Claims
- 1. A refrigeration system for cooling a tip section of a cryoablation catheter which comprises:
a source for a primary fluid refrigerant; a means for pre-cooling the primary fluid to a sub-cool temperature at a working pressure (pw); a catheter tube formed with a lumen and having an open proximal end and a closed distal end, with the closed distal end of said catheter tube defining a tip section; a supply line having a distal end and a proximal end, said supply line being positioned inside the lumen of the catheter tube with the distal end thereof positioned in the tip section of said catheter tube; a means for introducing the sub-cooled primary fluid into the proximal end of said supply line at the working pressure (pw) for transfer through said supply line and outflow from the distal end thereof into the tip section of said catheter tube at an outflow pressure (po); and a vacuum means connected in fluid communication with the proximal end of said catheter tube for removing the primary fluid therefrom at a return pressure (pr), while maintaining the outflow pressure (po) in the tip section substantially at a predetermined value to allow the primary fluid to boil in the tip section substantially at its normal boiling point.
- 2. A system as recited in claim 1 further comprising:
a first pressure sensor for measuring the working pressure (pw) at the proximal end of the capillary tube; a second pressure sensor for measuring the return pressure (pr) at the proximal end of the catheter tube; and a computer for using the working pressure (pw) and the return pressure (pr) to calculate the outflow pressure (po) in the tip section.
- 3. A system as recited in claim 2 further comprising:
a regulator valve for varying the working pressure (pw) on the primary fluid; and an electronic means connecting said computer to said regulator valve, wherein said computer compares the calculated outflow pressure (po) in the tip section to a base line pressure to create an error signal, and further wherein said computer adjusts said regulator valve to minimize the error signal for controlling the working pressure (pw) to substantially maintain the outflow pressure (po) at the predetermined value.
- 4. A system as recited in claim 3 further comprising a temperature sensor mounted in the tip section to determine a tip section temperature (Tt), wherein said computer monitors the tip section temperature (Tt) to ensure appropriate control over the working pressure (pw).
- 5. A system as recited in claim 1 wherein said means for pre-cooling the primary fluid is a closed-cycle refrigeration unit comprising:
a secondary fluid; a compressor for increasing pressure on the secondary fluid to convert the secondary fluid into a liquid having a boiling point equal to a sub-cool temperature of the primary fluid; a means for boiling the secondary fluid to sub-cool the primary fluid to its sub-cool temperature; and a means for recycling the secondary fluid after the secondary fluid has sub-cooled the primary fluid.
- 6. A system as recited in claim 5 wherein the primary fluid is nitrous oxide (N2O), and the secondary fluid is a Freon.
- 7. A system as recited in claim 6 wherein the sub-cool temperature for the primary fluid is approximately minus forty degrees Centigrade (Tsc≅−40° C.) and the tip temperature is approximately minus eighty eight degrees Centigrade (Tt≅−88° C.).
- 8. A system as recited in claim 1 wherein the working pressure (pw) is approximately four hundred psi (400 psi) and the outflow pressure (po) is approximately fifteen psia (po=15 psia).
- 9. A system as recited in claim 1 wherein said supply line comprises:
a supply tube having a proximal end and a distal end; and a capillary tube having a proximal end and a distal end, wherein the distal end of the supply tube is connected with the proximal end of the capillary tube, wherein said supply line is coaxially positioned in the lumen of said catheter tube, and wherein said supply tube has a lumen with a diameter and said capillary tube has a lumen with a diameter, with the diameter of said supply tube being greater than the diameter of said capillary tube.
- 10. A system as recited in claim 1 further comprising a pressure sensor positioned in said tip section for measuring the outlet pressure (po).
- 11. A method for cooling a tip section of a cryoablation catheter which comprises the steps of:
providing a catheter tube formed with a lumen and having an open proximal end and a closed distal end, with the closed distal end of the catheter tube defining a tip section; mounting a supply line inside the lumen of the catheter tube, the supply line having a distal end and a proximal end, with the distal end thereof positioned in the tip section of said catheter tube; pre-cooling a primary fluid to a sub-cooled liquid state at a working pressure (pw); introducing the sub-cooled primary fluid into the proximal end of the supply line at the working pressure (pw) for transfer through the capillary tube and outflow from the distal end thereof into the tip section of the catheter tube at an outflow pressure (po); removing the primary fluid from the proximal end of said catheter tube at a return pressure (pr); and maintaining the outflow pressure (po) in the tip section substantially at a predetermined value to allow the primary fluid to boil in the tip section substantially at its normal boiling point.
- 12. A method as recited in claim 11 further comprising the steps of:
measuring the working pressure (pw) at the proximal end of the supply line; measuring the return pressure (pr) at the proximal end of the catheter tube; and calculating the outflow pressure (po) in the tip section based on the measured working pressure (pw) and the measured return pressure (pr).
- 13. A method as recited in claim 12 further comprising the steps of:
providing a control valve to vary the working pressure (pw) on the primary fluid; comparing the calculated outflow pressure (po) in the tip section to a base line pressure to create an error signal; and adjusting the control valve to minimize the error signal for controlling the working pressure (pw) to substantially maintain the outflow pressure (po) at the predetermined value.
- 14. A method as recited in claim 13 wherein the pre-cooling step comprises:
increasing pressure on a secondary fluid to convert the secondary fluid into a liquid having a boiling point equal to a sub-cool temperature of the primary fluid; and boiling the secondary fluid to sub-cool the primary fluid to its sub-cool temperature.
- 15. A method as recited in claim 14 further comprising the steps of:
placing a temperature sensor in the tip section to determine a tip section temperature (Tt); and monitoring the tip section temperature (Tt) to ensure appropriate control over the working pressure (pw).
- 16. A method as recited in claim 11 further comprising the steps of:
providing a supply tube having a proximal end and a distal end; providing a capillary tube having a proximal end and a distal end; and connecting the distal end of the supply tube to the proximal end of the capillary tube to create said supply line.
- 17. A method as recited in claim 16 further comprising the steps of:
forming said supply tube with a lumen having a diameter; and forming said capillary tube with a lumen having a diameter, wherein the diameter of said supply tube being greater than the diameter of said capillary tube.
- 18. A method as recited in claim 17 further comprising the step of positioning a pressure sensor in said tip section for measuring the outlet pressure (po).
- 19. A method as recited in claim 17 further comprising the step of:
positioning a temperature sensor in said tip section for measuring the tip temperature (Tt); and using the tip temperature (Tt) to calculate the outflow pressure (p0).
- 20. A method as recited in claim 11 wherein the primary fluid is nitrous oxide.
Parent Case Info
[0001] This application is a continuation-in-part of application Ser. No. 09/635,108 filed Aug. 9, 2000, which is currently pending. The contents of application Ser. No. 09/635,108 are incorporated herein by reference.
Continuation in Parts (1)
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Number |
Date |
Country |
| Parent |
09635108 |
Aug 2000 |
US |
| Child |
10243997 |
Sep 2002 |
US |