CN117590679B - Light source device and projection apparatus - Google Patents
Light source device and projection apparatus Download PDFInfo
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- CN117590679B CN117590679B CN202410077707.6A CN202410077707A CN117590679B CN 117590679 B CN117590679 B CN 117590679B CN 202410077707 A CN202410077707 A CN 202410077707A CN 117590679 B CN117590679 B CN 117590679B
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- 238000007493 shaping process Methods 0.000 claims description 34
- 230000003287 optical effect Effects 0.000 claims description 19
- 238000001228 spectrum Methods 0.000 claims description 19
- 230000005622 photoelectricity Effects 0.000 abstract 1
- 230000000694 effects Effects 0.000 description 12
- 238000010586 diagram Methods 0.000 description 11
- 238000009792 diffusion process Methods 0.000 description 11
- 238000005286 illumination Methods 0.000 description 9
- 230000006870 function Effects 0.000 description 8
- 238000003384 imaging method Methods 0.000 description 6
- 238000004891 communication Methods 0.000 description 4
- 239000004973 liquid crystal related substance Substances 0.000 description 4
- XUIMIQQOPSSXEZ-UHFFFAOYSA-N Silicon Chemical compound [Si] XUIMIQQOPSSXEZ-UHFFFAOYSA-N 0.000 description 2
- 230000005540 biological transmission Effects 0.000 description 2
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Classifications
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
- G03B21/00—Projectors or projection-type viewers; Accessories therefor
- G03B21/14—Details
- G03B21/20—Lamp housings
- G03B21/208—Homogenising, shaping of the illumination light
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
- G03B21/00—Projectors or projection-type viewers; Accessories therefor
- G03B21/14—Details
- G03B21/20—Lamp housings
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
- G03B21/00—Projectors or projection-type viewers; Accessories therefor
- G03B21/14—Details
- G03B21/20—Lamp housings
- G03B21/206—Control of light source other than position or intensity
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
- G03B21/00—Projectors or projection-type viewers; Accessories therefor
- G03B21/14—Details
- G03B21/20—Lamp housings
- G03B21/2066—Reflectors in illumination beam
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- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Non-Portable Lighting Devices Or Systems Thereof (AREA)
Abstract
The invention discloses a light source device and projection equipment, and relates to the technical field of photoelectricity. The light source device comprises a first light source component, a light splitting and combining element, a dissipation element, a single-sided compound eye element and a light homogenizing element, wherein a first area of the light splitting and combining element can guide a first light beam emitted by the first light source component to pass through the dissipation element and the single-sided compound eye element, a reflecting element positioned on one side of the single-sided compound eye element far away from the light splitting and combining element reflects the first light beam, so that the first light beam passes through the single-sided compound eye element and the dissipation element again, and the light splitting and combining element guides at least part of the first light beam reflected by the reflecting element and passing through the single-sided compound eye element and the dissipation element to the light homogenizing element.
Description
Technical Field
The present invention relates to the field of photoelectric technologies, and in particular, to a light source device and a projection apparatus.
Background
In the field of projection display, conventional bulbs have not been adopted due to their own defects, and new light sources such as LEDs, fluorescence and lasers have been increasingly becoming the main stream of light sources for projection display because they exhibit excellent characteristics in terms of brightness, color, lifetime, energy consumption and the like. The laser has the advantages of high brightness and high light efficiency as a light source, the optical expansion of the laser is smaller, the light spot formed on the optical element is smaller, and the energy is concentrated. However, the laser projection system may have speckle phenomenon, and needs to dissipate the speckle phenomenon, otherwise, the user experience may be reduced, and the look and feel of screen frosting and resolution degradation may occur. In the prior art, the light rod and the diffusion wheel are combined to dissipate the uniform light, or the two double-sided compound eyes and the vibration diffusion sheet assembly are combined to dissipate the uniform light, but the former has larger volume, and the latter glass compound eyes have high cost.
Disclosure of Invention
In view of the above, the present invention provides a light source device and a projection apparatus, which realize low cost and small volume of light dissipation and uniformity.
In a first aspect, the present invention provides a light source device, including a first light source assembly, a light splitting and combining element, a dissipation element, a single-sided compound eye element, and a light homogenizing element;
the first light source component is used for emitting a first light beam, and the first light beam is narrow-spectrum light;
the light splitting and combining element comprises a first area and a second area, and the first area is used for guiding a first light beam emitted by the first light source assembly to pass through the dissipation element and the single-sided compound eye element;
A reflecting element is arranged on one side of the single-sided compound eye element far away from the light splitting and combining element, and the reflecting element is used for reflecting the first light beam so that the first light beam passes through the single-sided compound eye element and the dissipating element again;
The single-sided compound eye element is provided with a first surface provided with a plurality of sub-eyes and is used for homogenizing the first light beam;
The second region is used for guiding at least part of the first light beam reflected by the reflecting element and passing through the single-sided compound eye element and the dissipation element to the light homogenizing element.
In a possible implementation manner, the second area surrounds the first area, and the second area is larger than the first area, wherein the second area is a reflection area of a first reflector, and the first area is other areas of the first reflector except the second area; or the first area is a second reflecting mirror, and the projection size of the first area on the first surface is smaller than that of the first surface.
In a possible implementation manner, the cross section of the sub-eye is rectangular or regular polygon, and the light spot of the first light beam passing through the single-sided compound eye element twice is correspondingly rectangular or regular polygon.
In a possible implementation manner, the first surface faces the light splitting and combining element, the first light beam passing through the single-sided compound eye element twice exits from the first surface, and the light beam exiting through each sub-eye is focused at the vertex of each sub-eye.
In one possible implementation, the dissipating element includes a transmissive dissipating element, and the transmissive dissipating element is located between the light splitting and combining element and the single-sided compound eye element.
In a possible implementation, the reflective element includes a reflective film or a third mirror disposed on the second surface of the single-sided compound eye element; or the radiator is provided with a reflecting surface which is closely attached to the second surface of the single-sided compound eye element, and the reflecting surface is a reflecting film arranged on the surface of the radiator or the surface of the radiator; or a fourth reflector, wherein an air gap exists between the fourth reflector and the second surface of the single-sided compound eye element; or a reflective dissipating element comprising the reflective dissipating element, the reflective dissipating element satisfying any one or more of:
The reflective dissipation element is provided with a reflective film or a reflective mirror on one surface facing the single-surface compound eye element;
the reflective dissipation element is clung to the second surface of the single-sided compound eye element;
the reflective dissipating element is movable in the direction of the optical axis.
In a possible implementation, the reflective element is movable in the direction of the optical axis.
In a possible implementation manner, the light homogenizing element includes a double-sided compound eye element, and a light spot of a light beam emitted through the double-sided compound eye element is rectangular.
In a possible implementation manner, the light homogenizing element includes a light rod having an incident end face, the light source device further includes a first shaping lens group, and the first shaping lens group is located between the light splitting and combining element and the light rod, and is used for reducing a spot size of a light beam incident on the first shaping lens group, so that the spot size of the light beam incident on the incident end face is smaller than or equal to a size of the incident end face, and is used for controlling a divergence angle of the light beam incident on the first shaping lens group, so that energy in a range of an incident angle of the light beam incident on the incident end face being smaller than or equal to 40 degrees accounts for more than 90% of total energy.
In a possible implementation manner, the device further comprises a second shaping lens set, wherein the second shaping lens set is located between the light splitting and combining element and the single-sided compound eye element and is used for expanding the first light beam emitted by the light splitting and combining element, so that the number of light spots of the first light beam incident on the single-sided compound eye element covering the sub eyes is greater than or equal to 40, and the energy in the range of incidence angle less than or equal to 15 degrees accounts for more than 90% of the total energy.
In a possible implementation manner, the optical system further includes a third shaping lens set, where the third shaping lens set is located between the first light source component and the light splitting and combining element, and is configured to reduce a spot size of the first light beam, so that the spot size of the first light beam incident on the first area is smaller than or equal to the size of the first area.
In a possible implementation manner, the first light beam includes at least two sub-light beams with different wavelength ranges, and optical axes of the sub-light beams are coaxial.
In a possible implementation manner, the light source device further comprises a second light source component and a light combining element, wherein the second light source component is used for emitting broad spectrum light;
The light combination element is positioned between the light splitting and combining element and the light homogenizing element and is used for guiding the first light beam emitted by the light splitting and combining element and the broad spectrum light emitted by the second light source assembly to the light homogenizing element.
In a possible implementation manner, the light spot of the first light beam incident on the light homogenizing element is located at a central position of the light spot of the broad spectrum light.
In a second aspect, the present invention provides a projection apparatus comprising the light source device of the first aspect.
The light source device comprises a first light source component, a light splitting and combining element, a dissipation element, a single-sided compound eye element and a light homogenizing element, wherein a first area of the light splitting and combining element can guide a first light beam emitted by the first light source component to pass through the dissipation element and the single-sided compound eye element, a reflecting element positioned on one side of the single-sided compound eye element far away from the light splitting and combining element reflects the first light beam, so that the first light beam passes through the single-sided compound eye element and the dissipation element again, and the light splitting and combining element guides at least part of the first light beam reflected by the reflecting element and passing through the single-sided compound eye element and the dissipation element to the light homogenizing element.
Drawings
Fig. 1 is a schematic functional block diagram of a projection device according to an embodiment of the present invention;
Fig. 2 is a schematic structural diagram of a projection device according to an embodiment of the present invention;
fig. 3 is a schematic structural diagram of a light source device according to an embodiment of the present invention;
fig. 4 is a schematic structural diagram of another light source device according to an embodiment of the present invention;
fig. 5 is a schematic structural diagram of another light source device according to an embodiment of the present invention;
fig. 6 is a schematic structural diagram of another light source device according to an embodiment of the present invention;
fig. 7 is a schematic structural diagram of another light source device according to an embodiment of the present invention;
fig. 8 is a schematic structural diagram of another light source device according to an embodiment of the present invention.
Detailed Description
In order to better understand the technical solutions of the present invention, the following description will clearly and completely describe the technical solutions of the embodiments of the present invention, and it is obvious that the described embodiments are only some embodiments of the present invention, not all embodiments. It should be understood that the specific embodiments described herein are for purposes of illustration only and are not intended to limit the scope of the invention. While the present disclosure has been described in terms of an exemplary embodiment or embodiments, it should be understood that each aspect of the disclosure may be separately provided as a complete solution. The following embodiments and features of the embodiments may be combined with each other without conflict.
In the present invention, for the purpose of clearly describing the technical solutions of the embodiments of the present invention, the words "first", "second", etc. are used to distinguish identical items or similar items having substantially identical functions and actions, and those skilled in the art will understand that the words "first", "second", etc. do not limit the number and execution order, but merely serve to illustrate and distinguish between the objects to be described, without separating the order, nor do they represent that the number of devices or messages in the embodiments of the present invention is particularly limited, and cannot constitute any limitation of the embodiments of the present invention. "plurality" means two or more, and the like, means that the element or article recited in the preceding word "comprise" or "comprises", and the like, is meant to encompass the element or article listed thereafter and equivalents thereof without precluding other elements or articles.
In order that the invention may be fully understood, a detailed description will be provided below in order to illustrate the technical aspects of the invention. Preferred embodiments of the present invention are described in detail below, however, the present invention may have other embodiments in addition to these detailed descriptions.
Fig. 1 is a schematic functional block diagram of a projection device according to an embodiment of the present invention. As shown in fig. 1, the projection device includes an image processor 110 and a projection light engine 120. Wherein:
the image processor 110 may be a microcontroller, a dedicated image processing chip, etc., and the microcontroller may be an ARM chip, a micro control unit (Microcontroller Unit; MCU), etc.; the dedicated image processing chip may be an image signal processor (IMAGE SIGNAL processing, ISP), a graphics processor (graphics processing unit, GPU), an embedded neural Network Processor (NPU), or the like. The image processor 110 may be used for video decoding, image quality processing, etc.
The projector 120 may include a driving chip, a display chip, a light source, and the like. Wherein the light source may include a laser light source, an LED light source, a fluorescent light source, etc.; the display chip may be a digital micromirror device (Digtial Micromirror Devices, DMD), a liquid crystal device (liquid CRYSTAL DISPLAY, LCD), a liquid crystal on silicon device (Liquid Crystal on Silicon, LCOS), or the like for modulating light source light to generate image light; the driving chip corresponds to the display chip, and for example, the digital micromirror device may be driven by a Digital Light Processing (DLP) element (DIGITAL LIGHT Processing). The projection light machine 120 is used for projecting an image to be projected into a projection screen.
In some embodiments, the projection device further includes a central controller 130, which may be CPU, ARM, MCU or the like, of one or more processing cores. The central controller 130 is a control center of the projection device, and may run or execute software programs and/or an operating system stored in the memory module 140 and invoke data stored in the memory module 140 using various interfaces and lines to connect various portions of the entire projection device. Alternatively, the image processor 110 and the central controller 130 may be integrated as one processor.
In some embodiments, the projection device further includes a storage module 140, an input module 150, and a communication module 160, among other components, of one or more computer-readable storage media. It will be appreciated by those skilled in the art that the projection device structure shown in FIG. 1 is not limiting of the projection device and may include more or fewer components than shown, or may combine certain components, or a different arrangement of components. Wherein:
The memory module 140 may be used to store software programs and an operating system, and the central controller 130 performs various functional applications and data processing by running the software programs and the operating system stored in the memory module 140. The storage module 140 may mainly include a storage program area and a storage data area, wherein the storage program area may store an operating system, an application program (such as a sound playing function, an image playing function, etc.) required for at least one function, etc.; the storage data area may store data created according to the use of the projection device, etc. In addition, the storage module 140 may include high-speed random access memory, and may also include non-volatile memory, such as at least one magnetic disk storage device, flash memory device, or other volatile solid-state storage device. Accordingly, the memory module 140 may also include a memory controller to provide access to the memory module 140 by the central controller 130.
The projection device may further comprise an input module 150, which input module 150 may be used to receive entered numerical or character information and to generate remote control, keyboard, mouse, joystick, optical or trackball signal inputs related to user settings and function control.
The projection device may also include a communication module 160, and in some embodiments the communication module 160 may include a wireless module, through which the projection device may wirelessly transmit over short distances, thereby providing wireless broadband internet access to the user. For example, the communication module 160 may be used to assist a user in accessing streaming media, and the like.
Fig. 2 is a schematic structural diagram of a projection device according to an embodiment of the present invention. As shown in fig. 2, the projection apparatus includes a light source device 210, an illumination system 220, and an imaging system 230. The illumination light generated by the light source device 210 is imaged on a display chip (not shown in the figure) through the illumination system 220, the display chip modulates the incident illumination light into image light to be irradiated into the imaging system 230, and finally the image light is imaged on a projection plane such as a screen to form a projection picture.
The projection apparatus may further include a light source control module (not shown), which may control the operation of one or more light sources in the light source device 210 such that the light source device 210 emits light of a prescribed wavelength band required when generating an image. Further, the light source device 210, the illumination system 220, and the imaging system 230 may all be included in the projector 120 (refer to fig. 1).
The light source device 210 may include one or more light sources. The light source may be a narrow spectrum light source or a broad spectrum light source, wherein a narrow spectrum light source generally refers to a light source having a narrower spectrum, such as a laser light source, and a broad spectrum light source generally refers to a light source having a wider spectrum, such as an LED light source or a fluorescent light source, etc. Further, the light source may be a single light emitting element or an array of light emitting elements, and the array of light emitting elements may include light emitting elements of different colors. For example, the light source may be an LD light source or an LED light source, which generates blue light or green light or red light, or the light source may be a multicolor laser, that is, an array of light emitting elements including a plurality of lasers, for example, the light source may include a blue laser and a red laser, or include a blue laser and a green laser, or include a blue laser, a red laser, and a green laser at the same time.
The light emitting side of the light source device 210 includes a light homogenizing element for homogenizing the illumination light. Specifically, the light homogenizing element includes an incident end face and an exit end face, and is used for homogenizing illumination light incident from the incident end face. Illustratively, the light homogenizing element may be a light bar, compound eye, or the like.
The illumination system 220 is the portion from the light homogenizing element to the display chip for imaging the spot of light exiting the light homogenizing element onto the display chip. For example, the illumination system 230 may include one or more lenses.
The imaging system 230 is used to image light onto a projection plane such as a screen to form a projection screen. Imaging system 230 is typically a lens system, such as a projection lens.
Referring to fig. 3-6, fig. 3-6 are schematic structural diagrams of several light source devices according to embodiments of the present invention. As shown in fig. 3, the light source device includes a first light source assembly 100, a light splitting and combining element 3, a dissipating element 4, a single-sided compound eye element 6, and a light homogenizing element 200, wherein a first light beam emitted from the first light source assembly 100 is guided through the light splitting and combining element 4 and the single-sided compound eye element 6 by the light splitting and combining element 3, reflected by a reflecting element (not shown) on a side of the single-sided compound eye element 6 away from the light splitting and combining element 3, again passes through the single-sided compound eye element 6 and the dissipating element 4, and at least part of the first light beam reflected by the reflecting element and passing through the single-sided compound eye element 6 and the dissipating element 4 is guided through the light splitting and combining element 3 to be incident on the light homogenizing element 200.
The first light source assembly 100 is used for emitting a first light beam. The first light source assembly 100 may include one or more light sources, and the first light source assembly 100 may include one or more optical elements, such as dichroic elements and/or reflective elements, in addition to the light sources, to split, combine, and/or change the direction of propagation of light. As shown in fig. 3, the first light source assembly 100 includes a first light source 1 and a reflecting mirror 2, and a light beam emitted from the first light source 1 is incident on a light splitting and combining element 3 after changing a propagation direction by the reflecting mirror 2. The first light source 1 may be a narrow spectrum light source for emitting a narrow spectrum light, and the narrow spectrum light may include at least two sub-beams with different wavelength ranges, such as red light and blue light, or two sub-beams with different wavelength ranges, or sub-beams with three colors of red light, blue light and green light, for example, the first light source 1 may be a trichromatic laser light source, and then subsequent optical elements, such as a dissipating element 4 and a single-sided compound eye element 6, may act on the trichromatic laser light at the same time, so as to achieve simultaneous dissipation and dodging of the laser light. Further, the optical axes of the plurality of sub-beams emitted from the first light source 1 are coaxial, and the light path light receiving efficiency is high. Alternatively, multiple sub-beams may be combined into one path by optical elements such as dichroic elements and mirrors, as shown in fig. 3. It will be appreciated that in other embodiments, the narrow spectrum light emitted by the first light source 1 may also comprise a light beam of only one wavelength range.
The light splitting and combining element 3 is configured to guide the first light beam emitted from the first light source assembly 100 to sequentially enter the dissipating element 4 and the single-sided compound eye element 6, and guide at least part of the first light beam reflected by the reflecting element and passing through the single-sided compound eye element 6 and the dissipating element 4 to the light homogenizing element 200. In some embodiments, as shown in fig. 3 and 4, the light splitting and combining element 3 includes a first area for guiding the first light beam emitted from the first light source assembly 100 through the dissipating element 4 and the single-sided compound eye element 6, and a second area for guiding at least part of the first light beam reflected by the reflecting element through the single-sided compound eye element 6 and the dissipating element 4 to the light homogenizing element 200. Alternatively, the second region may surround the first region, and the second region is larger than the first region in size, and the first region may be located in a central region of the second region or may be located on a certain side of the second region. Preferably, the first area is located in the central area of the second area, so that the light spot of the first light beam incident on the single-sided compound eye element 6 is located in the central area of the single-sided compound eye element 6, and further, a better light homogenizing effect is achieved. It should be understood that when the first area is located on a certain side of the second area, other optical elements (such as a lens or a reflector) may be added or the light splitting and combining element 3 and the single-sided compound eye element 6 may be arranged in a staggered manner, so that the light spot of the first light beam incident on the single-sided compound eye element 6 is substantially located in the central area of the single-sided compound eye element 6.
In some embodiments, as shown in fig. 3, the first region of the light splitting and combining element 3 is a through hole region of the first mirror, and the second region is a reflective region of the first mirror except for the through hole region. When the first region is located on one side of the second region, the first region may be air at one end of the second region, that is, the first light beam passes through from one side outside the first mirror to be incident on the dissipation element 4. Alternatively, the first region may be a coated region or other region of the first mirror that transmits light in some wavelength range (e.g., blue light) and reflects light in another wavelength range (e.g., green light), or transmits light in one polarization state (e.g., P light) and reflects light in another polarization state (e.g., S light). Further, the projection size of the first area on the first surface of the single-sided compound eye element 6 provided with the sub eyes is smaller than that of the first surface, so that the light efficiency is improved. The first light beam emitted from the first light source assembly 100 is transmitted to the dissipating element 4 through the first area, the first light beam passing through the single-sided compound eye element 6 is reflected back to the single-sided compound eye element 6 by the reflecting element, passes through the dissipating element 4 again, and is reflected to the light homogenizing element 200 through the second area.
In other embodiments, as shown in fig. 4, the first area of the light splitting and combining element 3 is a second mirror, and the second mirror is a small mirror, and the projection size of the small mirror on the first surface of the single-sided compound eye element 6 provided with the sub-eyes is smaller than that of the first surface. The second area may be an air or transparent substrate or a coated area at two ends of the small reflector, and at least part of the first light beam reflected by the reflecting element and passing through the single-sided compound eye element 6 and the dissipating element 4 is transmitted to the light homogenizing element 200 through the second area.
Further, as shown in fig. 6, a third shaping lens group 5 may be disposed between the first light source assembly 100 and the light splitting and combining element 3, and the first light beam emitted from the first light source assembly 100 is condensed by the third shaping lens group 5, so that the spot size of the first light beam incident on the first area is smaller than or equal to the size of the first area, and the light efficiency is improved. The third shaping lens group 5 may comprise one or more lenses, preferably the third shaping lens group 5 comprises a convex lens and a concave lens, reducing the spot size of the first light beam.
The dissipation element 4 may be a stationary diffusion sheet, a diffusion wheel, a vibrating diffusion sheet or the like, which can disrupt the phase of the laser light, destroy the spatial coherence of the laser light and amplify the laser light beam, and the dissipation element 4 may be disposed at any position between the light splitting and combining element 3 and the reflecting element, for example, if the dissipation element 4 is a transmissive dissipation element (fig. 3-5), it may be disposed between the light splitting and combining element 3 and the single-sided compound eye element 6, or between the single-sided compound eye element 6 and the reflecting element; if the dissipating element 4 is a reflective dissipating element (fig. 6), for example, the surface of the dissipating element 4 facing the single-sided compound eye element 6 is a rough surface, and the surface facing away from the single-sided compound eye element 6 is provided with a reflective film or mirror, the reflective film or mirror may be used as a reflective element to be located on the side of the single-sided compound eye element 6 facing away from the light splitting element 3, and further, if the dissipating element 4 is a stationary reflective dissipating element, the reflective dissipating element may be closely attached to the single-sided compound eye element 6, so as to further reduce the volume.
Preferably, as shown in fig. 3, the dissipation element 4 is located between the light splitting and combining element 3 and the single-sided compound eye element 6, so as to increase the area of the light spot incident on the single-sided compound eye element 6, and further improve the light homogenizing effect. It should be understood that, when the dissipating element 4 is located on the side of the single-sided compound eye element 6 away from the light splitting element 3, a shaping lens group may be disposed on the side of the single-sided compound eye element 6 close to the light splitting element 3 to expand the first light beam, so as to increase the area of the light spot incident on the single-sided compound eye element 6.
Optionally, the dissipating element 4 may be a diffusing wheel including a plurality of different diffusing areas, where the number of diffusing areas may be the same as or different from the number of sub-beams in the first light beam emitted by the first light source assembly 100, and for example, the first light source 1 is a red, green and blue laser light source, where the dissipating element 4 may include three diffusing areas of RGB, R diffusing areas are used for diffusing red laser light, G diffusing areas are used for diffusing green laser light, B diffusing areas are used for diffusing blue laser light, and the diffusing angles of the three diffusing areas may be the same or different, preferably, the diffusing angles of the three diffusing areas are different from each other, and the diffusing angle of the R diffusing area is the smallest, so that the light spot of each color meets the requirement, while avoiding the red laser light spot from being amplified too much, resulting in a decrease in system efficiency; for another example, the dissipation element 4 may include only two diffusion regions, where one diffusion region diffuses the red laser light, the other diffusion region diffuses the green laser light and the blue laser light, and the diffusion angle of the region diffusing the red laser light is smaller than that of the other diffusion region, so that the number of diffusion regions is reduced, and the cost is saved.
The single-sided compound eye element 6 has a first surface provided with a plurality of sub-eyes (e.g., lens units), and the single-sided compound eye element 6 is configured to homogenize the first light beam. In the embodiment of the invention, the first light beam passes through the single-sided compound eye element 6 twice, so that the light homogenizing effect of the double-sided compound eye can be realized through one single-sided compound eye, and the cost is reduced. In some embodiments, the cross-section of the sub-eye on the first surface of single-sided compound eye element 6 has a first shape such that the spot of the first light beam that passes twice through single-sided compound eye element 6 is the first shape. Preferably, the first shape may be rectangular or regular polygon (such as regular hexagon or regular octagon, etc.), so as to further improve the light homogenizing effect of the single-sided compound eye element 6. In other embodiments, the first shape may be a circle, a triangle, or other shapes, which are not limited in this regard.
Further, the first surface of the single-sided compound eye element 6 faces the light splitting and combining element 3, the first light beam passing through the single-sided compound eye element twice exits from the first surface, and the light beam exiting through each sub-eye is focused at the vertex of each sub-eye. The single-sided compound eye and the reflecting element are used for realizing the light homogenizing effect of the double-sided compound eye, the eccentric core and the inclination of the two sides of the double-sided compound eye do not need to be controlled, and the processing difficulty can be greatly reduced, thereby greatly reducing the cost.
The side of the single-sided compound eye element 6 away from the light splitting and combining element 3 is provided with a reflecting element (not shown in the figure) for reflecting the first light beam, so that the first light beam returns to pass through the single-sided compound eye element 6 and the dissipating element 4 again, and is reflected to the light homogenizing element 200 through the light splitting and combining element 3. The reflective element may be disposed in close proximity to the single-sided compound eye element 6 as shown in fig. 3, or may have an air gap with the single-sided compound eye element 6 as shown in fig. 5-6. Illustratively, the reflective element may include a reflective film or a third mirror disposed on the second surface of the single-sided compound eye element 6; or comprises a radiator with a reflecting surface, wherein the radiator is tightly attached to the second surface of the single-sided compound eye element 6, and the reflecting surface is a reflecting film arranged on the surface of the radiator or is the surface of the radiator; or a fourth mirror 9, said fourth mirror 9 having an air gap with the second surface of the single-sided compound eye element 6, as shown in fig. 5. The reflecting element is preferably a radiator which is closely attached to the single-sided compound eye element 6, the reflecting film is insensitive to the incident angle, and the single-sided compound eye element 6 can be radiated at the same time.
Alternatively, the reflecting element may be moved in the direction of the optical axis, thereby changing the optical path difference or phase difference at different times, destroying the temporal coherence, and eliminating speckle. If the reflecting element is disposed in close contact with the single-sided compound eye element 6, for example, the reflecting element is a reflecting film or a reflecting mirror disposed on the surface of the single-sided compound eye element 6, or is a heat sink disposed in close contact with the single-sided compound eye element 6, the movement of the reflecting element corresponds to the movement of the single-sided compound eye element 6.
In some embodiments, a shaping lens group may be further disposed between the light splitting and combining element 3 and the single-sided compound eye element 6, for example, as shown in fig. 5 to 6, a second shaping lens group 7 is disposed between the light splitting and combining element 3 and the single-sided compound eye element 6, and the first light beam is expanded by the second shaping lens group 7, so that the number of light spots of the first light beam incident on the single-sided compound eye element 6 covering sub-eyes thereof is greater than or equal to 40, for example, the number of light spots covering sub-eyes is between 50 and 2000, the energy in the range of the incident angle being less than or equal to 15 degrees accounts for more than 90% of the total energy, for example, the capability of the incident angle being less than or equal to 10 degrees accounts for more than 95% of the total energy, so as to further improve the light homogenizing effect. The second shaping lens group 7 may comprise one or more lenses, preferably the second shaping lens group 7 comprises a convex lens and a concave lens, wherein the convex lens is located between the single-sided fly's eye element and the concave lens, so that the beam expanding effect can be met, and the volume and cost requirements can also be met. In other embodiments, a portion of the lenses of the second shaping lens set is positioned between the first light source assembly 100 and the light splitting and combining element 3, and a portion of the lenses is positioned between the light splitting and combining element 3 and the single-sided compound eye element 6.
It should be understood that a shaping lens set may be disposed between the light splitting and combining element 3 and the light homogenizing element 200, as shown in fig. 5 or fig. 7, to shape and control the light beam so that the size and angle of the light spot incident on the light homogenizing element 200 meet the requirements.
The light homogenizing element 200 may include a single-sided or double-sided compound eye element or a light rod, etc. having a light homogenizing effect, and the energy in the range of the incident angle of the light beam to the surface of the light homogenizing element 220 being 50 degrees or less accounts for 90% or more of the total energy. In some embodiments, the light homogenizing element 200 is a double-sided compound eye element, as shown in fig. 3-6, the light spot of the light beam emitted by the double-sided compound eye element is rectangular, so that the light homogenizing effect can be ensured, and the light spot irradiated on the display chip can meet the requirement. In other embodiments, the light homogenizing element 200 may be a light rod, as shown in fig. 7, where a first shaping lens group 8 is further disposed between the light splitting and combining element 3 and the light homogenizing element 200, and the first shaping lens group 8 is configured to reduce a spot size of a light beam incident on an incident end face of the light rod so that the spot size of the light beam incident on the incident end face is smaller than or equal to a size of the incident end face, and is configured to control a divergence angle of the light beam incident on the incident end face of the light rod so that energy in a range of an incident angle of the light beam incident on the incident end face of the light rod is smaller than or equal to 40 degrees accounts for more than 90% of total energy, and for example, energy in a range of an incident angle of less than or equal to 30 degrees accounts for more than 95% of total energy, so as to further improve light efficiency and light homogenizing effect. The first shaping lens group 8 may comprise one or more lenses, preferably the first shaping lens group 8 comprises a convex lens and a concave lens, wherein the concave lens is located between the light rod and the convex lens, and can meet the beam shrinking effect and the volume and cost requirements.
In some embodiments, the light source device may further comprise one or more other light source modules as supplementary and/or compensating light sources for the first light source 1. As shown in fig. 8, the light source device 210 further includes a second light source assembly 11 and a light combining element 13, and the first light beam emitted from the light splitting and combining element 3 and the second light beam emitted from the second light source assembly 11 are combined by the light combining element 13 and then are incident on the light homogenizing element 200. Wherein the first and second light beams may comprise light of different wavelength ranges, may comprise light of the same wavelength range, or may comprise wavelength ranges
The second light source component 11 is used for emitting a second light beam, the second light beam can be narrow spectrum light or wide spectrum light, preferably, the second light source component 11 is used for emitting wide spectrum light, the wide spectrum light and the narrow spectrum light are mixed, a high color gamut of the narrow spectrum can be obtained, meanwhile, the speckle effect and the color edge condition of the narrow spectrum are weakened, and the use comfort of a user is improved. The optical axis of the first light beam incident on the light homogenizing element 200 may be parallel or coaxial with the optical axis of the second light beam, preferably, the light spot of the first light beam incident on the light homogenizing element 200 is located at the center of the light spot of the broad spectrum light (the second light beam), the light paths are symmetrical, the size and angle of the light spot after mixing are symmetrical, thus the subsequent combination of the adjustable aperture when passing through the lens, the loss of brightness and contrast is symmetrical, and various uniformity problems caused by asymmetry are avoided.
The light combining element 13 is located between the light splitting and combining element 3 and the light homogenizing element 200, and is configured to guide the first light beam emitted from the light splitting and combining element 3 and the second light beam emitted from the second light source assembly 11 to the light homogenizing element 200. The light combining element 13 may be a plate coated film, a film for transmitting the first light beam to reflect the second light beam, or a partition coated film, or an aperture scheme, so that the first light beam (narrow spectrum light) passes through the aperture and the second light beam (wide spectrum light) is reflected.
Optionally, a third shaping lens set 12 may be further disposed between the second light source assembly 11 and the light combining element 13, as shown in fig. 8, the second light beam emitted from the second light source assembly 11 is shaped by the third shaping lens set 12 and then enters the light combining element 13, and the third shaping lens set 12 can shape the second light beam into near-parallel light, so that the back-end system can receive the light conveniently.
It should be noted that, the corresponding transmission function in the above embodiment may be changed into reflection, and the reflection function is changed into transmission, so that the function implementation of the whole light path is not affected, and the embodiments of the present invention will not be described in detail.
The foregoing is merely illustrative of the present invention, and the present invention is not limited thereto, and any person skilled in the art will readily recognize that variations or substitutions are within the scope of the present invention. Therefore, the protection scope of the present invention shall be subject to the protection scope of the claims.
Claims (15)
1. The light source device is characterized by comprising a first light source component, a light splitting and combining element, a dissipation element, a single-sided compound eye element and a light homogenizing element;
the first light source component is used for emitting a first light beam, and the first light beam is narrow-spectrum light;
the light splitting and combining element comprises a first area and a second area, and the first area is used for guiding a first light beam emitted by the first light source assembly to pass through the dissipation element and the single-sided compound eye element;
A reflecting element is arranged on one side of the single-sided compound eye element far away from the light splitting and combining element, and the reflecting element is used for reflecting the first light beam so that the first light beam passes through the single-sided compound eye element and the dissipating element again;
The single-sided compound eye element is provided with a first surface provided with a plurality of sub-eyes and is used for homogenizing the first light beam;
The second region is used for guiding at least part of the first light beam reflected by the reflecting element and passing through the single-sided compound eye element and the dissipation element to the light homogenizing element.
2. A light source device according to claim 1, wherein the second region surrounds the first region and is larger than the first region in size, wherein the second region is a reflection region of a first mirror, and the first region is other regions of the first mirror than the second region; or the first area is a second reflecting mirror, and the projection size of the first area on the first surface is smaller than that of the first surface.
3. A light source device according to claim 1, wherein the sub-eye has a rectangular or regular polygon cross section, and the spot of the first light beam passing through the single-sided compound eye element twice is correspondingly rectangular or regular polygon.
4. The light source device according to claim 1, wherein the first surface faces the light splitting and combining element, the first light beam passing through the single-sided compound eye element twice exits from the first surface, and the light beam exiting through each sub-eye is focused at the vertex of each sub-eye.
5. A light source device as recited in claim 1, wherein the dissipating element comprises a transmissive dissipating element and the transmissive dissipating element is positioned between the light splitting and combining element and the single-sided compound eye element.
6. A light source device according to claim 1, wherein the reflecting element comprises a reflecting film or a third reflecting mirror provided on the second surface of the single-sided compound eye element; or the radiator is provided with a reflecting surface which is closely attached to the second surface of the single-sided compound eye element, and the reflecting surface is a reflecting film arranged on the surface of the radiator or the surface of the radiator; or a fourth reflector, wherein an air gap exists between the fourth reflector and the second surface of the single-sided compound eye element; or a reflective dissipating element comprising the reflective dissipating element, the reflective dissipating element satisfying any one or more of:
The reflective dissipation element is provided with a reflective film or a reflective mirror on one surface facing the single-surface compound eye element;
the reflective dissipation element is clung to the second surface of the single-sided compound eye element;
the reflective dissipating element is movable in the direction of the optical axis.
7. A light source device according to claim 1, wherein the reflecting member is movable in the optical axis direction.
8. A light source device according to claim 1, wherein the light homogenizing element comprises a double-sided compound eye element, and the light spot of the light beam emitted through the double-sided compound eye element is rectangular.
9. A light source device according to claim 1, wherein the light homogenizing element comprises a light rod having an incident end face, the light source device further comprises a first shaping lens group located between the light splitting and combining element and the light rod, for reducing a spot size of a light beam incident on the first shaping lens group so that the spot size of the light beam incident on the incident end face is smaller than or equal to a size of the incident end face, and for controlling a divergence angle of the light beam incident on the first shaping lens group so that energy in a range of an incident angle of the light beam incident on the incident end face being smaller than or equal to 40 degrees accounts for 90% or more of total energy.
10. The light source device according to claim 1, further comprising a second shaping lens group, wherein the second shaping lens group is located between the light splitting and combining element and the single-sided compound eye element, and is configured to expand the first light beam emitted from the light splitting and combining element, so that the number of light spots of the first light beam incident on the single-sided compound eye element covering the sub-eyes is greater than or equal to 40, and the energy in the range of incidence angle less than or equal to 15 degrees accounts for more than 90% of the total energy.
11. A light source device as recited in claim 1, further comprising a third shaping lens group, said third shaping lens group being positioned between said first light source assembly and said light splitting and combining element for reducing a spot size of the first light beam such that a spot size of the first light beam incident on said first region is less than or equal to a size of said first region.
12. A light source device according to claim 1, wherein the first light beam comprises at least two sub-light beams having different wavelength ranges, and the optical axes of the sub-light beams are coaxial.
13. The light source device according to claim 1, further comprising a second light source module and a light combining element, wherein the second light source module is configured to emit broad spectrum light;
The light combination element is positioned between the light splitting and combining element and the light homogenizing element and is used for guiding the first light beam emitted by the light splitting and combining element and the broad spectrum light emitted by the second light source assembly to the light homogenizing element.
14. A light source device as recited in claim 13, wherein a spot of said first light beam which is incident on said light homogenizing element is located at a center position of a spot of said broad spectrum light.
15. A projection apparatus comprising the light source device of any one of claims 1-14.
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