Claims
- 1. A noninvasive method of measuring cardiac output in a dialysis system having arterial and venous tubing lines using a first extracorporeal cuvette located at an input to a dialyzer in said dialysis system and a second extracorporeal cuvette located at an output of said dialyzer, each extracorporeal cuvette having an inlet, an outlet, and a conduit in fluid communication therebetween, said conduit having first and second opposed walls allowing electromagnetic radiation therethrough with inner surfaces thereof having a first predetermined separation therebetween, outer surfaces and said inner surfaces of said first and second opposed walls being planar, said inner surface of said first wall including a pedestal emanating outwardly toward the inner surface of said second wall, said pedestal having a planar end surface defining a second predetermined separation from said second wall, said first predetermined separation being greater than said second predetermined separation so that a shorter radiation path length is created across said second predetermined separation, said method comprising the steps of:injecting a first saline bolus into the arterial tubing; injecting a second saline bolus into the venous tubing; determining the blood flow rate through at least one of said extracorporeal cuvettes in the dialysis system; selecting the first saline bolus as a reference bolus and the second saline bolus as a measuring bolus; determining a first ratio of the measuring bolus to the reference bolus; determining the change of hematocrit over time for the reference bolus by comparing an output of said first extracorporeal cuvette with an output of said second extracorporeal cuvette; determining the change of hematocrit over time for the measuring bolus by comparing an output of said first extracorporeal cuvette with an output of said second extracorporeal cuvette; determining a second ratio of the reference bolus over time to the measuring bolus over time; and calculating the product of the first ratio, the second ratio and the blood flow rate.
- 2. A method for detecting blood emboli using an extracorporeal cuvette having an inlet, an outlet, and a conduit in fluid communication therebetween, said conduit having first and second opposed walls with inner surfaces thereof having a first predetermined separation therebetween, said method comprising the steps of:allowing blood to flow from said inlet to said outlet through said conduit; emitting, with an emitter on an outer surface of said first wall, radiation through said first wall into the blood flow in said conduit; receiving, with a sensor on an outer surface of said second wall, radiation passing through the blood flow in said conduit; defining, with a plurality of lenses arranged along the surface of said second wall, a region of illumination to focus the radiation from the emitter and received by said sensor; and detecting, by said sensor, a change in radiation when a blood embolus passes through said region of illumination, said change in radiation indicating a number and size of blood emboli.
- 3. The method as set forth in claim 2, wherein said emitter is a photoemitter and said plurality of lenses act to strobe and focus a plurality of LED light sources in said photoemitter independently such that only a narrow section of the conduit is optically viewed for any given wavelength of said LED light sources.
- 4. A method for monitoring blood constituents using an extracorporeal cuvette having an inlet, an outlet, and a conduit in fluid communication therebetween, said conduit having first and second opposed walls allowing electromagnetic radiation therethrough with inner surfaces thereof having a first predetermined separation therebetween, outer surfaces and said inner surfaces of said first and second opposed walls being planar, said inner surface of said first wall including a pedestal emanating outwardly toward the inner surface of said second wall, said pedestal having a planar end surface defining a second predetermined separation from said second wall, said first predetermined separation being greater than said second predetermined separation, said method comprising the steps of:allowing blood to flow from said inlet to said outlet through said conduit; emitting, with an emitter on an outer surface of said first wall, radiation through said first wall into the blood flow in said conduit, a path length of said radiation corresponding to said second predetermined separation between the planar end surface of said pedestal and said inner surface of said second wall; and receiving, with a sensor on an outer surface of said second wall, radiation passing through the blood flow in said conduit across the radiation path length, the first wall, the second wall and the pedestal.
CROSS REFERENCE TO RELATED APPLICATION
This is a divisional of application Ser. No. 08/955,989 filed on Oct. 22, 1997 Now U.S. Pat. No. 6,090,06 which in turn claims priority to U.S. provision applcation Ser. No. 60,029,586, filed Oct. 23, 1996.
US Referenced Citations (8)
Number |
Name |
Date |
Kind |
5066859 |
Karkar et al. |
Nov 1991 |
A |
5101825 |
Gravenstein et al. |
Apr 1992 |
A |
5111817 |
Clark et al. |
May 1992 |
A |
5158091 |
Butterfield et al. |
Oct 1992 |
A |
5230341 |
Polaschegg |
Jul 1993 |
A |
5237999 |
von Berg |
Aug 1993 |
A |
5456253 |
Steuer et al. |
Oct 1995 |
A |
5685989 |
Krivitski et al. |
Nov 1997 |
A |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/029586 |
Oct 1996 |
US |