Claims
- 1. An apparatus for producing x-rays with operating current control comprising:
a housing; a probe, said probe including:
distal and proximal ends, with said proximal end being attached to said housing; and an outer wall structure defining a hollow interior; an anode attached to said probe at said probe distal end; a cathode having proximal and distal ends, wherein:
said distal cathode end is disposed with said distal probe end and spaced from said anode to create a gap therebetween; and said proximal cathode end is disposed within said housing; and a linear translator attached to said proximal cathode end and being provided for moving said cathode toward and away from said anode to adjust said gap and change the operating current.
- 2. The apparatus of claim 1 and further including:
a high voltage power source electrically connected to said cathode, said power source including a sensor for sensing the operating current.
- 3. The apparatus of claim 1 wherein said linear translator includes:
a shaft having proximal and distal ends, said distal end attached to said cathode and electrically insulated therefrom and said proximal end being threaded; a threaded nut receiving said threaded proximal shaft end; and a motor rotationally driving said threaded nut.
- 4. The apparatus of claim 1 wherein said linear translator comprises:
a shaft having proximal and distal ends, said distal end attached to said cathode and electrically insulated therefrom; and an inchworm linear motor engaged with said shaft.
- 5. The apparatus of claim 1 wherein said probe has a longitudinal axis and said distal end is angled relative to said longitudinal axis.
- 6. The apparatus of claim 1 wherein said cathode is clad with an insulating layer to electrically insulate it from said probe.
- 7. The apparatus of claim 1 and further including:
a high voltage power source, said power source including a sensor for sensing the operating current and deviations from a predetermined operating current value; and wherein said linear translator includes: a shaft having proximal and distal ends, said distal end attached to said cathode and electrically insulated therefrom and said proximal end being threaded; a threaded nut receiving said threaded proximal shaft end; and a motor rotationally driving said threaded nut wherein said motor drives said threaded nut to advance and retract said cathode and adjust the size of the gap in response to a monitored deviation from the predetermined operating current to stabilize the x-ray output from the x-ray apparatus at a predetermined dose rate.
- 8. The apparatus of claim 1 and further including:
a high voltage power source said power source including a sensor for sensing the operating current and deviations from a predetermined operating current value; and wherein said linear translator includes: a shaft having proximal and distal ends, said distal end attached to said cathode and electrically insulated therefrom; and an inchworm linear motor engaged with said shaft. wherein said inchworm linear motor advances and retracts said cathode and adjust the size of the gap in response to a monitored deviation from the predetermined operating current to stabilize the x-ray output from the x-ray apparatus at a predetermined desired dose.
- 9. The apparatus of claim 1 and further including a pullback mechanism for advancing and retracting said probe relative to the target according to a predetermined therapy regimen.
- 10. The apparatus of claim 9 wherein said pullback mechanism rotates said probe according to a predetermined therapy regimen.
- 11. The apparatus of claim 1 and further including a mechanism for rotating said probe according to a predetermined therapy regimen.
- 12. An apparatus for providing x-ray radiation therapy with operating current control comprising:
a housing; a probe, said probe including:
distal and proximal ends, with said proximal end being attached to said housing; and an outer wall structure defining a hollow interior; an cathode attached to said probe at said probe distal end; a anode having proximal and distal ends, wherein:
said distal anode end is disposed with said distal probe end and spaced from said cathode to create a gap therebetween; and said proximal anode end is disposed within said housing; and a linear translator attached to said proximal anode end and being provided for moving said anode toward and away from said cathode to adjust said gap and change the operating current.
- 13. The apparatus of claim 12 and further including:
a high voltage power source electrically connected to said anode, said power source including a sensor for sensing the operating current.
- 14. The apparatus of claim 12 wherein said linear translator includes:
a shaft having proximal and distal ends, said distal end attached to said proximal anode end and electrically insulated therefrom and said proximal shaft end being threaded; a threaded nut receiving said threaded proximal shaft end; and a motor rotationally driving said threaded nut.
- 15. The apparatus of claim 12 wherein said linear translator comprises:
a shaft having proximal and distal ends, said distal end attached to said anode and electrically insulated therefrom; and an inchworm linear motor engaged with said shaft.
- 16. The apparatus of claim 12 wherein said anode is clad with an insulating layer to electrically insulate it from said probe.
- 17. The apparatus of claim 12 and further including:
a high voltage power source said power source including a sensor for sensing the operating current; and wherein said linear translator includes: a shaft having proximal and distal ends, said distal end attached to said anode and electrically insulated therefrom and said proximal end being threaded; a threaded nut receiving said threaded proximal shaft end; and a motor rotationally driving said threaded nut wherein said motor drives said threaded nut to advance and retract said anode and adjust the size of the gap in response to the monitored operating current to stabilize the x-ray output from the x-ray apparatus at the desired dose.
- 18. The apparatus of claim 12 and further including:
a high voltage power source said power source including a sensor for sensing the operating current and deviations from a predetermined operating current value; and wherein said linear translator includes: a shaft having proximal and distal ends, said distal end attached to said anode and electrically insulated therefrom; and an inchworm linear motor engaged with said proximal shaft end. wherein said inchworm linear motor advances and retracts said anode and adjust the size of the gap in response to a monitored deviation from the predetermined operating current to stabilize the x-ray output from the x-ray apparatus at a predetermined dose rate.
- 19. The apparatus of claim 12 and further including a pullback mechanism for advancing and retracting said probe relative to the target according to a predetermined therapy regimen.
- 20. The apparatus of claim 19 wherein pullback mechanism rotates said probe according to a predetermined therapy regimen.
- 21. The apparatus of claim 1 and further including a mechanism for rotating said probe according to a predetermined therapy regimen
- 22. A method for providing radiation therapy to a patient comprising:
identifying a target for radiation therapy; providing an x-ray apparatus including an anode and cathode separated by a gap for generating an x-ray emission; disposing the x-ray apparatus in proximity to the target; irradiating the target with x-rays produced by the x-ray apparatus; monitoring the operating current of the x-ray apparatus to sense deviations from a predetermined operating current value; and adjusting the gap between the anode and the cathode in response to a deviation of the operating current from its predetermined value to stabilize the x-ray emission to provide the irradiation dose rate for the therapy.
- 23. A method for treating macular degeneration comprising:
identifying choroidal neovascularization in the patient's eye for receipt of x-ray therapy; providing access to the subretinal space in the patient's eye; providing an x-ray apparatus for emitting x-rays for x-ray therapy, the apparatus having an elongate probe with a distal end including an anode and a cathode separated by gap; irradiating the target with x-rays produced by the apparatus; monitoring the operating current of the x-ray apparatus; and adjusting the gap between the anode and the cathode in response to a deviation of the operating current from a predetermined value to stabilize the x-ray emission to provide the desired irradiation dose rate for the therapy.
- 24. A method for providing x-ray radiation therapy to a tumor, said method comprising:
identifying the target in the patient's body for receipt of x-ray therapy; providing access to the target; providing an x-ray apparatus for emitting x-rays for x-ray therapy, the apparatus having an elongate probe with a distal end including an anode and a cathode separated by gap; irradiating the target with x-rays produced by the apparatus; monitoring the operating current of the x-ray apparatus; and adjusting the gap between the anode and the cathode in response to a deviation of the operating current from a predetermined value to stabilize the x-ray emission to provide the desired irradiation dose rate for the therapy.
- 25. The method of claim 24 including providing a pullback mechanism for attachment to the x-ray apparatus, the pullback mechanism advancing and retracting the probe relative to the target according to a predetermined therapy regimen.
- 26. The method of claim 24 including providing a pullback mechanism for attachment to the x-ray apparatus, the pullback mechanism rotating the probe relative to the target according to a predetermined therapy regimen.
- 27. The method of claim 26 where in the tumor is in the prostate gland.
- 28. The method of claim 24 including advancing and retracting the prove relative to the tumor.
- 29. The method of claim 28 wherein the tumor is the prostate gland.
- 30. The method of claim 29 including rotating the probe relative to the tumor.
- 31. The method of claim 30 wherein the tumor is the prostate gland.
- 32. The method of claim 24 including rotating the probe relative to the tumor.
- 33. The method of claim 32 wherein the tumor is the prostate gland.
- 34. The method of claim 24 including excising the tumor and disposing the probe distal end in the cavity created by the excised tumor.
- 35. The method of claim 34 including:
disposing a balloon assembly including a hollow shaft and an inflatable balloon in the cavity created by the excised tumor; inflating the balloon to stretch the tissue surrounding the excised tumor; and inserting the probe into the hollow shaft for radiation therapy.
- 36. The method of claim 35 wherein the tumor is in the breast or the brain.
- 37. A method for generating x-rays with operating current control comprising:
providing an anode and a field emission cathode separated by a gap; applying an electric field between the anode and cathode to generate an electron beam therebetween; monitoring the operating current to detect deviations from a preselected value; and adjusting the size of the gap to return the operating current to the reselected value upon the occurrence of a deviation
Parent Case Info
[0001] The present application claims priority from U.S. Provisional Patent Application Serial No. 60/365,712, entitled “X-ray apparatus for radiation therapy” and filed on Mar. 20, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60365712 |
Mar 2002 |
US |