The present disclosure relates the technical field of manufacturing displays, and in particular to a light sources device and an alignment mark shooting and recognizing system.
Upon forming array, color filter, cell alignment and module during manufacture of a liquid crystal display (LCD) panel, a position of a substrate has to be aligned and adjusted before arranging the substrate to ensure processing precision, because it is unable to precisely arrange the substrate at a preferable position during transporting, clamping and processing of the substrate. The precision of the substrate alignment directly affects the quality of the LCD products. Thus, it is necessary for the precision of the alignment system to be extremely high to implement the alignment process. Nowadays, a trend in the LCD field is to develop premium products, and high pixel per inch (ppi) and high precision products are a direction of future market needs. The alignment precision directly affects the product quality, and thus the rapid development of the alignment technology is an important guarantee of improving the product quality.
In the above method, the light emitted by the light source located at one side of the case is incident to and reflected by the intermediate transparent glass panel to irradiate the alignment mark, a luminance of the light arriving at the mark 106 is low, a contrast of the mark captured by the camera is weak, and a phenomenon that the camera can capture the mark on a thin film transistor (TFT) array substrate while cannot capture the mark on a color filter (CF) substrate may occur, because background colors of the marks and contrasts caused by the light irradiation on the TFT substrate and the CF substrate are different.
An object of the present disclosure is to provide a light source device and an alignment mark shooting and recognizing system for increasing the light luminance upon shooting and recognizing for the substrate alignment, so that the capability of the camera for recognizing for the substrate alignment can be enhanced, and the alignment precision is improved.
The present disclosure provides a light source device, including: a case, defining an accommodation space and including a light transmissible surface and a locating-mounting hole, the locating-mounting hole defining a projection through space within the accommodation space in an axial direction of the locating-mounting hole; and a plurality of light emitting sources, arranged within the accommodation space, surrounding the projection through space and configured for emitting light towards the light transmissible surface.
Further, in the above light source device, the case further includes a first surface arranged opposite to the light transmissible surface; the locating-mounting hole is arranged in the first surface; and the projection through space is a space region extending from the locating-mounting hole in the first surface to the light transmissible surface in the axial direction of the locating-mounting hole.
Further, in the above light source device, the case further includes a first surface arranged opposite to the light transmissible surface; the locating-mounting hole extends through both the light transmissible surface and the first surface; and the projection through space is a space region of the locating-mounting hole extending between the light transmissible surface and the first surface in the axial direction of the locating-mounting hole.
Further, in the above light source device, the light transmissible surface is parallel to the first surface.
Further, in the above light source device, the light source device further includes a light source mounting plate on which the light emitting sources are arranged; wherein the light source mounting plate is of a curved shape with a center located at a side where the light transmissible surface is arranged; and the light emitting sources are arranged according to a radian of the curved shape of the light source mounting plate.
Further, in the above light source device, the accommodation space has an inner surface of a curved shape; the light source mounting plate is arranged on the inner surface of the accommodation space according to the curved shape of the inner surface of the accommodation space.
Further, in the above light source device, the light source device further includes a reflection plate arranged on a side of the light source mounting plate facing the center; wherein the reflection plate is arranged according to the radian of the curved shape of the light source mounting plate in such a manner that the light emitted by the light emitting sources are reflected towards the light transmissible surface.
Further, in the above light source device, the center of the curved shape defined by the light source mounting plate is located at a side of the light transmissible surface away from the light sources.
Further, in the above light source device, the light source device further includes a light diffusion plate arranged on the light transmissible surface and configured for transmitting the light evenly.
Further, in the above light source device, the light emitting sources include a plurality of columns of light emitting diodes (LEDs) which are disposed around the projection through space evenly; and the LEDs in each column are arranged in a line perpendicular to the axial direction of the locating-mounting hole and in a direction from a position being close to the projection through space to a position being far from the projection through space.
The present disclosure further provides an alignment mark shooting and recognizing system, including: a camera configured to shoot an alignment mark on a substrate, and any one of the above light source device; wherein the light source device is mounted on the camera via the locating-mounting hole.
Further, in the above alignment mark shooting and recognizing system, the above alignment mark shooting and recognizing system further includes: an adjusting knob configured for adjusting a focal length of the camera; and an adjusting ruler configured for aligning the focal length.
Further, the light emitting sources in the light source device surround the camera.
Further, the camera is inserted into the locating-mounting hole, and a shooting end of the camera is located within the accommodation space of the light source device.
Further, the camera is inserted into the locating-mounting hole and extends through the light source device, and a shooting end of the camera is located outside the accommodation space of the light source device.
The following beneficial effects may be obtained by at least one of the above technical solutions provided by the embodiments of the present disclosure.
The light source device is arranged to be a ring-shaped light source. When such light source device is adopted in the substrate alignment mark shooting and recognizing system, the light emitted by the light sources may directly irradiate the mark on the substrate. Comparing with the light source device in prior art, the light arriving at the position of the mark on the substrate is stronger, and thus the luminance of the light for shooting and recognizing for the substrate alignment is increased. As a result, the capability of the camera for recognizing for the substrate alignment can be enhanced, and the alignment precision is improved.
Hereinafter, it will be discussed in details associated with figures and embodiments for further clarifying objects, technical solutions and advantages of the present disclosure.
In one embodiment of the present disclosure, a light source device includes:
a case, defining an accommodation space and including a light transmissible surface and a locating-mounting hole, and the locating-mounting hole defining a projection through space within the accommodation space in an axial direction of the locating-mounting hole; and
a plurality of light emitting sources, arranged within the accommodation space and surrounding the projection through space, the light emitting sources being configured for emitting light towards the light transmissible surface.
In this embodiment, the light sources surround the projection through space within the accommodation space of the case and define a ring-shaped light source. When such light source device is adopted in the substrate alignment mark shooting and recognizing system, the camera can be inserted into the projection through space through the locating-mounting hole, so that the light sources are disposed around the camera. The light emitted by the light sources may directly irradiate the mark on the substrate. Comparing with the light source device in prior art, the light arriving at the position of the mark on the substrate is stronger, and thus the luminance of the light for shooting and recognizing for the substrate alignment is increased. As a result, the capability of the camera for recognizing for the substrate alignment can be enhanced, and the alignment precision is improved.
In this embodiment, the case 10 includes a first surface 13 arranged opposite to the light transmissible surface 11; and the locating-mounting hole 12 is extended through both the first surface 13 and the light transmissible surface 11, as illustrated in
As illustrated in
Preferably, in the first embodiment, the light transmissible surface 11 is opposite to and parallel with the first surface 13 as illustrated in
Furthermore, as illustrated in
Furthermore, an inner surface of the accommodation space of the case 10 may be formed of being in a curved shape, and the light source mounting plate 21 is arranged on the inner surface of the accommodation space based on the curved shape of the inner surface of the accommodation space. Alternatively, the inner surface of the accommodation space of the case 10 may be directly arranged to be the light source mounting plate 21 of being in the curved shape, and thus the light sources 20 may be directly arranged on the inner surface of the accommodation space of the case 10. Furthermore, a light diffusion plate is arranged on the light transmissible surface 11, so as to ensure that the light transmitted through the light transmissible surface 11 may irradiate the mark 41 on the substrate 40 more evenly.
As illustrated in
Different from the first embodiment, in the second embodiment, the locating-mounting hole 12 is arranged in the first surface 13 opposite to the light transmissible surface 11. The projection through space is a space region extending from the locating-mounting hole 12 in the first surface 13 to the light transmissible surface 11 along the axial direction of the locating-mounting hole 12. As illustrated in
In the second embodiment, the light transmissible surface 11 is arranged opposite to the substrate 40 to be aligned, and the camera 30 is located above the light transmissible surface 11 and the mark 41 on the substrate 40 to be aligned for capturing an image of the mark 41 through the light transmissible surface 11. The light sources 20 within the light source device surround the camera 30, and emit light towards the light transmissible surface 11, respectively. Thus, the light emitted by the light sources 20 may transmit through the light transmissible surface 11 and then directly irradiate the mark 41 on the substrate 40 to be aligned. Furthermore, since the light sources 20 surround the camera 30, thus the positions in all directions of 360 degrees around the camera 30 can be irradiated, and any dark corner is prevented. Thus, similarly as being in the first embodiment, the light source device in the second embodiment may also improve the luminance of the light for shooting and recognizing for the substrate alignment, so that the capability of the camera for recognizing for the substrate alignment can be enhanced.
As a matter of fact, in the light source device of the second embodiment, the camera 30 captures an image through the light transmissible surface 11 and thus the light source device of the first embodiment is preferred for securing the clarity of the captured image.
Furthermore, similarly as being in the first embodiment, the light source device in the second embodiment further includes the light source mounting plate 21 on which the light emitting sources 20 are arranged. The light source mounting plate 21 is of a curved shape. A reflection plate 24 is arranged on a side of the light source mounting plate 21 where the light sources 20 are arranged. Optionally, a light diffusion plate is further arranged on the light transmissible surface 11. Furthermore, in this embodiment, the arrangement of the light sources 20 may be similar as that in the first embodiment, and thus a description thereof is not omitted herein for clarity.
One embodiment of the present disclosure further provides an alignment mark shooting and recognizing system which is used for aligning substrates when manufacturing display devices. The alignment mark shooting and recognizing system includes a camera configured to shoot an alignment mark on a substrate, and the light source device as described above. The light source device is mounted on the camera via the locating-mounting hole, and the camera obtains a position of the alignment mark via shooting the alignment mark through the projection through space and the light transmissible surface.
In this embodiment, the arrangement of the light source device in the alignment mark shooting and recognizing system is similar to that in the above embodiments, and thus a description thereof is not omitted herein for clarity.
In this embodiment, the alignment mark shooting and recognizing system including the light source device may enhance the capability of the camera for recognizing for the substrate alignment.
The above are merely the preferred embodiments of the present disclosure and shall not be used to limit the scope of the present disclosure. It should be noted that, a person skilled in the art may make improvements and modifications without departing from the principle of the present disclosure, and these improvements and modifications shall also fall within the scope of the present disclosure.
Number | Date | Country | Kind |
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201510149687.X | Mar 2015 | CN | national |
This application is a continuation of U.S. application Ser. No. 14/911,209, filed Feb. 9, 2016, which is the U.S. national phase of PCT Application No. PCT/CN2015/086500 filed on Aug. 10, 2015, which claims priority to Chinese Patent Application No. 201510149687.X filed on Mar. 31, 2015, the disclosures of which are incorporated herein by reference in their entireties.
Number | Date | Country | |
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Parent | 14911209 | Feb 2016 | US |
Child | 16398765 | US |