Claims
- 1. In a positron emission tomography camera having a plurality of detector planes positioned side-by-side around a patient area to detect radiation therefrom, each plane containing a plurality of scintillation detectors pointed to the patient area, each plane of detectors defining a plane slice through the patient area by the detectors in each plane, and each two adjacent detector planes defining an interplane slice through the patient area, the improvement in the detectors comprising,
- each detector plane including a plurality of photomultiplier tubes,
- at least three scintillation crystals positioned on each photomultiplier tube in each plane for detecting radiation from the patient area which the tubes convert into electrical pulses,
- said crystals positioned on each photomultiplier tube such that whereby each photomultiplier tube is responsive to all of said crystals on the tube,
- said crystals on each photomultiplier tube being offset from the other crystals on each photomultiplier tube, and the area of each crystal on each photomultiplier tube being different than the area of the other crystals on each photomultiplier tube so as to allow detection of which crystal is actuated and to allow the detectors to detect more interplane slices.
- 2. The apparatus of claim 1 wherein said crystals are offset by an amount equal to the length of the crystals divided by the number of rows.
- 3. In a positron emission tomography camera having a plurality of detector planes positioned side-by-side around a patient area to detect radiation therefrom, each plane containing a plurality of scintillation detectors pointed to the patient area, each plane of detectors defining a plane slice through the patient area by the detectors in each plane, and each two adjacent detector planes defining an interplane slice through the patient area, the improvement in the detectors comprising,
- each detector plane including a plurality of photomultiplier tubes,
- at least three rows of scintillation crystals on each photomultiplier tube extending across to adjacent photomultiplier tubes for detecting radiation from the patient area which the tubes convert into electrical pulses, and said photomultiplier tubes are responsive to all of said rows of crystals,
- each row of crystals on each photomultiplier tube being offset from the other rows of crystals, and the area on each crystal on each tube in each row being different than the area of the crystals on the tube in other rows so as to allow detection of which crystal is actuated and to allow the detectors to detect more interplane slices, and
- said rows of crystals being offset by an amount equal to the length of the crystals divided by the number of rows.
- 4. The apparatus of claim 3 wherein each row of crystals is offset an equal amount from the adjacent row.
- 5. The apparatus of claim 3 wherein alternate rows of crystals are offset from adjacent rows of crystals in the opposite direction from the offset of the adjacent rows.
- 6. In a positron emission tomography camera having a plurality of detector means positioned side-by-side on opposite sides of a patient area to detect radiation therefrom, each plane containing a plurality of scintillation detectors pointed to the patient area, each plane of detectors defining a plane slice through the patient area by the detectors in each plane, and each two adjacent detector planes defining an interplane slice through the patient area, the improvement in detectors comprising,
- each detector plane including a plurality of photomultiplier tubes,
- at least two rows of scintillation crystals on each photomultiplier tube extending across to adjacent photomultiplier tubes for detecting radiation from the patient area which the tubes convert into electrical pulses, and said photomultiplier tubes are responsive to all of said rows of crystals,
- each row of crystals on each photomultiplier tube being offset from the other rows of crystals, and the area of each crystal on each tube in each row being different than the area of the crystals on the tube in other rows so as to allow detection which crystal is actuated and to allow the detectors to detect more interplane slices, and
- the rows of crystals on opposite sides of the patient area being rotated ninety degrees relative to each other.
- 7. In a positron emission tomography camera having a plurality of detector planes positioned side-by-side around a patient area to detect radiation therefrom, each plane containing a plurality of scintillation detectors pointed to the patient area, each plane of detectors determining a plane slice through the patient area by the detectors in each plane and each two adjacent detector planes defining an interplane slice through the patient area, the improvement in the planes of detectors comprising,
- each detector plane including a plurality of photomultiplier tubes,
- at least two rows of scintillation crystals pointed in each plane on each photomultiplier tube extending to adjacent photomultiplier tubes for detecting radiation from the patient area which the tubes convert into electrical pulses, and said crystals positioned on the photomultiplier tubes such that each photomultiplier tube is responsive to more than one row of crystals,
- each row of crystals on each photomultiplier tube being offset from the other rows of crystals, and the area of each crystal on each tube in each row being different than the area of the crystals on the tube in other rows so as to allow detection of which crystal is actuated and to allow the detectors to detect more interplane slices, and
- said crystals being offset by an amount equal to the length of the crystals divided by the number of rows.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of my copending patent application Ser. No. 06/613,699, filed May 24, 1984, now U.S. Pat. No. 4,563,582, entitled Positron Emission Tomography Camera.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
4394576 |
Tanaka et al. |
Jul 1983 |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
613699 |
May 1984 |
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