing blood component with density between lower density component and higher density component out of the bowl through the outlet port to a platelet container.
- 5. The method of claim 4 wherein the components remaining in the bowl after (iii) are reinfused.
- 6. The method of claim 4 wherein the component is returned in (ii) at a higher flow rate than the rate at which whole blood was pumped into the bowl.
Parent Case Info
This application is a continuation of application Ser. No. 299,194, filed Sept. 3, 1981, now U.S. Pat. No. 4,416,654.
US Referenced Citations (4)
Non-Patent Literature Citations (4)
Entry |
"Haemonetics 30 Cell Separator Blood Processor", List No. 5830, Owner's Operating & Maintenance Manual, Mar. 1978. |
"The Preparation of Leukocyte-Poor Red Blood Cells: A Comparative Study", by H. T. Meryman et al., Transfusion, May-Jun. 1980. |
"A Standardized Technique for Efficient Platelet and Leukocyte Collection Using the Model 30 Blood Processor", by Aisner et al., Transfusion, Sep.-Oct. 1976. |
"Haemonetics 102 Cell Washing System", List No. 6906, Owner's Operating and Maintenance Manual, Oct. 1978. |
Continuations (1)
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Number |
Date |
Country |
Parent |
299194 |
Sep 1981 |
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