IP Library Granted Patent US 8,568,285
Granted Patent B2
US 8,568,285 · App. 12/841,891 · Granted Oct 29, 2013

Apparatus and method for external beam radiation distribution mapping

Inventors: Cynthia E. Keppel (Norfolk, VA); Paul Gueye (Hampton, VA); Christopher Sinesi (Virginia Beach, VA)
Assignee: Hampton University
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Quick Facts
Patent No.
US 8,568,285
App. No.
12/841,891
Granted
Oct 29, 2013
Kind
B2
Abstract

An apparatus and method for in vivo and ex vivo control, detection and measurement of radiation in therapy, diagnostics, and related applications accomplished through scintillating fiber detection. One example includes scintillating fibers placed along a delivery guide such as a catheter for measuring applied radiation levels during radiotherapy treatments, sensing locations of a radiation source, or providing feedback of sensed radiation. Another option is to place the fibers into a positioning device such as a balloon, or otherwise in the field of the radiation delivery. The scintillating fibers provide light output levels correlating to the levels of radiation striking the fibers and comparative measurement between fibers can be used for more extensive dose mapping. Adjustments to a radiation treatment may be made as needed based on actual and measured applied dosages as determined by the fiber detectors. Characteristics of a radiation source may also be measured using scintillating materials.

Claims (12)

1. A radiation detector comprising:

a first set of scintillating fibers; and

a second set of scintillating fibers arranged at an angle to the first set of scintillating fibers,

wherein at least one first signal from the first set of scintillating fibers and at least one second signal from the second set of scintillating fibers provide an indication of detected levels of incident radiation, a location of the radiation being associated with the intersection of respective first set of scintillating fibers and second set of scintillating fibers producing the respective detected at least one first signal and at least one second signal.

2. The radiation detector of claim 1 , wherein the at least one first signal and at least one second signal provide a basis for producing a radiation map or calibrating a radiation source.

3. The radiation detector of claim 1 , further comprising a third set of scintillating fibers arranged at an angle to the first set of scintillating fibers and the second set of scintillating fibers.

4. The radiation detector of claim 1 , wherein the angle is about ninety degrees.

5. The radiation detector of claim 1 , wherein the incident radiation comprises radiation associated with a therapeutic or a diagnostic delivery including one of the following:

diagnostic x-rays, therapeutic x-rays, x-ray fluoroscopy, positron emission tomography (PET), CT, electron beam, hadron beam, single photon emission computed tomography (SPECT).

6. A radiation detector comprising:

at least one positioning device having at least one expandable portion for use in therapy or diagnostic procedures; and

scintillating material, wherein the at least one positioning device includes the scintillating material arranged along a wall of the at least one expandable portion, the scintillating material configured to be coupled to a photo detector for detecting incident levels of radiation in a balloon-assisted procedure.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 22, 2010
From: KEPPEL, CYNTHIA E.; GUEYE, PAUL; SINESI, CHRISTOPHER
To: HAMPTON UNIVERSITY
Reel/Frame 024728/0977 →
Continuity (3)
Continuation In Part 12647920 · Dec 28, 2009
Continuation 11293161 · Dec 5, 2005
Related Publication 20100288934A1 · Nov 18, 2010