1. Field of the Invention
The present invention relates to a penta-mirror multi-reflection scanning module for a scanned light beam, in particular to an image scanning module having five reflecting mirrors applied to related equipments such as flatbed scanners or multi-function printers.
2. Description of the Related Art
In recent years, scanner, particularly image scanner, becomes a major computer peripheral product, and the image scanner may capture an image of an object such as a document, a textual page, a photo, a film or even a flat object. The image may be captured by a way of projecting a light onto the document first, such that the light reflected by the document forms an image beam, and then using a plurality of reflection mirrors to reflect and change its optical path, and finally the image beam is focused at the image sensor by the pickup lens for sensing the image. Since the content of the document is generally composed of texts or graphics, areas with different brightness will be formed. Thus, the reflected image beams have different intensities as the projecting positions of the reflected image beams vary. If the image beam is focused at a charge-coupled device, (CCD) image sensor or a complementary metal oxide semiconductor (CMOS) image sensor, a sensing element converts the focused image beam into a corresponding photoelectric signal, and then a scanning software program reads data, and finally a digital image is formed. The scanned image may be stored into a magnetic device (such as a hard disk) or an optical device (such as an optical disk). Standard and common images are stored in a tagged image file format (TIFF), an encapsulated postscript (EPS) format, a bitmap image file format (BMP), a graphics interchange format (GIF) and a PC paintbrush exchange (PCX) format, etc. A commercial scanner such as a flat-bed scanner is used for scanning photos or printed matters. The scanner includes a cover glass disposed thereon for placing a desired scanning document, and a scanning module is moved by a rail to scan the document sequentially column by column, and convert the images into digital data, and this is a common scanner. Related equipments of a scanner manufactured by a similar principle such as multi-function printers scan an image by moving the document with respect to the scanning module.
With reference to
In the prior art, if a pickup lens of a different effective focal length (EFL) causes a change of the total tracking length (TTL) or an image scanning module is applied to a different branded scanner, or the scanning size of a scanner is changed, such as a scanner of A4/A3 size, it is necessary to rearrange the distances as well as angles of each reflecting mirror. However, it is necessary to adjust the angle and position of each reflecting mirror in the limited space, such that the image beam may be focused by the pickup lens. In addition, it is necessary to adjust the angle and position of each reflecting mirror in the limited space to reduce the ghost image phenomenon. To widely use scanning modules with the aforementioned conditions, the prior art rearranges the angle and the position of the reflecting mirrors, or even changes the optical path of the reflecting mirrors. This adjusting method will require another mold for the manufacture of the frame, and thus will incur a higher manufacturing cost. During assembling, the angles of reflection of most reflecting mirrors satisfy the optical path to eliminate the ghost image and require an adjustment, so that it is difficult to lower the assembling cost. Furthermore, the application will be restricted and inconvenient. Therefore, an image scanning module with a minimal adjustment of the reflecting mirrors may be developed easily and simply to meet the urgent needs for different branded scanners, scanners of A4/A3 sizes, or pickup lenses with different effective focal length and total tracking length (TTL), etc.
In view of the aforementioned shortcomings of the prior art, the present invention provides a multi-reflection image scanning module having five reflecting mirrors to increase the depth of field and overcomes the applicability issue of the prior art.
To achieve the foregoing objectives, the present invention provides an image scanning module having five reflecting mirrors for multi-reflections in accordance with the present invention, and an image of a scanning document is reflected by the five reflecting mirrors to change its direction and path and increase its optical tracking length, and an angle of the five reflecting mirrors is arranged to prevent an overlapped light beam from entering into a pickup lens so as to reduce a ghost image phenomenon. The image scanning module having five reflecting mirrors for multi-reflections in accordance with the present invention comprises at least one light source, five reflecting mirrors, a pickup lens, an image sensor and a frame, wherein at least two of the five reflecting mirrors have two or more times of multi-reflections, and its optical path is Li(Obj)→M1→M2→M3→M4→M3→M2→M5→Lo(Img), and satisfies the optical conditions of:
where, p is the total numbers of reflections along the optical path; TTL is the total tracking length TTL=Di+D1+D2+D3+D4+D5+D6+DO; Drefl is the total between reflecting mirrors and Drefl=D1+D2+D3+D4+D5+D6; and αi is an inclined angle between the normal line of a reflecting plane of the ith reflecting mirror along the optical path and the +Z-axis.
Therefore, the penta-mirror multi-reflection scanning module in accordance with the present invention has one or more of the following advantages:
(1) The five reflecting mirrors reflect the image beam, and at least two of the five reflecting mirrors have multi-reflections to increase the total tracking length. The position and angle of the reflecting mirrors are arranged to reduce or eliminate the overlapped light beam produced by multi-reflections of the reflecting mirrors, so as to reduce the ghost image phenomenon.
(2) The position of the reflecting mirrors may be adjusted by the optical path of five reflecting mirrors to adapt to different total tracking lengths of scanners with different sizes such as A4/A3 sizes, or pickup lenses with different effective focal lengths. Users simply adjust the relative position of the reflecting mirrors to project the image beam Lo into the pickup lens along the optical axis of the pickup lens to provide a broader scope of applications.
(3) With the matched effective focal length and total tracking length of the pickup lens, the position of the reflecting mirrors may be adjusted to minimize the volume of the frame, so as to achieve a compact design requirement.
The technical characteristics of an image scanning module thereof in accordance with the present invention will become apparent from the following detailed description taken with the accompanying drawings.
With reference to
The present invention provides an image scanning module having five reflecting mirrors for multi-reflection as shown in
where, TTL is the total tracking length TTL=Di+D1+D2+D3+D4+D5+D6 +DO; Drefl is the total distance between the reflecting mirrors along the optical path, and Drefl=D1+D2+D3+D4+D5+D6 as shown in
where αi is an inclined angle (rad.) between the normal line of a reflecting plane of an ith reflecting mirror on the optical path and the +Z-axis, and the symbols are illustrated in
In a positional relation of the reflecting mirrors, the coordinates (MkX, MkZ) of a reflecting point, an angle of a reflecting mirror and an angle of light incident at a reflecting mirror light of the previous reflecting mirror are determined by:
M
(k+1)X
=M
kX
−D
k sin(180±(2αk+βk)) M(k+1)Z=MkZ−Dk Cos(180±(2αk+βk)); (4)
where (MkX, MkZ) is the (X,Z) coordinates of a reflecting point of the kth reflecting mirror, and βi is an inclined angle(rad.) between the image beam incident at the kth reflecting mirror and the +Z-axis, as illustrated in
To effectively reduce the volume of the frame while maintaining the total tracking length unchanged, the reflecting mirror of the present invention undergo multi-reflection, wherein the reflecting mirror (M2) 172 reflects the image beam twice, and the reflecting mirror (M3) 173 reflects the image beam twice. In the prior art, the same reflecting mirror undergoing multi-reflection will produce a serious overlapped light beam to give a ghost image phenomenon, and it is necessary to dispose or adjust the width and the angle of the reflecting mirrors appropriately to reduce the overlapped light beam. However, the image scanning module having five reflecting mirrors in accordance with the present invention adopts a longer tracking length of the optical path M2→M3 and M3→M2 of a reflecting mirror having multi-reflection, and a shorter tracking length at the reflecting point of the reflecting mirror having multi-reflection, so as to reduce the overlapped light beam effectively.
In
wherein, λ3 is the minimum width of the reflecting mirror (M3) 173, which may be represented by the coordinates of the reflecting point. In other words, (M3X, M3Z) and (M5X, M5Z) on the X-Z plane are coordinates of the reflecting points of twice reflection of the image beam occurred at M3; and FOL is a factor of overlapped light beam (FOL), and d is the diameter of the aperture.
The penta-mirror multi-reflection scanning module in accordance with the present invention changes the direction and path of the image of the scanning document through the five reflecting mirrors and increases the total tracking length; such that the distance between the reflecting mirrors and the total tracking length (TTL) satisfy Equation (1), and the sum of inclined angles between the normal line of a reflecting plane of each reflecting mirror and the +Z-axis satisfy Equation (2). If the total tracking length is changed, it is necessary to adjust the distance between the reflecting mirrors only. In addition, the angle and the distance of the five reflecting mirrors are arranged on the reflecting mirror (M3) 173 that satisfy Equation (5) to prevent the overlapped light beam from entering into the pickup lens to reduce the ghost image phenomenon.
In a first preferred embodiment, an image scanning module of A4 size is provided.
With reference to
After the light source 16 emits a light, and the light passes through the cover glass 12 and is projected at the scanning document 2 (Obj), an image beam Li incident at the image scanning module 1 is produced. After the image beam Li is reflected from the reflecting mirror M1 and projected to the reflecting mirror M2, the image beam Li is reflected by the reflecting mirror M2 and projected to the reflecting mirror M3, and then reflected by the reflecting mirror M3 and projected to the reflecting mirror M4, and then reflected by the reflecting mirror M4 and projected to the reflecting mirror M3, and then reflected from the reflecting mirror M3 and projected to the reflecting mirror M2, and reflected from the reflecting mirror M2 and projected to the reflecting mirror M5, and then reflected from the reflecting mirror M5 to form an image beam Lo. The image beam Lo is focused by the pickup lens 15 to form an image (Img) at the image sensor 14. The frame 13 is provided for disposing each component of the image scanning module 1. The optical path is Li(Obj)→M1→M2→M3→M4→M3→M2→M5→Lo(Img), and αi is an inclined angle between the normal line of a reflecting plane of each reflecting mirror Mi and the +Z-axis, and the coordinates of a reflecting point of the reflecting mirror Mi on the X-Z plane at that time are (MiX, MiZ).
In this preferred embodiment, the total number of reflection times p=7, and the total distance between the reflecting mirrors and the total tracking length (TTL) satisfy Equation (1), and the sum of angles of each reflecting mirror along the optical path satisfies Equation (2), and the diameter of an aperture 132 on the frame 13 where the multi-reflection occur at M2 and M3, frame 13 is d=5 mm, and the reflecting mirror (M3) 173 satisfies Equation (5), in order to eliminate the overlapped light and stop the ghost image phenomenon effectively.
In a second preferred embodiment, an image scanning module of A3 size is provided.
With reference to
The optical path of this preferred embodiment is the same as that of the first preferred embodiment, which is Li(Obj)→M1→M2→M3→M4→M3→M2→M5→Lo(Img), and αi is an inclined angle between the normal line of a reflecting plane of each reflecting mirror Mi and the +Z-axis, and the coordinates of a reflecting point of the reflecting mirror Mi on the X-Z plane at that time are (MiX, MiZ) as shown in Table 2.
In this preferred embodiment, the total number of reflection times p=7, and the total distance between the reflecting mirrors and the total tracking length (TTL) satisfy Equation (1), and the sum of angles of each reflecting mirror along the optical path satisfies Equation (2), and the diameter of an aperture 132 on the frame 13 where the multi-reflection occur at M2 and M3 is d=5 mm, and the reflecting mirror (M3) 173 satisfies Equation (5), in order to eliminate the overlapped light and stop the ghost image phenomenon effectively.
Compared with the first preferred embodiment, this preferred embodiment simply adjusts the distance of the reflecting mirrors without the need of adjusting the angle of the reflecting mirror in order to adjust the TTL of the first preferred embodiment from 355.22 mm to 492.98 mm to broaden the scope of applicability.
In a third preferred embodiment, an image scanning module of A4 size is provided.
With reference to
After the light source 16 emits a light, and the light passes through the cover glass 12 and is projected onto scanning document 2(Obj), an image beam Li incident at the image scanning module 1 is produced.
The optical path of this preferred embodiment is the same as those of the first and second preferred embodiments, which is Li(Obj)→M1→M2→M3→M4→M3→M2→M5→Lo(Img), and αi is an inclined angle between the normal line of a reflecting plane of each reflecting mirror Mi and the +Z-axis, and the coordinates of a reflecting point of the reflecting mirror Mi on the X-Z plane at that time are (MiX, MiZ) as shown in Table 3.
In this preferred embodiment, the total number of reflection times p=7, and the total distance between the reflecting mirrors and the total tracking length (TTL) satisfy Equation (1), and the sum of angles of each reflecting mirror along the optical path satisfies Equation (2), and the diameter of an aperture 132 on the frame 13 where the multi-reflection occur at M2 and M3 is d=5 mm, and the reflecting mirror (M3) 173 satisfies Equation (5), in order to eliminate the overlapped light and stop the ghost image phenomenon effectively.
In a fourth preferred embodiment, an image scanning module of A3 size is provided.
With reference to
The optical path of this preferred embodiment is the same as that of the third preferred embodiment, which is Li(Obj)→M1→M2→M3→M4→M3→M2→M5→Lo(Img), and αi is an inclined angle between the normal line of a reflecting plane of each reflecting mirror Mi and the +Z-axis, and the coordinates of a reflecting point of the reflecting mirror Mi on the X-Z plane at that time are (MiX, MiZ) as shown in Table 4.
In this preferred embodiment, the total number of reflection times p=7, and the total distance between the reflecting mirrors and the total tracking length (TTL) satisfy Equation (1), and the sum of angles of each reflecting mirror along the optical path satisfies Equation (2), and the diameter of an aperture 132 on the frame 13 where the multi-reflection occur at M2 and M3 is d=5 mm, and the reflecting mirror (M3) 173 satisfies Equation (5), in order to eliminate the overlapped light and stop the ghost image phenomenon effectively.
Compared with the third preferred embodiment, this preferred embodiment simply adjusts the distance of the whole set of reflecting mirrors without the need of adjusting the angle of the reflecting mirror in order to adjust the TTL of the first preferred embodiment from 355.22 mm to 492.98 mm to broaden the scope of applicability.
In a fifth preferred embodiment, an image scanning module of small A3 size is provided.
With reference to
The optical path of this preferred embodiment is the same as that of the third preferred embodiment, which is Li(Obj)→M1→M2→M3→M4→M3→M2→M5→Lo(Img), and αi is an inclined angle between the normal line of a reflecting plane of each reflecting mirror Mi and the +Z-axis, and (MiX, MiZ) are coordinates of a reflecting point of a reflecting mirror Mi on the X-Z plane as shown in Table 5:
In this preferred embodiment, the total number of reflection times p=7, and the total distance between the reflecting mirrors and the total tracking length (TTL) satisfy Equation (1), and the sum of angles of each reflecting mirror along the optical path satisfies Equation (2), and the diameter of an aperture 132 on the frame 13 where the multi-reflection occur at M2 and M3 is d=5 mm, and the reflecting mirror (M3) 173 satisfies Equation (5), in order to eliminate the overlapped light and stop the ghost image phenomenon effectively.
Compared with the fourth preferred embodiment, the frame of this preferred embodiment has a larger thickness and a smaller length, such that users simply need to adjust the distance between the reflecting mirrors to reduce the volume of the image scanner and meet the requirements for a compact design.
In summation of the description above, the penta-mirror multi-reflection scanning module in accordance with the present invention uses at least two of the five reflecting mirrors for multi-reflection to constitute an optical path to increase the length of the optical path and the depth of field, and substantially reduce or eliminate the overlapped light produced by the multi-reflection of the reflecting mirrors, so as to reduce the ghost image phenomenon.
The penta-mirror multi-reflection scanning module in accordance with the present invention simply adjusts the distance of the reflecting mirrors during the manufacturing and assembling processes without the need of adjusting the angle, so that the image scanning module may be used for the A4/A3 sizes and different effective focal lengths of the pickup lenses to provide a broader scope of applicability.
While the invention has been described by means of specific embodiments, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope and spirit of the invention set forth in the claims.
Number | Date | Country | Kind |
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098114538 | Apr 2009 | TW | national |