The present invention relates generally to a contact image scanning module having multiple light sources. More particularly, the present invention is applied to the image scanning of black-and-while and color images, which employs at least two light sources of different properties and switches the light sources using a control circuit to provide various scanning speeds for various objects to be scanned, thereby enhancing the black-and-white scanning speeds.
A typical contact image sensor (CIS) normally shines light on an object to be scanned and focuses the reflected light by a lens group on a charge coupled device (CCD) or a complimentary metal-oxide semiconductor (CMOS) light sensor. The CIS also converts the received optical signals to electronic signals for generating pixel data to record on, output to or transmit to a personal computer. It is often used in a standard or professional scanner, a multi-function business machine, a photocopier, etc.
Conventional contact image sensors 1 are generally divided into two types. One type of them is shown in
Another type of conventional contact image sensor 2 shown in
Among the two types of conventional contact image sensor 1 mentioned above, the one shown in
The contact image sensor as shown in
The present invention is to provide a contact image scanning module that can employ light sources of different properties and a switching control circuit to switch between light sources when making black-and-white and colorful scans, so as to provide different scanning speeds when scanning different objects, thereby enhancing the black-and-white scanning speed.
In order to achieve the above and other objectives, the contact image scanning module having multiple light sources of the present invention includes:
a housing for assemble therein a plurality of module elements;
at least two light source groups that provides scanning light sources of different properties, so as to generate a reflected image of the object on the scanning flatbed;
at least a switching control circuit for switching and controlling the two light source groups in accordance with the property of the object to be scanned to provide different scanning speeds;
at least a lens element for receiving the reflected image and for generating a focused image;
at least an optical sensor for receiving the focused image and converting the optical signals into electronic signals; and
a scanning flatbed for placing the object to be scanned thereon to perform scanning operations.
In order to better understanding the features and technical contents of the present invention, the present invention is hereinafter described in detail by incorporating with the accompanying drawings. However, the accompanying drawings are only for the convenience of illustration and description, no limitation is intended thereto.
Referring to
The housing 30 described above, in one particular embodiment of the present invention, can be of any form such that the at least two light sources 31, 32, the lens element 34, the at least a switching control circuit, the printed circuit board 35, and the at least an optical sensor 36 are assembled therein.
In the present invention, the light source groups 31, 32 can be a cold cathode fluorescent lamp (CCFL), a light emitting diode, a halogen light source, a cathode fluorescent lamp (CFL), an organic light emitting diode (OLED), or a polymer light emitting diode (PLED). The light source groups 31, 32 can be embedded, glued, or skewed in the predetermined positions of the housing 30 described above.
The two light source groups 31, 32, in this particular embodiment of the present invention shown in
The first light source group 31 and the second light source group 32, in one particular embodiment of the present invention, are disposed to the same side of the lens element 34, as shown in
The switching control circuit (not shown) described above is electrically connected to the first light source group 31 and the second light source group 32, thereby controlling the first light source group 31 and the second light source group 32 to switch on and off according to the particular object to be scanned 5. In this manner, the reflected images can be generated by different light sources according to the objects to be scanned 5 with different scanning speeds.
The lens element 34 described above, in one particular embodiment of the present invention, employs a cylindrical lens, which is disposed in the housing 30 by means of embedding, gluing or skewing, so as to receive the reflected image from the first light source group 31 or the second light source group 32 and generate a focused image, so as to form an image on the at least an optical sensor 36.
The at least an optical sensor 36 described above receives the focused image from the lens element 34 and converts the optical signals into electronic signals. The optical sensor 36 in one particular embodiment is a CCD or a CMOS.
The printed circuit board 35 having the switching control circuit and the optical sensor 36 disposed thereon is a modulized element disposed in the housing 30, so as to form, together with the scanning flatbed 4, a contact image sensor having multiple light sources.
The scanning flatbed 4 is disposed at the top portion of the housing 30. In one preferred embodiment of the present invention, the scanning flatbed 4 is a piece of transparent glass to provide a flat surface for positioning an object to be scanned 5 thereon, thereby scanning the object 5 using the first light source group 31 or the second light source group 32
The contact image scanning module of the present invention uses the at least a switching control circuit to turn on the first light source group 31 and the second light source group 32, or to turn on only the monochrome high brightness second light source group 32, when performing a black-and-white scan to the object to be scanned 5. After the light source is shined on the object 5, a reflected image is generated and reflected to the lens element 34 to form a focused image. The focused image is formed on the optical sensor 36, and converted to electronic signals. When performing a colorful scan to the object to be scanned 5, the switching control circuit turns on the first light source group 31 of RGB colors, and turns of the second light source group 32 of monochrome high brightness. Only the colorful light source is shined on the object to be scanned 5. A reflected image of RGB colors is thus generated and reflected to the lens element 34 to generate a focused image. The focused image is formed on the optical element 36 and converted to electronic signals. In this manner, the first light source group 31 or the second light source group 32 can be turned on to scan the object 5 according to the need of a black-and-white or colorful scan. In contrast to the conventional scanning module having only a single light source, the present invention can perform scan operations using various scanning speeds, which can largely enhance the scanning speed for black-and-white scans.
Referring again to
The first light source group 31 and the second light source group 32 described above also employ at least a light source of RGB colors and incorporate with a lightguide 311 so as to make the brightness homogeneous, as shown in
Similarly, the contact image scanning module having multiple light sources in accordance with the second embodiment of the present invention employs the first light source group 31 and the second light source group 32 of different properties and incorporates with a switching control circuit to switch between light sources when scanning black-and-white and colorful objects 5, whereby the object 5 can be scanned with different scanning speed, which enhances the black-and-white scanning speed.
Since, any person having ordinary skill in the art may readily find various equivalent alterations or modifications in light of the features as disclosed above, it is appreciated that the scope of the present invention is defined in the following claims. Therefore, all such equivalent alterations or modifications without departing from the subject matter as set forth in the following claims is considered within the spirit and scope of the present invention.