Claims
- 1. A blood processing system comprising
- a centrifugal separation device rotatable about a rotational axis at a controlled rate of rotation, the separation device having an area A,
- an inlet path operable to convey whole blood at a determinable rate Q.sub.b into the separation device for separation into red blood cells and a plasma constituent, the whole blood in the inlet path having an actual whole blood hematocrit value, the red blood cells in the separation device having an actual red blood cell hematocrit value,
- an outlet path operable to remove plasma constituent from the separation device at a determinable rate Q.sub.p at least in part while whole blood is conveyed into the separation device,
- an outlet path operable to remove red blood cells from the separation device at least in part while whole blood is conveyed into the separation device and plasma is removed from the separation device,
- a controller including a stage operable to derive a value H.sup.rbc representing an apparent hematocrit of red blood cells within the separation device at least in part while whole blood is conveyed into the separation device and plasma and red blood cells are removed from the separation device, where:
- H.sub.rbc =f(Q.sub.b,Q.sub.p,A,g,RBC)
- where:
- g represents a centrifugal acceleration factor based upon the controlled rate of rotation, and
- RBC represents at least one red blood cell dependent factor not including the actual red blood cell hematocrit value,
- the controller including a stage operable to derive a value H.sub.b representing an apparent hematocrit of whole blood entering the separation device at least in part while whole blood is conveyed into the separation device and plasma and red blood cells are removed from the separation device, based upon a relationship among H.sub.rbc, Q.sub.b, Q.sub.p, and not including the actual whole blood hematocrit value, expressed as follows: ##EQU44## and the controller including a stage operable to generate a control command at least in part while whole blood is conveyed into the separation device and plasma and red blood cells are removed from the separation device, based, at least in part, upon H.sub.b.
- 2. A system according to claim 1
- wherein the control command recirculates at least a portion of plasma constituent for mixing with whole blood conveyed into the separation device.
- 3. A system according to claim 1 wherein the control command controls Q.sub.b.
- 4. A system according to claim 1 and further including an element that generates an output based, at least in part, upon H.sub.b.
- 5. A system according to claim 4
- wherein the output comprises a value .eta. representing efficiency of separation in the separation device, where: ##EQU45##
- 6. A system according to claim 1 wherein the value H.sub.rbc represents apparent hematocrit of red blood cells in the separation device, where: ##EQU46## where: q.sub.b is inlet blood flow rate (cm.sup.3 /sec), which when converted to ml/min, corresponds with Q.sub.b,
- q.sub.p is measured plasma flow rate (in cm.sup.3 /sec), which, when converted to ml/min corresponds with Q.sub.p,
- .beta. is a shear rate dependent term, and S.sub.y is a red blood cell sedimentation coefficient (sec) and .beta./S.sub.y =15.8.times.10.sup.6 sec.sub.-1,
- A is the area of the separation device (cm.sup.2),
- g is the centrifugal acceleration (cm/sec.sup.2), which is the radius of the separation device multiplied by the rate of rotation squared .OMEGA..sup.2 (rad/sec.sup.2), and
- k is a viscosity constant=0.625, and K is a viscosity constant based upon k and another viscosity constant .alpha.=4.5, where: ##EQU47##
- 7. A system according to claim 6 wherein the separation device is free of any sensor operable to measure the actual whole blood hematocrit value.
- 8. A system according to claim 1
- wherein the inlet path is free of any sensor operable to measure the actual whole blood hematocrit value.
- 9. A blood processing system comprising
- a centrifugal separation device rotatable at a controlled rate of rotation, the separation device having an area A,
- an inlet path operable to convey whole blood at a determinable rate Q.sub.b into the separation device for separation into red blood cells and a plasma constituent, the whole blood in the inlet path having an actual whole blood hematocrit value, the red blood cells in the separation device having an actual red blood cell hematocrit value,
- an outlet path operable to remove plasma constituent from the separation device at a determinable rate Q.sub.p at least in part while whole blood is conveyed into the separation device,
- a recirculation path operable to recirculate at least a portion of the plasma constituent at a determinable rate Q.sub.Recirc for mixing with whole blood conveyed into the separation device,
- an outlet path operable to remove red blood cells from the separation device at least in part while whole blood is conveyed into the separation device and plasma is removed from the separation device,
- a controller coupled to the recirculation path operable to maintain Q.sub.Recirc to achieve a desired hematocrit H.sub.i for whole blood conveyed into the separation device at least in part while red blood cells are removed from the separation device and plasma constituent removed from the separation device is recirculated for mixing with whole blood conveyed into the device, as follows: ##EQU48## where H.sub.b is a value representing an apparent hematocrit of whole blood entering the separation device based upon a relationship among H.sub.rbc, Q.sub.b, Q.sub.p, and not including the actual whole blood hematocrit value, expressed as follows: ##EQU49## and where H.sub.rbc is a value relating to an apparent hematocrit of red blood cells in the separation device where:
- H.sub.rbc =f(Q.sub.b, Q.sub.p, A, g, RBC)
- where:
- g represents a centrifugal acceleration factor based upon the controlled rate of rotation, and
- RBC represents at least one red blood cell dependent factor not including the actual red blood cell hematocrit value.
- 10. A system according to claim 9
- wherein the value H.sub.rbc represents apparent hematocrit of red blood cells in the separation device, where: ##EQU50## where: q.sub.b is inlet blood flow rate (cm.sup.3 /sec), which when converted to ml/min, corresponds with Q.sub.b,
- q.sub.p is measured plasma flow rate (in cm.sup.3 /sec), which, when converted to ml/min corresponds with Q.sub.p,
- .beta.is a shear rate dependent term, and S.sub.y is a red blood cell sedimentation coefficient (sec) and .beta./S.sub.y =15.8.times.10.sup.6 sec.sup.-1,
- A is the area of the separation device (cm.sup.2),
- g is the centrifugal acceleration (cm/sec.sup.2), which is the radius of the separation device multiplied by the rate of rotation squared .OMEGA..sub.2 (rad/sec.sup.2), and
- k is a viscosity constant=0.625, and K is a viscosity constant based upon k and another viscosity constant .alpha.=4.5, where: ##EQU51##
- 11. A system according to claim 10 wherein the separation device is free of any sensor operable to measure the actual blood hematocrit value.
- 12. A system according to claim 9
- wherein the inlet path is free of any sensor operable to measure the actual whole blood hematocrit value.
- 13. A system according to claim 9
- wherein H.sub.i is no greater than about 40%.
- 14. A system according to claim 9
- wherein H.sub.i is about 32%.
- 15. A blood processing method comprising the steps of
- rotating a centrifugal separation device at a controlled rate of rotation, the separation device having an area A,
- conveying whole blood having an actual whole blood hematocrit value into the separation device at a determinable rate Q.sub.b for separation into red blood cells and a plasma constituent, the red blood cells in the separation device having an actual red blood cell hematocrit value,
- removing plasma constituent from the separation device at a determinable rate Q.sub.p at least in part while whole blood is conveyed into the separation device,
- removing red blood cells from the separation device at least in part while whole blood is conveyed into the separation device and plasma is removed from the separation device,
- deriving at least in part while whole blood is conveyed into the separation device and plasma and red blood cells are removed from the separation device a value H.sub.rbc representing an apparent hematocrit of red blood cells within the separation device where:
- H.sub.rbc =f(Q.sub.b, Q.sub.p, A, g, RBC)
- where:
- g represents a centrifugal acceleration factor based upon the controlled rate of rotation, and
- RBC represents at least one red blood cell dependent factor not including the actual red blood cell hematocrit value,
- deriving at least in part while whole blood is conveyed into the separation device and plasma and red blood cells are removed from the separation device a value H.sub.b representing an apparent hematocrit of whole blood entering the separation device based upon a relationship among H.sub.rbc, Q.sub.b, Q.sub.p, and not including the actual whole blood hematocrit value, expressed as follows: ##EQU52## and generating a control command based, at least in part, upon H.sub.b at least in part while whole blood is conveyed into the separation device and plasma and red blood cells are removed from the separation device.
- 16. A method according to claim 15
- wherein the control command recirculates at least a portion of plasma constituent for mixing with whole blood conveyed into the separation device.
- 17. A method according to claim 15
- wherein the control command controls Q.sub.b.
- 18. A method according to claim 15
- and further the step of generating an output based, at least in part, upon H.sub.b.
- 19. A method according to claim 18
- wherein the output comprises a value .eta. representing efficiency of separation in the separation device, where: ##EQU53##20.
- 20. A method according to claim 15 wherein the value H.sub.rbc represents apparent hematocrit of red blood cells in the separation device, where: ##EQU54## where: q.sub.b is inlet blood flow rate (cm.sup.3 /sec), which when converted to ml/min, corresponds with Q.sub.b,
- q.sub.p is measured plasma flow rate (in cm.sup.3 /sec), which, when converted to ml/min corresponds with Q.sub.p,
- .beta. is a shear rate dependent term, and S.sub.y is a red blood cell sedimentation coefficient (sec) and .beta./S.sub.y =15.8.times.10.sup.6 sec.sup.-1,
- A is the area of the separation device (cm.sup.2),
- g is the centrifugal acceleration (cm/sec.sup.2), which is the radius of the separation device multiplied by the rate of rotation squared .OMEGA..sup.2 (rad/sec.sup.2), and
- k is a viscosity constant=0.625, and K is a viscosity constant based upon k and another viscosity constant .alpha.=4.5, where: ##EQU55##
- 21. A method according to claim 20 wherein the method is free of a step of using a sensor to measure the actual whole blood hematocrit value in the separation device.
- 22. A method according to claim 15
- wherein the method is free of a step of using a sensor to measure the actual whole blood hematocrit value in the inlet path.
- 23. A blood processing method comprising the steps of
- rotating a centrifugal separation device at a controlled rate of rotation, the separation device having an area A,
- conveying whole blood having an actual whole blood hematocrit value into the separation device at a determinable rate Q.sub.b for separation into red blood cells and a plasma constituent, the red blood cells in the separation device having an actual red blood cell hematocrit value,
- removing plasma constituent from the separation device at a determonable rate Q.sub.p at least in part while whole blood is conveyed into the separation device,
- recirculating at least a portion of plasma constituent from the separation device at a determinable rate Q.sub.Recirc for mixing with whole blood conveyed into the separation device,
- removing red blood cells from the separation device at least in part while whole blood is conveyed into the separation device and plasma is removed from the separation device,
- controlling Q.sub.Recirc to achieve a desired hematocrit H.sub.i for whole blood conveyed into the separation device at least in part while red blood cells are removed from the separation device and plasma constituent removed from the separation device is recirculated for mixing with whole blood conveyed into the device, as follows: ##EQU56## where H.sub.b is a value representing an apparent hematocrit of whole blood entering the separation device based upon a relationship among H.sub.rbc, Q.sub.b, Q.sub.p, and not including the actual whole blood hematocrit value, expressed as follows: ##EQU57## and where H.sub.rbc is a value relating to an apparent hematocrit of red blood cells in the separation device where:
- H.sub.rbc =f(Q.sub.b, Q.sub.p, A, g, RBC)
- where:
- g represents a centrifugal acceleration factor based upon the controlled rate of rotation, and
- RBC represents at least one red blood cell dependent factor not including the actual red blood cell hematocrit value.
- 24. A method according to claim 23
- wherein the value H.sub.rbc represents apparent hematocrit of red blood cells in the separation device, where: ##EQU58## where: q.sub.b is inlet blood flow rate (cm.sup.3 /sec), which when converted to ml/min, corresponds with Q.sub.b,
- q.sub.p is measured plasma flow rate (in cm.sup.3 /sec), which, when converted to ml/min corresponds with Q.sub.p,
- .beta. is a shear rate dependent term, and S.sub.y is a red blood cell sedimentation coefficient (sec) and .beta./S.sub.y =15.8.times.10.sup.6 sec.sup.-1,
- A is the area of the separation device (cm.sup.2),
- g is the centrifugal acceleration (cm/sec.sup.2), which is the radius of the separation device multiplied by the rate of rotation squared .OMEGA..sup.2 (rad/sec.sup.2), and
- k is a viscosity constant=0.625, and K is a viscosity constant based upon k and another viscosity constant .alpha.=4.5, where: ##EQU59##
- 25. A method according to claim 24 wherein the method is free of a step of using a sensor to measure the actual whole blood hematocrit value in the separation device.
- 26. A method according to claim 23
- wherein the method is free of a step of using a sensor to measure the actual whole blood hematocrit value in the inlet path.
Parent Case Info
This is a continuation of application Ser. No. 08/473,316 filed on Jun. 7, 1995 now U.S. Pat. No. 5,730,883, which is a continuation-in-part of application Ser. No. 08/097,967 filed on Jul. 26, 1993, now abandoned, which is a continuation-in-part of application of application Ser. No. 07/965,088 filed on Oct. 22, 1992, now U.S. Pat. No. 5,370,802, which is a continuation-in-part of application Ser. No. 07/814,403 filed on Dec. 23, 1991, now abandoned.
US Referenced Citations (44)
Foreign Referenced Citations (1)
Number |
Date |
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580 299 A1 |
Jul 1992 |
EPX |
Continuations (1)
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473316 |
Jun 1995 |
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Continuation in Parts (3)
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097967 |
Jul 1993 |
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965088 |
Oct 1992 |
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814403 |
Dec 1991 |
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