1. Field of the Invention
The present invention relates generally to a scanning apparatus, and more particularly to a contact image sensor (CIS) type scanning apparatus for scanning both reflective and transparent objects.
2. Description of the Prior Art
There are two types of the scanning apparatus dedicated to scanners, facsimiles, and the likes. One is charge-coupled device (CCD), and the other is contact image sensor (CIS). A CIS scanning apparatus is more compact than a CCD scanning apparatus and can be used in smaller products than a CCD scanning apparatus. The CIS scanning apparatus also consume less power than CCD scanning apparatus and often can run on battery power or power from a universal serial bus (USB) port. Therefore, the CIS scanning apparatus are widely used in portable scanners or other micro image reading apparatus.
Earlier black and white CIS scanning apparatus for scanning original documents gather light from red, green, and blue LEDs (light-emitting diodes), which combine to provide white light, and direct the light to the document being scanned. The light that is reflected from the document is gathered by a lens and directed at an image sensor array that rests just under the document being scanned. The sensor then records the image according to the black and white intensity of light that hits the sensor. However, with the development of photographic technology, scanning technology is no longer limited in documents scanning. New types of scanning apparatus applied to films and slides scanning are put forward, which meets the requirement of saving image information.
Conventional CIS scanning apparatus having both reflective and transparent scanning functions generally have the configurations shown in
Hence, an improved scanning apparatus is required to overcome the above-mentioned disadvantages of the prior arts.
Therefore, the objective of the present invention is to provide a scanning apparatus for scanning both reflective and transparent objects which combines the advantages of the conventional scanning apparatus and suitable for popularizing in the market.
In order to achieve the above objective and overcome the above-identified deficiencies in the prior arts, a scanning apparatus in accordance with the present is designed for scanning both a transparent object and a reflective object. The scanning apparatus comprises a printed circuit board; a color light source providing color light for illuminating the reflective object from the bottom; a white transparency adapter providing white light for illuminating the transparent object from the top; a long black and white image sensor for receiving the light reflected by the reflective object; a short color image sensor for receiving the light transmitted by the transparent object; and at least a lens array for focusing the reflected light and transmitted light onto at least one of the black and white image sensor and the color image sensor.
Other objects, advantages, and novel features of the invention will become more apparent from the following detailed description of a preferred embodiment when taken in conjunction with the accompanying drawings.
The present invention may best be understood through the following description with reference to the accompanying drawings, in which:
Reference will now be made in detail to a preferred embodiment of the present invention.
Referring to
The light illuminating means comprises a white transparency adapter 207 for generating white light to illuminate a transparent object (such as a slide or a film) 206 that is positioned on an original platform (not shown), and a color light source (not shown) composed of a set of red, green and blue LEDs (Light Emitting Diodes) arranged on a light guiding stick for generating color lights to illuminate a reflective object (such as paper or a document) 208 that is positioned on the platform. The white transparency adapter 207 is disposed above the platform and projects white light from the top of the transparent object 206. The color light source is disposed below the platform and projects color light from the bottom of the reflective object 208. The transparent and reflective objects 206, 208 each may have a substantially rectangular shape with a length in a lengthwise direction and a width in a lateral direction.
The optical means comprises a-first lens array 204 for focusing the light generated by the white transparency adapter 207 and penetrating the transparent object 206, and a second lens array 205 for focusing the light generated by the color light source and reflected by the reflective object 208. The first and second lens arrays 204, 205 are substantially parallel to each other and extending lateral direction. In an alternative embodiment, the optical means comprises only one lens array, which substantially combines the first and second lenses 204, 205.
The sensor means comprises a color image sensor 202 extending in the lateral direction, and a black and white image sensor 203 extending parallel to the color image sensor 202. The color image sensor 202 and the black and white image sensor 203 respectively receive the transmitting light and the reflected light from the object 206, 208 to form an object image. The color image sensor 202 and the black and white image sensor 203 are arranged in different focus heights according to different thicknesses of the transparent and reflective objects 206, 208, and so do the first and second lens arrays 204, 205, in order to ensure correct focusing of the object images on the sensors 202, 203. The color image sensor 202 has a length corresponding to the width of the transparent object 206. The black and white image sensor 203 has a length corresponding to the width of the reflective object 208. Accordingly, the color image sensor 202 is usually shorter than the black and white image sensor 203.
The signal processing means comprises a printed circuit board 201 having a processing circuit thereon. The color image sensor 202 and the black and white image sensor 203 are both connected with the processing circuit through which optical image signals collected by the sensor means are converted into digital (electrical) signals. The color light source is electrically connected with the processing circuit.
When the reflective object 208 is scanned, the color light source illuminates color light to a region of the reflective object 208 from the bottom, which covers a row in the lateral direction. The color light is reflected by the reflective object 208 and generates effective optical image signals according to the intensity of the illuminated region. Then the reflected light travels through the second lens array 205 to focus on the black and white image sensor 203. The black and white image sensor 203 receives the optical image signals and forms a color object image of the illuminated region. The processing circuit of the printed circuit board 201 then receives the optical image signals and converts the optical image signals into digital signals for computer processing. The color light source and the image sensor 203 are commonly moved along the lengthwise direction. The reflective object 208 is scanned row by row, thereby forming optical image signals and corresponding digital signals set by set. All sets of digital signals are gathered by a computer. Therefore, the reflective object 208 is converted to an electronic document.
When the transparent object 206 is scanned, the white transparency adapter 207 illuminates white light to a region of the transparent object 207 from the top, which covers a row in the lateral direction. The white light penetrates through the transparent object 206 and generates effective optical image signals according to the intensity of the illuminated region. The light penetrating the transparent object 206 then transmits through the first lens array 204 to focus on the color image sensor 202. The color image sensor 202 receives the optical image signals and forms a color object image of the illuminated region. The processing circuit of the printed circuit board 201 then receives the optical image signals and converts the optical image signals into digital signals for computer processing. The white transparency adapter 207 and the color image sensor 202 are commonly moved along the lengthwise direction. The transparent object 208 is scanned row by row, thereby forming optical image signals and corresponding digital signals set by set. All sets of digital signals are gathered by a computer. Therefore, the transparent object 206 is converted to an electronic document.
The scanning apparatus in accordance with the present invention assembles a short color image sensor 202 and a long black and white image sensor 203 to a common printed circuit board 201, which is suitable for being assembled to most popular scanners in the market. Furthermore, the color image sensor 202 cooperates with the white transparency adapter 207 to scan a reflective object 208, and the black and white image sensor 203 cooperates with the color light source to scan a transparent object 206. The configuration of the scanning apparatus in accordance with the present invention can furthest reduce the cost of the scanning apparatus, comparing with other configurations of the conventional scanning apparatus for scanning both reflective and transparent objects as disclosed in the prior arts. Additionally, the first and second lens arrays 204, 205 are arranged in different focus heights for focusing lights from the transparent object 206 and the reflective object 208, respectively, making the scanning for both the transparent object 206 and the reflective object 208 accurate.
It is to be understood, however, that even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only, and changes may be made in detail, especially in matters of material, plating method and manufacturing process within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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094114298 | May 2005 | TW | national |