Claims
- 1. An optical reproduction system comprising:
- four successive total reflection surfaces for rotating an image of an object 90.degree. relative to the object to be reproduced on an image plane parallel to a plane of the object, wherein said reflection surfaces establish an optical path having an incoming optical axis and a separate outgoing optical axis, wherein said incoming optical axis and said outgoing optical axis both rest along a single straight line, and wherein an output image from a fourth of said four successive total reflection surfaces is a non-inverted image which is rotated 90.degree. relative to the object.
- 2. An optical reproduction system according to claim 1, wherein said reflection surfaces include:
- a first reflecting surface in the optical path which produces a first mirror image of the incoming optical axis and this first mirror image of the incoming optical axis together with the incoming optical axis defines a first plane,
- a second reflecting surface that follows the first reflecting surface in the optical path and which produces a second mirror image of the incoming optical axis such that this second mirror image of the incoming optical axis leaves the first plane so that the first and second mirror images of the incoming optical axis define a second plane different from the first plane,
- a third reflecting surface that follows the second reflecting surface in the optical path and which produces a third mirror image of the incoming optical axis such that this third mirror image of the incoming optical axis leaves the second plane and intersects said single straight line, and
- a fourth reflecting surface following the third reflecting surface in the optical path which produces a fourth mirror image of the incoming optical axis, said fourth mirror image being produced on the outgoing optical axis.
- 3. An optical reproduction system according to claim 2, wherein the incoming optical axis defines an angle of incidence of 45.degree. to 60.degree. with respect to a perpendicular to the first reflecting surface, a perpendicular to the second reflecting surface has an azimuth of 45.degree. to 120.degree. relative to the first plane and an elevation of 40.degree. to 70.degree. relative to the azimuth plane, a perpendicular to the third reflecting surface has an azimuth of 60.degree. to 85.degree. relative to the first plane and has an elevation of -10.degree. to 45.degree. relative to the azimuth plane, and a perpendicular to the fourth reflecting surface has an azimuth of 120.degree. to 160.degree. relative to the first plane and an elevation of -15.degree. to -45.degree. relative to the azimuth plane.
- 4. An optical reproduction system according to claim 3, wherein the incoming optical axis defines an angle of incidence of 60.degree. with respect to the perpendicular to the first reflecting surface, the perpendicular to the second reflecting surface has an azimuth of 109.734.degree. relative to the first plane and an elevation of 64.296.degree. relative to the azimuth plane, the perpendicular to the third reflecting surface has an azimuth of 70.529.degree. relative to the first plane and an elevation of 16.779.degree. relative to the azimuth plane, and the perpendicular to the fourth reflecting surface has an azimuth of 150.degree. relative to the first plane and an elevation of -35.26.degree. relative to the azimuth plane.
- 5. An optical reproduction system according to claim 4, wherein the ratio of the lengths of the optical paths from the first reflecting surface to the second reflecting surface, from the second reflecting surface to the third reflecting surface, and from the third reflecting surface to the fourth reflecting surface is (.sqroot.2): 1:1.
- 6. An optical reproduction system according to claim 5, wherein a standardized length defined as 1 of the optical path is about 40 mm.
- 7. An optical reproduction system according to claim 3, wherein the incoming optical axis defines an angle of incidence of 60.degree. with respect to a perpendicular to the first reflecting surface, a perpendicular to the second reflecting surface has an azimuth of 109.734.degree. relative to the first plane and an elevation of 64.296.degree. relative to the azimuth plane, a perpendicular to the third reflecting surface has an azimuth of 81.548.degree. relative to the first plane and an elevation of -4.850.degree. relative to the azimuth plane, and a perpendicular to the fourth reflecting surface has an azimuth of 121.482.degree. relative to the first plane and an elevation of -16.778.degree. relative to the azimuth plane.
- 8. An optical reproduction system according to claim 7, wherein a ratio of lengths of optical paths from the first reflecting surface to the second reflecting surface, from the second reflecting surface to the third reflecting surface, and from the third reflecting surface to the fourth reflecting surface is 1:(.sqroot.2): 1.
- 9. An optical reproduction system according to claim 8, wherein a standardized length defined as 1 of the optical path is about 40 mm.
- 10. An optical reproduction system according to claim 2, wherein the incoming optical axis defines an angle of incidence of 60.degree. with respect to a perpendicular to the first reflecting surface, a perpendicular to the second reflecting surface has an azimuth of 109.734.degree. relative to the first plane and an elevation of 64.296.degree. relative to the azimuth plane, a perpendicular to the third reflecting surface has an azimuth of 81.548.degree. relative to the first plane and an elevation of -4.850.degree. relative to the azimuth plane, and a perpendicular to the fourth reflecting surface has an azimuth of 121.482.degree. relative to the first plane and an elevation of -16.778.degree. relative to the azimuth plane.
- 11. An optical reproduction system according to claim 10, wherein a ratio of lengths of optical paths from the first reflecting surface to the second reflecting surface, from the second reflecting surface to the third reflecting surface, and from the third reflecting surface to the fourth reflecting surface is 1:(.sqroot.2): 1.
- 12. An optical reproduction system according to claim 11, wherein a standardized length defined as 1 of the optical path is about 40 mm.
- 13. An optical reproduction system according to claim 2, wherein the incoming optical axis defines an angle of incidence of 45.degree. with respect to the perpendicular to the first reflecting surface, the perpendicular to the second reflecting surface has an azimuth of 138.093.degree. relative to the first plane and an elevation of 45.degree. relative to the azimuth plane, the perpendicular to the third reflecting surface has an azimuth of 64.082.degree. relative to the first plane and an elevation of 31.821.degree. relative to the azimuth plane, and the perpendicular to the fourth reflecting surface has an azimuth of 154.241.degree. relative to the first plane and an elevation of -38.268.degree. relative the azimuth plane.
- 14. An optical reproduction system according to claim 13, wherein a ratio of lengths of optical paths from the first reflecting surface to the second reflecting surface, from the second reflecting surface to the third reflecting surface, and from the third reflecting surface to the fourth reflecting surface is 1:0.7:1.142.
- 15. An optical reproduction system according to claim 14, wherein a standardized length defined as 1 of the optical path is about 40 mm.
- 16. An optical reproduction system according to claim 2, further including: a lens to compensate for chromatic defects or optical defects of a geometric kind, said lens being positioned in front of the first reflecting surface or behind the fourth reflecting surface relative to said optical path.
- 17. An optical reproduction system according to claim 1, wherein said four reflection surfaces form a first half-system and a second half-system identical to said first half-system, each with two of said four reflection surfaces, said second half-system being arranged with a configuration derived from a configuration of the first half-system with the first half-system being reflected onto a separating plane vertically located with respect to the optical path and a reflection of the first half-system then being rotated a given angle around the outgoing optical axis.
- 18. An optical reproduction system according to claim 1, wherein each of said reflection surfaces is a metal-coated glass surface formed with glass having a refraction index of about 1.7.
Priority Claims (1)
Number |
Date |
Country |
Kind |
92810683 |
Sep 1992 |
EPX |
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Parent Case Info
This application is a continuation, of application Ser. No. 08/115,663 filed Sep. 3, 1993 now abandoned.
US Referenced Citations (17)
Foreign Referenced Citations (5)
Number |
Date |
Country |
0142959 |
May 1985 |
EPX |
0157325 |
Oct 1985 |
EPX |
0323845 |
Jul 1989 |
EPX |
3248807 |
Jun 1983 |
DEX |
9102995 |
Mar 1991 |
WOX |
Non-Patent Literature Citations (1)
Entry |
"Bauelemente der Optik", H. Naumann/G. Schroder, Carl Hanser Verlag Munchen/Wien 3. Auflage, 1983, p. 171. |
Continuations (1)
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Number |
Date |
Country |
Parent |
115663 |
Sep 1993 |
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