Claims
- 1. Apparatus for determining the characteristics of tissue prior to, during and subsequent to an RF ablation procedure performed on the tissue, said apparatus comprising in combination:
a) a first source for providing RF energy to irradiate an ablation site on the tissue with RF radiation; b) a second source for providing a monitor signal to be applied to the ablation site to determine the characteristics of the tissue selectively prior to, during and subsequent to the ablation procedure; c) a circuit for selectively sensing the initial and any real time change in said monitor signal as a function of the characteristics of the tissue prior to, and during and subsequent to the ablation procedure and for producing an output signal reflective of the characteristics sensed; d) a further circuit for correlating said monitor signal and said output signal to produce a first signal reflective of the magnitude of the impedance of the tissue at the ablation site, a second signal reflective of the magnitude of the resistive component of the impedance of the tissue at the ablation site and a third signal reflective of the magnitude of the reactive component of the impedance of the tissue at the ablation site; e) an output device for displaying indicia reflective of any or all of said first, second and third signals; and f) a processing circuit for controlling operation of at least one of said first and second sources as a selected manual or automatic function of any of said first, second and third signals.
- 2. The apparatus as set forth in claim 1 wherein said second source includes a circuit for generating the monitor signal from said first source.
- 3. The apparatus as set forth in claim 1 wherein said circuit includes a catheter having a tip electrode for irradiating the ablation site with the RF energy and for applying the monitor signal to the ablation site.
- 4. The apparatus as set forth in claim 3 including a ground electrode for providing an electrical return path from the tissue.
- 5. The apparatus as set forth in claim 4 wherein said ground electrode is a plate in electrical contact with the tissue.
- 6. The apparatus as set forth in claim 1 wherein the magnitude of said third signal, reflective of the magnitude of the reactive component of the impedance of the tissue at the ablation site, changes in a range of about 160% to about 400% of the initial magnitude of said third signal during the RF ablation period.
- 7. The apparatus as set forth in claim 6 wherein the magnitude of said first signal, reflective of the magnitude of the impedance of the tissue at the ablation site, changes in a range of about 30% to about 60% of the initial magnitude of said first signal during the RF ablation period.
- 8. The apparatus as set forth in claim 1 wherein said output device includes means for displaying a sharp rise of said first signal reflective of occurrence of a micro-explosion.
- 9. Apparatus for determining the characteristics of tissue prior to, during and subsequent to damage of the tissue, said apparatus comprising in combination:
a) a first source for providing energy to damage the tissue; b) a second source for providing a monitor signal applied to the tissue to determine the characteristic of the tissue selectively prior to, during and subsequent to damage of the tissue; c) a circuit for sensing the initial and any real time change in said monitor signal as a function of the characteristics of the tissue during any or all selected time periods and for producing an output signal reflective of the characteristics; d) a further circuit for correlating said monitor signal and said output signal to produce a first signal reflective of the magnitude of the impedance of the tissue, a second signal reflective of the magnitude of the resistive component of the impedance of the tissue and a third signal reflective of the magnitude of the reactive component of the impedance of the tissue; e) an output device for providing indicia reflective of any or all said first, second and third signals; and f) processing apparatus for controlling operation of at least one of said first and second sources as a selected manual or automatic function of any of said first, second and third signals.
- 10. The apparatus as set forth in claim 9 wherein said second source includes a circuit for generating the monitor signal from said first source.
- 11. The apparatus as set forth in claim 9 wherein the magnitude of said third signal, reflective of the magnitude of the reactive component of the impedance of the tissue, changes in a range of about 160% to about 400% of the initial magnitude of said third signal during damage to the tissues.
- 12. The apparatus as set forth in claim 11 wherein the magnitude of said first signal, reflective of the magnitude of the impedance of the tissue, changes in a range of about 30% to about 60% of the initial magnitude of said first signal during damage to the tissue.
- 13. The apparatus as set forth in claim 9 wherein said output device includes means for displaying a sharp rise of said first signal reflective of occurrence of a micro-explosion.
- 14. Apparatus for combining two or more materials and determining on a real time basis the characteristics of the materials and of the resulting combined materials, said apparatus comprising in combination:
a) a first source for providing energy for causing the combining of the materials; b) a second source for providing a monitor signal applied to the materials to determine the characteristics of the materials; c) a circuit for sensing an initial and any real time change in said monitor signal as a function of the initial and changing characteristics of the materials and for producing an output signal reflective of the characteristics; d) a further circuit for correlating said monitor signal and said output signal to produce a first signal reflective of the magnitude of the impedance of the materials, a second signal reflective of the magnitude of the resistive component of the impedance of the materials and a third signal reflective of the magnitude of the reactive component of the impedance of the materials; e) an output device for providing indicia reflective of any or all of said first, second and third signals; and f) processing apparatus for controlling operation of at least one of said first and second sources as a selected manual or automatic function of any of said first, second and third signals.
- 15. The apparatus as set forth in claim 14 including a radiation emitting element for irradiating the combined materials with energy and the monitor signal.
- 16. The apparatus as set forth in claim 15 including means for repositioning said element and materials relative to one another.
- 17. Apparatus for determining the characteristics of a material, said apparatus comprising in combination:
a) a source for providing a monitor signal applied to the material to determine the characteristics of the material; b) a circuit for sensing an initial and any change in said monitor signal as a function of the characteristics of the material and for producing an output signal reflective of the characteristics; c) a further circuit for correlating said monitor signal and said output signal to produce a first signal reflective of the magnitude of the impedance of the material, a second signal reflective of the magnitude of the resistive component of the impedance of the material and a third signal reflective of the magnitude of the reactive component of the impedance of the material; d) an output device for providing indicia reflective of any or all of said first, second and third signals; and e) processing apparatus for controlling operation of said source as a selected manual or automatic function of any of said first, second and third signals.
- 18. The apparatus as set forth in claim 17 including a radiation emitting element for irradiating the material with the monitor signal.
- 19. The apparatus as set forth in claim 18 including means for repositioning said element and the material relative to one another.
- 20. A method for determining the characteristics of organic material for a selected time period at least during damage caused to the organic material, said method comprising the steps of:
a) providing a source of energy for damaging the organic material; b) applying a monitor signal to the organic material to determine the characteristics of the organic material during the time period; c) sensing a real time change in the monitor signal as a function of the characteristics of the organic material for the selected time period and producing an output signal reflective of the characteristics; d) correlating the monitor signal and the output signal and producing a first signal reflective of the magnitude of the impedance of the organic material, a second signal reflective of the magnitude of the resistive component of the impedance of the organic material and a third signal reflective of the reactive component of the impedance of the organic material; e) presenting indicia reflective of any or all of the first, second and third signals; and f) controlling operation of at least one of said steps of providing and applying as a selected manual or automatic function of any of the first, second and third signals.
- 21. The method as set forth in claim 20 including the step of deriving the monitor signal from said energy source.
- 22. The method as set forth in claim 20 wherein said step of displaying includes the step of displaying a sharp rise of the first signal reflective of a micro-explosion.
- 23. A method for combining two or more inorganic materials and determining on a real time basis for a selected time period the characteristics of the materials and of the resulting combined materials, said method comprising the steps of:
a) providing a source of energy for causing the combining of the materials; b) applying a monitor signal to the materials to determine the characteristics of the materials during the selected time period; c) sensing on a real time basis any real time change in the monitor signal for the selected time period as a function of the characteristics of the materials and of the combined materials and providing an output signal reflective of the characteristics; d) correlating the monitor signal and the output signal to produce a first signal reflective of the magnitude of the impedance of the materials, a second signal reflective of the magnitude of the resistive component of the impedance of the materials and a third signal reflective of the magnitude of the reactive component of the materials; e) displaying indicia reflective of any or all of the first, second and third signals; and f) controlling operation of at least one of said steps of providing and applying as a selected manual or automatic function of any of the first, second or third signals.
- 24. The method as set forth in claim 23 including the step of deriving the monitor signal from said energy source.
- 25. A method for determining on a real time basis the characteristics of a material for a selected time period, said method comprising the steps of:
a) providing a monitor signal applied to the material to determine the characteristics of the material; b) sensing on a real time basis any change in the monitor signal for the selected time period as a function of the characteristics of the material and providing an output signal reflective of the characteristics; c) correlating the monitor signal and the output signal to produce a first signal reflective of the magnitude of the impedance of the material, a second signal reflective of the magnitude of the resistive component of the impedance of the material and a third signal reflective of the magnitude of the reactive component of the impedance of the material; d) displaying indicia reflective of any or all of the first, second and third signals; and e) controlling operation of said step of providing as a selected manual or automatic function of any of the first, second and third signals.
- 26. The method as set forth in claim 25 including an element for carrying out the step of irradiating the material with the monitor signal.
- 27. The method as set forth in claim 26 including the step of repositioning the element and the material relative to one another.
- 28. A method for selectively determining the characteristics of tissue prior to, during and subsequent to an RF ablation procedure performed on the tissue, said method comprising the steps of:
a) providing energy to irradiate an ablation site on the tissue with RF ablation; b) further providing a monitor signal and applying the monitor signal to the ablation site to determine the characteristics of the tissue selectively prior to, during and subsequent to the ablation procedure; c) selectively sensing the initial and any real time change in the monitor signal as a function of the characteristics of the tissue prior to, during and subsequent to the ablation procedure and producing an output signal reflective of the characteristics sensed; d) correlating the monitor signal and the output signal to produce a first signal reflective of the magnitude of the impedance of the tissue at the ablation site, a second signal reflective of the magnitude of the resistive component of the impedance of the tissue at the ablation site and a third signal reflective of the magnitude of the reactive component of the impedance of the tissue at the ablation site; e) displaying indicia reflective of any or all of the first, second and third signals; and f) controlling operation of at least one of the said providing step and said further providing step as a selected manual or automatic function of any of the first, second or third signals.
- 29. The method as set forth in claim 28 wherein said step of further providing includes the step of deriving the monitor signal from exercise of said step of providing.
- 30. The method as set forth in claim 28 wherein said step of displaying includes the step of displaying a sharp rise of the first signal reflective of a micro-explosion.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] The present application includes and claims priority to a disclosure contained in the provisional applications entitled “CAPACITANCE MEASUREMENT DURING TISSUE ABLATION”, assigned Ser. No. 60/249,561, filed Nov. 17, 2000, “SENSITIVE IMPEDANCE SIGNAL MEASUREMENT DURING TISSUE ABLATION” assigned Ser. No. 60/249,471, filed Nov. 17, 2000; and “FUZZY LOGIC” assigned Ser. No. 60/249,562, filed Nov. 17, 2000, and “METHOD FOR PREDICTING ABLATION FROM CATHETER TO TISSUE PRESSURE”, assigned Ser. No. 60/284,397, filed Apr. 17, 2001 and includes subject matter disclosed in provisional applications entitled “QUANTITATIVE CHARACTERISTICS OF TISSUE BIO-CONDUCTANCE AND LESION FORMATION” assigned Ser. No. 60/137,589, filed Jun. 4, 1999; “CHANGE IN TISSUE COMPONENT OF MYOCARDIAL LESION DEPTH” assigned Ser. No. 60/205,313, filed May 18, 2000; “BIOCONDUCTANCE CORRELATES WITH TISSUE TEMPERATURE IN VITRO” assigned Ser. No. 60/205,312, filed May 18, 2000; “EFFECTS OF DIFFERENT PERFUSION RATES ON INTRA-MYOCARDIAL RATES” assigned Ser. No. 60/205,311, filed May 18, 2000; “EFFECTS OF REDUCING CATHETER DISTAL ELECTRODE LENGTH” assigned Ser. No. 60/205,309, filed May 18, 2000; “FUZZY AND IMPEDANCE CONTROL” assigned Ser. No. 60/211,043, filed Jun. 12, 2000; all of which applications are assigned to the present assignee.
Provisional Applications (10)
|
Number |
Date |
Country |
|
60249561 |
Nov 2000 |
US |
|
60249471 |
Nov 2000 |
US |
|
60249562 |
Nov 2000 |
US |
|
60284397 |
Apr 2001 |
US |
|
60137589 |
Jun 1999 |
US |
|
60205313 |
May 2000 |
US |
|
60205312 |
May 2000 |
US |
|
60205311 |
May 2000 |
US |
|
60205309 |
May 2000 |
US |
|
60211043 |
Jun 2000 |
US |