Claims
- 1. An optical method comprising:
- (a) directing a source object within a first optical element to a surface of the first optical element where the source object is internally reflected;
- (b) directing the source object to a beamsplitter which reflects the source object;
- (c) directing the source object to a second optical element which magnifies and reflects the source object to form a magnified virtual image of the source object;
- (d) directing the magnified virtual image through the beamsplitter;
- (e) directing the magnified virtual image to a third optical element which magnifies the magnified virtual image to produce a compound magnified virtual image of the source object.
- 2. The optical method according to claim 1, the method further including forming the source object using a microdisplay.
- 3. The optical method according to claim 2, wherein the microdisplay has a display area of less than about 10 mm.times.10 mm.
- 4. The optical method according to claim 2, wherein the microdisplay has pixels having a size between about 7 .mu.m.times.7 .mu.m and about 15 .mu.m.times.15 .mu.m.
- 5. The optical method according to claim 2, wherein the microdisplay has pixels having a size less than about 12 .mu.m.times.12 .mu.m.
- 6. The optical method according to claim 1, wherein the first optical element is formed of an optically transparent material which has a refractive index of at least about 1.3.
- 7. The optical method according to claim 1, wherein the source object is directed to the internally reflecting surface of the first optical element at an angle of at least about 30.degree..
- 8. An optical method comprising:
- (a) directing a source object within a first optical element to a surface of the first optical element where the source object is internally reflected;
- (b) directing the source object within the first optical element to a beamsplitter which reflects the source object;
- (c) directing the source object within the first optical element to a surface of the first optical element which magnifies and reflects the source object to form a magnified virtual image of the source object;
- (d) directing the magnified virtual image through the beamsplitter out of the first optical element;
- (e) directing the magnified virtual image to a second optical element which magnifies the magnified virtual image to produce a compound magnified virtual image of the source object.
- 9. The optical method according to claim 8, the method further including forming the source object using a microdisplay.
- 10. The optical method according to claim 9, wherein the microdisplay has a display area of less than about 10 mm.times.10 mm.
- 11. The optical method according to claim 9, wherein the microdisplay has pixels having a size between about 7 .mu.m.times.7 .mu.m and about 15 .mu.m.times.15 .mu.m.
- 12. The optical method according to claim 9, wherein the microdisplay has pixels having a size less than about 12 .mu.m.times.12 .mu.m.
- 13. The optical method according to claim 8, wherein the first optical element is formed of an optically transparent material which has a refractive index of at least about 1.3.
- 14. The optical method according to claim 8, wherein the source object is directed to the internally reflecting surface of the first optical element at an angle of at least about 30.degree..
Parent Case Info
This application is a continuation of application Ser. No. 09/033,208, filed Mar. 2, 1998, now U.S. Pat. No. 5,892,624, which is a continuation of application Ser. No. 08/673,894, filed Jul. 2, 1996, now U.S. Pat. No. 5,771,124, which applications are incorporated herein by reference in their entirety.
US Referenced Citations (66)
Foreign Referenced Citations (1)
Number |
Date |
Country |
0351967 |
Jan 1990 |
EPX |
Continuations (2)
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Number |
Date |
Country |
Parent |
033208 |
Mar 1998 |
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Parent |
673894 |
Jul 1996 |
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