Claims
- 1. A digital radiography system comprising:an X-ray source irradiating an object to be inspected with X-ray; an X-ray image intensifier tube which receives the X-rays which pass through the object and converts the received X-rays into an optical image, a diameter of an input image of said X-ray image intensifier tube ranging from 305 to 406 mm, a diameter of an output image of said X-ray image intensifier tube ranging from 58 to 62 mm, and a ratio of the diameter of the input image to the diameter of the output image ranging from 5 to 7; a video camera which picks up the output image, said video camera having a fluoroscopic mode and a radiographic imaging mode, said fluoroscopic mode monitoring a real time X-ray image of the object irradiated by the X-rays, and said radiographic imaging mode recording an X-ray image of the object irradiated by X-rays, said video camera having an image pickup surface thereof which is the same for both said fluoroscopic mode and said radiographic imaging mode; an optical system including a plurality of lenses, said optical system being disposed between said X-ray image intensifier tube and said video camera so as to output substantially the same size output optical image of the X-ray image intensifier tube on the video camera in both of said fluoroscopic mode and said radiographic imaging mode; an image processor which converts an output from said video camera into digital image data; and an image display which displays an X-ray image by reading out said digital image data from said image processor.
- 2. A digital radiography system according to claim 1, wherein at least one mode of said video camera includes at least one of 525, 1050, 2100, and 4200 lines therein.
- 3. A digital radiography system according to claim 1, wherein said optical, system includes a combination of a mirror and said plurality of lenses.
- 4. A digital radiography system according to claim 1, wherein a size of an image detection part constituted of said X-ray image intensifier tube and said video camera ranges from 700 to 800 mm in a direction parallel to a center axis of said X-ray image intensifier tube.
- 5. A digital radiography system comprising:an X-ray source irradiating an object to be inspected with X-rays; an X-ray image intensifier tube which receives the X-rays which pass through the object and converts the received X-rays into an output optical image, a diameter of an input image of said X-ray image intensifier tube ranging from 305 to 406 mm, a diameter of an output image of said X-ray image intensifier tube ranging from 58 to 62 mm, and a ratio of the diameter of the input image to the diameter of the output image ranging from 5 to 7; a video camera which picks up the output optical image of said X-ray image intensifier tube, said video camera having a same image pick up size for both of a fluoroscopic mode and a radiographic image mode; an optical system being disposed between said X-ray image intensifier and said video camera so as to output substantially the same size output optical image of the X-ray image intensifier tube on the video camera in all modes thereof; an image processor which converts an output said video camera into digital image data; and an image display which displays an X-ray image by reading out said digital image data from said image processor.
- 6. A digital radiography system according to claim 5, wherein a optical system includes a combination of a mirror and said plurality of lenses.
- 7. A digital radiography system according to claim 5, wherein a size of an image detection part constituted of said X-ray image intensifier tube and said video camera ranges from 700 to 800 mm in a direction parallel to a center axis of said X-ray image intensifier tube.
- 8. A digital radiography system comprising:an x-ray source irradiating an object to be inspected with X-rays; an X-ray image intensifier tube which receives the X-rays which pass through the object and converts the received X-rays into an output optical image, a diameter of an input image of said x-ray image intensifier tube ranging from 254 to 457 mm, a diameter of an output image of said X-ray image intensifier tube ranging from 50 to 90 mm, and a ratio of the diameter of the input image to the diameter of the output image ranging from 4 to 8; a video camera which picks up the output optical image of said X-ray image intensifier tube, said video camera having a same image pick up size for both of a fluoroscopic mode and a radiographic imaging mode; an optical system including a plurality of lenses, said optical system being disposed between said X-ray image intensifier tube and said video camera so as to output substantially the same size output optical image of the X-ray image intensifier tube on the video camera in both of said fluoroscopic mode and said radiographic imaging mode; an image processor which converts an output from raid video camera into a digital image data; and an image display which displays an X-ray image by reading out said digital image data from said image processor.
- 9. A digital radiography system according to claim 8, wherein said optical system includes a combination of a mirror and said plurality of lenses.
- 10. A digital radiography system according to claim 8, wherein a size of an image detection part constituted of said X-ray image intensifier tube and said video camera ranges from 700 to 800 mm in a direction parallel to a center axis of said X-ray image intensifier tube.
- 11. A digital radiography system comprising:an X-ray source irradiating an object to be inspected with X-rays; an X-ray image intensifier tube which receives the X-rays which pass through the object and converts the received X-rays into an output optical image, a diameter of an image input area of said X-ray image intensifier tube ranging from 305 to 406 mm, a diameter of an image output area of said X-ray image intensifier tube ranging from 58 to 62 mm, and a ratio of the diameter of the image input area to the diameter of the image output area ranging from 5 to 7; a video camera which picks up the output optical image of said X-ray image intensifier tube, said video camera having a same image pick up size for both of a fluoroscopic mode and a radiographic imaging mode; an optical system including a plurality of lenses, said optical system being disposed between said X-ray image intensifier tube and said video camera so as to output substantially the same size output optical image formed in the image output area of the X-ray image intensifier tube on the video camera in both of said fluoroscopic mode and said radiographic imaging mode; an image processor which converts an output from said video camera into digital image data; and image display which displays an X-ray image by reading out said digital data from said image processor.
- 12. A digital radiography system comprising:an x-ray source irradiating an object to be inspected with X-rays; an X-ray image intensifier tube which receives the X-rays which pass through the object and converting the received X-rays into an output optical image, a diameter of an image input area of said X-ray image intensifier tube ranging from 254 to 457 mm, a diameter of an image output area of said X-ray image intensifier tube ranging from 50 to 90 mm, and a ratio of the diameter of the image input area to the diameter of the image output area ranging from 4 to 8; a video camera which picks up the output optical image of said X-ray image intensifier tube, said video camera having a same image pick up size for both of a fluoroscopic mode and a radiographic image mode; an optical system including a plurality of lenses, said optical system being disposed between said X-ray image intensifier tube and said video camera so as to output substantially the same size output optical image formed in the image output area of the X-ray image intensifier tube on the video camera in both said fluoroscopic mode and said radiographic imaging mode; an image processor which converts an output from said video camera into digital image data; and an image display which displays an X-ray image by reading out said digital image data from said image processor.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2-308906 |
Nov 1990 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATION
This is a continuation of U.S. application Ser. No. 08/400,287, filed Mar. 3, 1995, which is a continuation of U.S. application Ser. No. 08/141,722, filed Oct. 25, 1993, now abandoned, which is a continuation of U.S. application Ser. No. 07/791,378, filed Nov. 14, 1991, now abandoned, and relates to U.S. application Ser. No. 08/713,178, filed Sep. 12, 1996, now U.S. Pat. No. 5,875,226, the subject matter of which is incorporated by reference herein.
US Referenced Citations (11)
Number |
Name |
Date |
Kind |
3675027 |
Tsuda et al. |
Jul 1972 |
A |
3835314 |
Grossel et al. |
Sep 1974 |
A |
3839634 |
Buchmann |
Oct 1974 |
A |
3896331 |
Enck, Jr. et al. |
Jul 1975 |
A |
4204225 |
Mistretta |
May 1980 |
A |
4852139 |
Sandrik et al. |
Jul 1989 |
A |
4881124 |
Yokouchi et al. |
Nov 1989 |
A |
4942468 |
Yokouchi et al. |
Jul 1990 |
A |
5022063 |
Yokouchi et al. |
Jun 1991 |
A |
5119409 |
Nields et al. |
Jun 1992 |
A |
5875226 |
Yokouchi et al. |
Feb 1999 |
A |
Foreign Referenced Citations (1)
Number |
Date |
Country |
32 11 944 |
Nov 1982 |
DE |
Non-Patent Literature Citations (1)
Entry |
Real-Time Radiologic Imaging: Medical and Industrial Applications, ATSM Technical Publication 716, D. A. Garrett et al, pp. 54-57. |
Continuations (3)
|
Number |
Date |
Country |
Parent |
08/400287 |
Mar 1995 |
US |
Child |
09/883192 |
|
US |
Parent |
08/141722 |
Oct 1993 |
US |
Child |
08/400287 |
|
US |
Parent |
07/791378 |
Nov 1991 |
US |
Child |
08/141722 |
|
US |