1. Field of the Invention
The present invention relates to an image projection device and, more particularly, to a dynamic diffractive image projection device.
2. Description of Related Art
Laser has the advantages of high intensity, narrow band, and centralized light beam for providing high brightness, high color saturation, and high resolution in image projection. Therefore, laser is one of the best choices for light source of an image projection device. Accordingly, the image projection device using laser as a light source has become a tendency in display technology.
With reference to
The key element, i.e. the micro scanner 43, of the prior laser micro projection device is a high-precision micro electromechanical system (MEMS), which is difficult in manufacture and thus is expensive, resulting in that the laser micro projection device is hard to be popular. Therefore, it is desirable to provide an improved image projection device to mitigate the aforementioned problems.
The object of the present invention is to provide a dynamic diffractive image projection device so that the laser beam passing through a dynamic diffractive optical element directly produces a two-dimensional dynamic diffractive image
According to one aspect, the present invention provides a dynamic diffractive image projection device, which comprises a first laser light source for providing a first color beam having a first light intensity; a second laser light source for providing a second color beam having a second light intensity; a third laser light source for providing a third color beam having a third light intensity; a first dynamic diffractive optical element corresponding to the first laser light source for receiving the first color beam; a second dynamic diffractive optical element corresponding to the second laser light source for receiving the second color beam; a third dynamic diffractive optical element corresponding to the third laser light source for receiving the third color beam; a controller connected to the first, second and third laser light sources for dynamically adjusting the first, second and third light intensities, and also connected to the first, second and third dynamic diffractive optical elements for respectively controlling the first, second and third diffractive optical elements to perform real-time signal modulation for producing dynamic diffractive grating distributions, so that the first, second and third color beams pass through the first, second and third dynamic diffractive optical elements, respectively, for producing a pixel corresponding to a specific position of an image frame; and a combiner for allowing the first, second and third color beams to be combined at the corresponding specific position after passing through the first, second and third dynamic diffractive optical elements, respectively. Further, the controller performs a fast switching and playing on the first, second and third dynamic diffractive optical elements so as to project a two-dimensional full-color image frame by scanning.
According to another aspect, the present invention provides a dynamic diffractive image projection device, which comprises a first laser light source for providing a first color beam having a first light intensity; a second laser light source for providing a second color beam having a second light intensity; a third laser light source for providing a third color beam having a third light intensity; a combiner for receiving the first, second, and third color beams for combining the first, second and third color beams into a combined beam; a dynamic diffractive optical element for receiving the combined beam; and a controller connected to the first, second and third laser light sources for dynamically adjusting the first, second and third light intensities, and also connected to the dynamic diffractive optical element for controlling the dynamic diffractive optical element to perform real-time signal modulation for producing dynamic diffractive grating distributions, so that the combined beam passes through the dynamic diffractive optical element for producing a pixel corresponding to a specific position of an image frame. Further, the controller performs a fast switching and playing on the dynamic diffractive optical element so as to project a two-dimensional full-color image frame by scanning.
According to a further aspect, the present invention provides a dynamic diffractive image projection device, which comprises a light source module for providing a collimated beam; a hologram set including a plurality of holograms, each hologram having static diffractive grating distribution, so as to produce a static diffractive image when the collimated beam passes through each of the holograms; and a player for fast playing the plurality of holograms for allowing the static diffractive images produced from the plurality of holograms to be presented as a dynamic image.
Other objects, advantages, and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
With reference to
The first laser light source 111, the second laser light source 112, and the third laser light source 113 are preferably disposed at locations so that the laser light source outputs thereof are perpendicular to each other. The first laser light source 111 provides a first color beam B111 having a first light intensity. The second laser light source 112 provides a second color beam B112 having a second light intensity. The third laser light source 113 provides a third color beam B113 having a third light intensity. In this embodiment, the first color beam B111 is preferably a red beam, the second color beam B112 is preferably a green beam, and the third color beam B113 is preferably a blue beam.
The first dynamic diffractive optical element 121 is disposed at a location to which the first laser light source lii outputs laser beam, for corresponding to the first laser light source 111 to receive the first color beam B111. The second dynamic diffractive optical element 122 is disposed at a location to which the second laser light source 112 outputs laser beam, for corresponding to the second laser light source 112 to receive the second color beam B112. The third dynamic diffractive optical element 123 is disposed at a location to which the third laser light source 113 outputs laser beam, for corresponding to the third laser light source 113 to receive the third color beam B113. In this embodiment, the first, second, and third dynamic diffractive optical elements 121, 122, 123 preferably are each a spatial light modulator or a dynamic grating.
The controller 13 is connected to the first, second and third laser light sources 111, 112, 113 for dynamically adjusting the first, second and third light intensities, and also connected to the first, second and third dynamic diffractive optical elements 121, 122, 123 for respectively controlling the first, second and third diffractive optical elements 121, 122, 123 to perform real-time signal modulation for producing dynamic diffractive grating distributions, so that the first, second and third color beams B111, B112, B113 pass through the first, second and third dynamic diffractive optical elements 121, 122, 123, respectively to produce pixels corresponding to a specific position of an image frame.
The combiner 14 is preferably disposed at a location surrounded by the first dynamic diffractive optical element 121, the second dynamic diffractive optical element 122 and the third dynamic diffractive optical element 123, so that the first, second and third color beams are combined at a corresponding specific position after passing through the first, second and third dynamic diffractive optical elements, respectively, so as to present a full-color image frame on the screen 51. In this embodiment, the combiner 14 is preferably an X-prism. The controller 13 performs a fast switching and playing on the first, second and third dynamic diffractive optical elements 121, 122, 123 so as to project a two-dimensional full-color image frame on the screen 51 by scanning. As shown in
With reference to
The first laser light source 211, the second laser light source 212, and the third laser light source 213 are preferably disposed at locations so that the laser light source outputs thereof are in parallel with each other. The first laser light source 211 provides a first color beam B211 with a first light intensity. The second laser light source 212 provides a second color beam B212 with a second light intensity. The third laser light source 213 provides a third color beam B213 with a third light intensity. In this embodiment, the first color beam B211 is preferably a red beam, the second color beam B212 is preferably a green beam, and the third color beam B213 is preferably a blue beam.
The combiner 24 is preferably disposed at a location to which the first laser light source 211, the second laser light source 212, and the third laser light source 213 output laser beams, so as to receive the first, second and third color beams B211, B212, B213 for combining the first, second and third color beams B211, B212, B213 into a combined beam B2. The combined beam B2 is then received by the dynamic diffractive optical element 22. In this embodiment, the dynamic diffractive optical element 22 is preferably a spatial light modulator or a dynamic grating. The controller 23 is connected to the first, second and third laser light sources 211, 212,for dynamically adjusting the first, second and third light intensities, and is also connected to the dynamic diffractive optical element 22 for controlling the dynamic diffractive optical element 22 to perform real-time signal modulation for producing dynamic diffractive grating distributions, so that the combined beam B2 passes through the dynamic diffractive optical element 22 to produce a pixel corresponding to a specific position of an image frame. The controller 23 performs a fast switching and playing on the dynamic diffractive optical element 22 so as to project a two-dimensional full-color image frame on the screen 51 by scanning. The image shown on the screen 51 by the dynamic diffractive image projection device of the present invention is the same as in
With reference to
The light source 31 provides a collimated beam L31. In this embodiment, the light source 31 further comprises: three laser light sources 311, 312, 313 for providing red, blue, and green beams, respectively; and a combiner 314 for combining the red, blue and green beams into the collimated beam L31.
The hologram set 32 includes a plurality of cascaded diffractive optical elements, such as a plurality of holograms 321 each hologram having static diffractive grating distribution, so as to produce a static diffractive image when the collimated beam L31 passes through each of the holograms 321.
The player 33 is provided for fast playing the hologram set 32 so as to allow the static diffractive images produced from the plurality of holograms 321 to be presented as a dynamic image.
In view of the foregoing, it is known that the present invention makes use of dynamic diffractive optical elements to replace the prior micro scanner for designing the dynamic diffractive image projection device, which has the advantages of easy manufacture and low cost and which is able to produce the two-dimensional dynamic image.
Although the present invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.
Number | Date | Country | Kind |
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101213298 | Jul 2012 | TW | national |