The present disclosure relates to optoelectronic technology, particularly to accurately locate and capture images or texts with lasers, and more particularly, to an optical system for assisting image positioning.
At present, various smart mobile terminals have become very popular, and one of their main functions is to take pictures and videos, with high definition and excellent shockproof effects. The only deficiency is that whether it is a smart phone, a tablet or a learning machine, positioning and capturing of an image or a text when taking photos or videos, are performed by illuminating the device to illuminate the image that needs to be captured, and then capturing the illuminated image through the camera. Since such a method of positioning and capturing the image utilizes a common light source and have no pattern that can assist in generating a beam splitting interface, the direction of emergent light cannot be controlled accurately. Therefore, there is a need in the art for an optical system that can accurately and rapidly position and capture a specific image or text.
The objective of the present disclosure is to overcome the problem that the image positioning, capturing unit or function on the existing smart terminal cannot achieve accurate positioning and capturing of a specific part of an image or a specific image or text.
In view of this, the present disclosure provides an optical system for assisting image positioning, including a light source, characterized by further including a dot-shaped pattern or an interface beam splitting pattern provided on an light emergent optical path of the light source, wherein the dot-shaped pattern or the interface beam splitting pattern is projected by the emitted light of the light source to generate an interface beam splitting projected light for aiming at characters or images.
The light source is an LED light source, and the dot-shaped pattern or the interface beam splitting pattern is provided on the LED light source.
The interface beam splitting pattern is a straight line or a cross line provided on the LED light source, to produce a straight line or a cross line pattern projected on the target.
The interface beam splitting pattern is formed by combining a plurality of segmented LED light sources.
The light source is one LED that generates a dot-shaped pattern, or is formed by a combination of two or more segmented LED light sources, or is one OLED.
A lens or a lens set is arranged on the light emergent optical path of the LED light source, and the lens is an aspheric lens or a spherical lens.
The lens set includes a beam expander lens, a focusing lens and a collimating lens transparent element disposed sequentially in a direction away from the LED light source.
The lens set is composed of a spherical lens and an aspheric lens.
The light source is a laser module, and the dot-shaped pattern or the interface beam splitting pattern is provided on a transparent element, and the transparent element is disposed in the light emergent optical path of the laser module.
An aspheric lens and a reflective element configured to reflect a laser passing through the aspheric lens to the transparent element are disposed between the laser module and the transparent element), on the light emergent optical path of the laser module.
The transparent element is a DOE lens or a wave-shaped lens.
The light incident surface of the DOE lens is provided with a light receiving pattern for generating a straight line or a cross line of laser, and the light emergent surface of the DOE lens is a spherical or aspheric surface.
The advantages of the present disclosure are: by combining the light source with the dot-shaped pattern or the interface beam splitting pattern, a straight line, a cross line, or other pattern that can generate a beam splitting interface can be projected on the target. Further, by means of the DOE lens with a spherical or aspheric light exiting surface, a specific linear light beam or other beam splitting interface pattern can be generated, thus achieving quick positioning and capturing of the image or the specific part of the image with high accuracy.
The present disclosure will be described in detail below with reference to the accompanying drawings and embodiments.
Reference Numerals: 1: light source; 2: segmented LED light source; 3: beam expander lens; 4: focusing lens; 5: collimating lens transparent element; 6: laser module; 7: transparent element; 8: aspheric lens; 9: reflective element; 10: lens or lens set; 11: point light source; 12: horizontal strip-shaped light source; 13: first housing; 14: LED chip; 15: second housing.
In order to overcome the problem that the image positioning-capturing unit or the function of the existing intelligent terminal cannot realize precise positioning and capturing of a specific part of an image or a text, the present embodiment provide an optical system for assisting image positioning, including a light source 1 and a dot-shaped pattern or an interface beam splitting pattern provided in the light emergent optical path of the light source 1, which are projected by the emitted light of the light source 1 to generate interface splitting beam projection light for aiming at a text or an image. With the projected beam splitting interface pattern, it is possible to capture and position a specific object such as a character, a figure, or a pattern, and provide security and convenience for the subsequent captured and videoed object.
At present, a common light source may be an LED light source or a laser light source. When the selected light source is an LED light source, the dot-shaped pattern or interface beam splitting pattern mentioned herein is provided on the LED light source, which can greatly reduce the size and facilitate miniaturization.
When the light source is an LED light source, the interface beam splitting pattern is a dot-shaped pattern, a straight line, a cross line, or other pattern provided on the LED light source that emits light to produces a spot-shaped light spot or light of a straight line shape or a cross line shape or of other pattern after passing through a spherical or aspheric lens. It is also possible that an OLED light source images through the lens or the lens set 10 to achieve the indication or positioning of the picture or image.
It should be noted that the light source 1 may be an LED, or may be a combination of two or more segmented LED light sources 2 shown in
It can also be seen in
With the above various combined optical paths, the optical system provided with projectable graphic identification is composed only of a light source having an interface beam splitting pattern, a lens, or a lens set. Such an optical system is advantageous in small size, and the entire module can be minimized, and pointing, capturing, positioning, measuring, or interface splitting and other functions can be completed quickly.
When the laser module 6 takes laser as illumination, a dot-shaped pattern or interface beam splitting pattern is provided on a transparent element 7 shown in
The transparent element 7 is a DOE lens or a wave-shaped lens. The first surface (the light incident surface or the laser light incident surface) of the transparent element 7 can generate a straight line pattern, a cross line pattern, or other pattern. The second surface (the light emergent surface or the laser light exiting surface) is a spherical or aspheric surface that images the pattern produced by the first surface at a limited distance or an infinite distance.
The laser beam emitted from the laser module 6 employed in the optical system for assisting image positioning shown in
In order to obtain better image positioning effect or to adapt to the installation of the optical system of different devices, this embodiment provides an optical system for assisting image positioning shown in
The distance between the aspheric lens 8 and the laser module 6 may be within a range from 0 to 10 mm, the outer diameter of the aspheric lens 8 may be within a range from 1 to 10 mm. The aspheric lens 8 may be a flat-aspheric surface lens (i.e., a first surface thereof is a flat surface, and a second surface opposite to the first surface is an aspheric surface) or a double aspheric surface lens (i.e., each of the first surface and the second surface opposite to the first surface is an aspheric surface).
The reflective element 9 is an isosceles right-angle prism, and the light emitted from the light source module 6 is incident on a right-angle surface of the isosceles right-angle prism, and a total reflection is generated on the slope surface. The direction of the light is turned 90 degrees and then emitted from another right-angle surface. After passing through the transparent element 7, the pattern with a beam splitting interface (such as a straight line, or a cross line and so on) is projected onto the image or a specific part of the image, thus achieving quick positioning and capturing of the image or the specific part of the image.
The distance between the aspheric lens 8 and the right-angle isosceles prism may range from 0 to 10 mm, and the size of the isosceles right-angle prism may range from 1×1×1 mm to 10×10×10 mm. The light emitted from the right-angle isosceles prism passes through a DOE lens or a wave-shaped lens or other lens of different materials that can generate a beam splitting interface, i.e., the transparent element 7, which can form a straight line, a cross line or other pattern with a beam splitting interface. The distance between the isosceles prism and the DOE lens or the wave-shaped lens or the lens of other materials that can produce the beam splitting interface is in the range of 0 to 10 mm. The DOE lens or the wave-shaped lens or the lens of other materials that can produce the beam splitting interface has a thickness within a range from 0.1 to 10 mm with a shape of a square or a circle. As shown in
Number | Date | Country | Kind |
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201520767430.6 | Sep 2015 | CN | national |
201520836596.9 | Oct 2015 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2016/101127 | 9/30/2016 | WO | 00 |