THIN PLATE IMAGING DEVICE
20170330344 ยท 2017-11-16
Assignee
Inventors
Cpc classification
G02B6/4298
PHYSICS
G02B6/4295
PHYSICS
International classification
Abstract
A thin plate imaging device in accordance with the present invention comprises a guide light plate, at least an imaging unit, and at least a photosensitive unit; the guide light plate and the imaging unit are utilized to allow lights to conduct total internal reflective or reflective propagation in a dimension, the photosensitive unit is placed in the path of the total internal reflective or reflective propagation and disposed at the image focus position of the imaging unit; clear images can be obtained without moving the imaging unit or the photosensitive unit back and forth, and objects with different object distances can be imaged on different spots of the photosensitive unit such that relative distances of the objects can be determined by image signals obtained via the photosensitive unit directly.
Claims
1. A thin plate imaging device, comprising: a guide light plate at least having an end surface; at least an imaging unit; and at least a photosensitive unit disposed at a side corresponding to said end surface of the guide light plate; wherein said imaging unit allows lights to conduct total internal reflective or reflective propagation in a dimension, said photosensitive unit is placed in a path of the total internal reflective or reflective propagation and disposed at an image focus position of said imaging unit to image objects with different object distances on different spots in said photosensitive unit.
2. The thin plate imaging device as defined in claim 1, wherein said photosensitive unit is joined to an end surface of said guide light plate.
3. The thin plate imaging device as defined in claim 1 further comprises at least a reflection lens; said photosensitive unit is joined to said reflection lens; an end surface of said guide light plate is provided with a function of light reflection and parallel to said reflection lens and said photosensitive unit respectively; said imaging unit is near said guide light plate; said photosensitive unit provides a partially reflective transparent membrane corresponding to an end surface of the guide light plate; light emits from or reflected by an object is guided into said guide light plate to conduct reflective propagation between the guide light plate and said reflection lens after being focus-imaged by said imaging unit so as to image on said photosensitive unit.
4. The thin plate imaging device as defined in claim 2, wherein said imaging unit is joined to said guide light plate; light emits from or reflected by an object is guided into said guide light plate to conduct the total internal reflective or reflective propagation and focus-imaged by an imaging unit to image on said photosensitive unit.
5. The thin plate imaging device as defined in claim 2, wherein said imaging unit is near said guide light plate; light emits from or reflected by an object is focused by said imaging unit and then guided into said guide light plate to conduct the total internal reflective or reflective propagation and image on said photosensitive unit.
6. The thin plate imaging device as defined in claim 4, wherein said imaging unit is integrated with said guide light plate as a single piece.
7. The thin plate imaging device as defined in claim 6, wherein said imaging unit comprises a first imaging unit and a second imaging unit; the light emits from or reflected by the object and is guided into said guide light plate to conduct the total internal reflective or reflective propagation and focus-image on said photosensitive unit via the first imaging unit and the second imaging unit sequentially; the second imaging unit is a curved reflective imaging surface.
8. The thin plate imaging device as defined in claim 6, wherein said imaging unit is a curved reflective imaging surface; the light is guided into said guide light plate to conduct the total internal reflective or reflective propagation and focus-image on said photosensitive unit via said curved reflective imaging surface.
9. The thin plate imaging device as defined in claim 1, wherein said guide light plate is a flat plate; said imaging unit is axis symmetrical or asymmetrical.
10. The thin plate imaging device as defined in claim 1 further comprises a microprocessor; said microprocessor electrically connects with at least a photosensitive unit to process image signals output by said photosensitive unit; images of different cross-sections of said object are taken with respect to relative motion of said object so as to obtain an entire image of said object through said microprocessor combining and processing a distance of the relative motion and the images of the different cross-sections.
11. The thin plate imaging device as defined in claim 2 further comprises a microprocessor; said microprocessor electrically connects with at least a photosensitive unit to process image signals output by said photosensitive unit; images of different cross-sections of said object are taken with respect to relative motion of said object so as to obtain an entire image of said object through said microprocessor combining and processing a distance of the relative motion and the images of the different cross-sections.
12. The thin plate imaging device as defined in claim 3 further comprises a microprocessor; said microprocessor electrically connects with at least a photosensitive unit to process image signals output by said photosensitive unit; images of different cross-sections of said object are taken with respect to relative motion of said object so as to obtain an entire image of said object through said microprocessor combining and processing a distance of the relative motion and the images of the different cross-sections.
13. The thin plate imaging device as defined in claim 4 further comprises a microprocessor; said microprocessor electrically connects with at least a photosensitive unit to process image signals output by said photosensitive unit; images of different cross-sections of said object are taken with respect to relative motion of said object so as to obtain an entire image of said object through said microprocessor combining and processing a distance of the relative motion and the images of the different cross-sections.
14. The thin plate imaging device as defined in claim 5 further comprises a microprocessor; said microprocessor electrically connects with at least a photosensitive unit to process image signals output by said photosensitive unit; images of different cross-sections of said object are taken with respect to relative motion of said object so as to obtain an entire image of said object through said microprocessor combining and processing a distance of the relative motion and the images of the different cross-sections.
15. The thin plate imaging device as defined in claim 6 further comprises a microprocessor; said microprocessor electrically connects with at least a photosensitive unit to process image signals output by said photosensitive unit; images of different cross-sections of said object are taken with respect to relative motion of said object so as to obtain an entire image of said object through said microprocessor combining and processing a distance of the relative motion and the images of the different cross-sections.
16. The thin plate imaging device as defined in claim 7 further comprises a microprocessor; said microprocessor electrically connects with at least a photosensitive unit to process image signals output by said photosensitive unit; images of different cross-sections of said object are taken with respect to relative motion of said object so as to obtain an entire image of said object through said microprocessor combining and processing a distance of the relative motion and the images of the different cross-sections.
17. The thin plate imaging device as defined in claim 8 further comprises a microprocessor; said microprocessor electrically connects with at least a photosensitive unit to process image signals output by said photosensitive unit; images of different cross-sections of said object are taken with respect to relative motion of said object so as to obtain an entire image of said object through said microprocessor combining and processing a distance of the relative motion and the images of the different cross-sections.
18. The thin plate imaging device as defined in claim 9 further comprises a microprocessor; said microprocessor electrically connects with at least a photosensitive unit to process image signals output by said photosensitive unit; images of different cross-sections of said object are taken with respect to relative motion of said object so as to obtain an entire image of said object through said microprocessor combining and processing a distance of the relative motion and the images of the different cross-sections.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION OF THE INVENTION
[0030] Referring to
[0031] When a first object 41 and a second object 42 emit or reflect lights 51, 52 respectively, the lights 51, 52 are guided to a first image focus position 61 and a second image focus position 62 corresponding to the first object 41 and the second object 42 respectively via the guide light plate 11 and the imaging unit 21 as shown in
[0032] The lights 51, 52 in the present embodiment conduct total reflective or reflective propagation between the two end surfaces 111; the imaging unit 21 and the photosensitive unit 30 are placed in the total reflective or reflective path of the lights 51, 52 with the photosensitive unit 30 being parallel to one of the end surfaces 111 of the guide light plate 11 and located at an image focus position of the imaging unit 21; Hence, the imaging unit 21 is capable of focusing and imaging the lights 51, 52 on the photosensitive unit 30.
[0033] Referring to
[0034] When a first object 41 and a second object 42 emit or reflect lights 51, 52 respectively, the lights 51, 52 are focused by the imaging unit 22, guided to a first image focus position 61 and a second image focus position 62 corresponding to the first object 41 and the second object 42 respectively via the guide light plate 12 as shown in
[0035] The lights 51, 52 in the present embodiment are focused by the imaging unit 22, then enter the guide light plate 12, and cause total reflective or reflective propagation between the two end surfaces 121; the photosensitive unit 30 is placed in the path of the total reflection or reflection of the lights 51, 52 and disposed at an image focus position of the imaging unit 22; hence, the lights 51, 52 can be focused by the imaging unit 22, conduct total reflection or reflection between the two end surfaces 121, 121 of the guide light plate 12, and imaged on the photosensitive unit 30.
[0036] Referring to
[0037] When a first object 41 and a second object 42 emit or reflect lights 51, 52 respectively, the lights 51, 52 are guided to a first image focus position and a second image focus position corresponding to the first object 41 and the second object 42 respectively via the guide light plate 13, the first imaging unit 23 and the second imaging unit 24; a first sensing zone 31 and a second sensing zone 32 of the photosensitive unit 30 sense images corresponding to the first object 41 and the second object 42 as shown in
[0038] The lights 51, 52 in the present embodiment conduct total reflective or reflective propagation between the two end surfaces of the guide light plates 13; the first imaging unit 23, the second imaging unit 24 and the photosensitive unit 30 are placed in the total reflection or reflection path of the lights 51, 52 with the photosensitive unit 30 being located at an image focus position of the first imaging unit 23 and an image focus position of the second imaging unit 24; hence, the lights 51,52, which are guided into the guide light plate 13 to conduct the total reflective or reflective propagation, are focus-imaged on the photosensitive unit 30 via the first imaging unit 23 and the second imaging unit 24 sequentially; the first imaging unit 23 is an imaging lens; the second imaging unit 24 is a curved reflective imaging surface.
[0039] Referring to
[0040] When a first object 41 and a second object 42 emit or reflect lights 51, 52 respectively, the lights 51, 52 are guided to a first image focus position and a second image focus position corresponding to the first object 41 and the second object 42 respectively via the guide light plate 14 and the imaging unit 25; a first sensing zone 31 and a second sensing zone 32 in the photosensitive unit 30 sense images corresponding to the first object 41 and the second object 42 as shown in
[0041] The lights 51, 52 in the present embodiment conduct total reflective or reflective propagation between the two end surfaces; the imaging unit 25 and the photosensitive unit 30 are placed in the total reflection or reflection path of the lights 51, 52 with the photosensitive unit 30 being located at an image focus position of the imaging unit 25; hence, the lights 51,52, which are guided into the guide light plate 15 to conduct the total reflective or reflective propagation, are focus-imaged on the photosensitive unit 30 via the imaging unit 25. The imaging unit 25 is a curved reflective imaging surface.
[0042] Referring to
[0043] When a first object 41 and a second object 42 emit or reflect lights 51, 52 respectively, the lights 51, 52 are focused by the imaging unit 26 before being guided between the guide light plate 15 and the photosensitive unit 30 with the reflection lens 71 to conduct reflective propagation, then guided to a first image focus position 61 and a second image focus position 62 corresponding to the first object 41 and the second object 42 respectively before being imaged on the photosensitive unit 30; the first object 41 and the second object 42, which are disposed with different object distances, can be imaged on different spots of the photosensitive unit 30.
[0044] Referring to
[0045] The thin plate imaging device in accordance with the present invention is capable of taking an image of a cross-section of an object; Further, it is capable of taking images of different cross-sections of an object if the object moves relative to the thin plate imaging device of the present invention; Moreover, the entire image of the object can be taken by the thin plate imaging device via the microprocessor processing and combining distances with respect to the relative motion and combination of the different cross-section images.
[0046] The thin plate imaging device of the present invention has the guide light plate and the imaging unit to allow the light to conduct the total internal reflective or reflective propagation in one dimension; the photosensitive unit is disposed in the path of the total internal reflection or the reflection and located at the image focus position such that clear images can be obtained without moving the imaging unit or the photosensitive unit back and forth, and objects with different object distances can be imaged on different spots of the photosensitive unit; hence, image signals obtained via the photosensitive unit can be utilized to determine relative distances of the objects directly.
[0047] The thin plate imaging device of the present invention is designed to have the imaging unit joined to the guide light plate being flat in one dimension and maintaining a focus imaging function in another dimension; it is not necessary for the photosensitive unit being perpendicular to the optical axis, instead, it can be flatly adhered to the guide light plate and parallel to the optical axis; after the light entering the imaging unit, a refractive or reflective imaging light path is formed in one dimension and a total internal reflective or reflective propagation in another dimension to focus-image on the photosensitive unit ultimately for objects with different object distances being capable of being imaged on different spots in the photosensitive unit such that image signals taken via the photosensitive unit can be utilized to determine relative distances of the objects directly to improve deficiency of the prior art of the optical imaging technique with which it is impossible to determine distances of the objects corresponding to the imaging lens directly via the image signals of the sensor.
[0048] Although the invention has been described in relation to its preferred embodiments, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.