Claims
- 1. A self-contained, electronic radioscopic imaging system for investigating an object comprising:
- a remote X-ray sensor positioned on one side of the object under investigation so that X-rays originating from the other side of the object pass through the object and impinge thereon, the remote X-ray sensor including a scintillating screen that produces flashes of radiation when impinged by an X-ray, a CCD camera positioned off line from the X-rays that strike the scintillating screen, optical path means for directing the flashes of radiation from the scintillating screen to the CCD camera, and pixel integrating means for integrating the flashes of radiation to produce an integrated pixel signal for each pixel area of the scintillating screen, which integrated pixel signal represents the sum of all the flashes of radiation produced by X-rays that pass through the object in its respective pixel area over a prescribed time period; and
- a self-contained, display/control unit coupled to the X-ray sensor, the display/control unit including analog-to-digital conversion means for converting the integrated pixel image signal from each respective pixel area into a digital signal, digital image signal processing means for processing the converted pixel image signal from each respective pixel area and converting all such integrated pixel image signals to a full-scale digitized image signal, and a display for visually presenting the full-scale digitized image signal thereon.
- 2. The self-contained imaging system of claim 1 wherein said display/control unit includes modem means for transferring the full-scale digitized image signal to a remote location.
- 3. The self-contained imaging system of claim 2 wherein said display/control unit is housed in a transportable housing.
- 4. The self-contained imaging system of claim 1 wherein the optical path means includes a front surface mirror (44) and a lens (46) the front surface mirror being positioned behind the scintillating screen (42) in line with the X-rays that strike the scintillating screen so as to direct the image of the scintillating screen to the CCD camera through the lens, the front surface mirror being made of a material through which X-rays readily pass.
- 5. The self-contained imaging system of claim 4 further including a shield (50) made from an X-ray absorbing material positioned around the CCD camera and pixel integrating means to shield the CCD camera and pixel integrating means from stray X-rays.
- 6. The self-contained imaging system of claim 5 wherein the scintillating screen has approximate dimensions of at least 10.3 inches wide by 12 inches high.
Parent Case Info
This is a division of application Ser. No. 08/773,483, filed Dec. 23, 1996 now U.S. Pat. No. 5,828,726 which is a Continuation of application Ser. No. 08/494,251, filed Jun. 23, 1995, now U.S. Pat. No. 5,608,774.
US Referenced Citations (12)
Foreign Referenced Citations (1)
Number |
Date |
Country |
0429977 |
Nov 1990 |
EPX |
Non-Patent Literature Citations (5)
Entry |
Street, et al., "Charge-Coupled Devices and Solid State Optical Sensors IV", SPIE, 2172:144-154 (Feb. 7-8, 1994). |
Street, et al., "Amorphous Silicon Arrays Develop a Medical Image", IEEE, pp: 38-42 (Jul. 1993). |
Tannas, "Evolution of Flat-Panel Displays", Proceedings of the IEEE, 82:4, pp. 499-509 (Apr. 1994). |
Antonuk, et al., "Considerations for High Frame Rate Operation of Two-Dimensional a-Si:H Imaging Arrays", Materials Research Society Symposium Proceedings, 297:945-950 (1993). |
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Divisions (1)
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Number |
Date |
Country |
Parent |
773483 |
Dec 1996 |
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Continuations (1)
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Number |
Date |
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Parent |
494251 |
Jun 1995 |
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