PROJECTION SCREEN AND PROJECTION SYSTEM
20220269159 · 2022-08-25
Inventors
- Lin WANG (Guangdong, CN)
- Wei Sun (Guangdong, CN)
- Xiaofeng TANG (Guangdong, CN)
- Fei HU (Guangdong, CN)
- Yi Li (Guangdong, CN)
Cpc classification
G02B27/18
PHYSICS
International classification
G02B27/18
PHYSICS
Abstract
The present application provides a projection screen and a projection system. The projection screen includes an optical structure layer and a reflective layer, where the optical structure layer includes a plurality of microstructure units; each of the plurality of microstructure units include a first sidewall and second sidewalls; the reflective layer covers at least part of the first sidewall to form a first working surface, and the reflective layer covers at least part of the second sidewalls to form second working surfaces, respectively; the first working surface deflects an input image beam, and at least part of the input image beam is transmitted to viewer's field and the second working surfaces; and the second working surfaces deflect an input image beam came from the first working surface, and the input image beam came from the first working surface is transmitted to the viewer's field. The present application improves the brightness evenness of the projection screen.
Claims
1. A projection screen, comprising an optical structure layer and a reflective layer, wherein the optical structure layer comprises a plurality of microstructure units, each of the plurality of microstructure units comprises a first sidewall and second sidewalls, and the reflective layer covers at least part of the first sidewall to form a first working surface, and the reflective layer covers at least part of the second sidewalls to form second working surfaces, respectively, the first working surface deflects an input image beam, and at least part of the input image beam is transmitted to a viewer's field and the second working surfaces, and the second working surfaces deflect an input image beam came from the first working surface, and the input image beam came from the first working surface is transmitted to the viewer's field.
2. The projection screen according to claim 1, further comprising a substrate, arranged at a side of the optical structure layer away from the reflective layer, and a scattering layer, arranged at a side of the substrate away from the optical structure layer.
3. The projection screen according to claim 2, wherein the first working surface of each of the plurality of microstructure units forms a first angle with a surface of the substrate, and one of the first angles is unequal to others of the first angles in a vertical direction of the projection screen, and one of the first angles is within a range from 4° to 12°.
4. The projection screen according to claim 2, wherein each of the plurality of microstructure units further comprise a third sidewall, which forms a second angle with a surface of the substrate, and the second angle ranges from 40° to 90°.
5. The projection screen according to claim 2, wherein the plurality of microstructure units have a triangular prism structure, or comprise a triangular prism structure and a quadrangular prism structure which is attached with a sidewall of the triangular prism structure.
6. The projection screen according to claim 5, wherein the plurality of microstructure units are arranged in a horizontal direction and the vertical direction of the projection screen and form an array; and a reflective material is coated between two of the plurality of microstructure units that are adjacent to each other.
7. The projection screen according to claim 5, wherein the first working surface is configured to deflect a part of the input image beam in the vertical direction of the projection screen, and the part of the input image beam is collimated and transmitted to the viewer's field.
8. The projection screen according to claim 2, wherein the scattering layer comprises at least one of a volume scattering film, an irregular surface scattering film or a regular microlens array film; and the substrate is made of a material at least one of polyethylene terephthalate (PET), polycarbonate (PC), polyvinyl chloride (PVC) or polymethyl methacrylate (PMMA).
9. The projection screen according to claim 1, wherein one of the plurality of microstructure units comprise a vertical inclined wall, two vertical sidewalls intersecting with a plane of a surface of the projection screen, a vertical sidewall parallel to the plane of the surface of the projection screen, and a bottom wall; wherein the vertical inclined wall is the first sidewall; and the two vertical sidewalls intersecting with the plane of the surface of the projection screen are the second sidewalls.
10. A projection system, comprising a projection screen, and a projection light source, wherein the projection screen comprises an optical structure layer and a reflective layer, the optical structure layer comprises a plurality of microstructure units, each of the plurality of microstructure units comprises a first sidewall and second sidewalls, and the reflective layer covers at least part of the first sidewall to form a first working surface, and the reflective layer covers at least part of the second sidewalls to form second working surfaces, respectively, the first working surface deflects an input image beam, and at least part of the input image beam is transmitted to a viewer's field and the second working surfaces, and the second working surfaces deflect an input image beam came from the first working surface, and the input image beam came from the first working surface is transmitted to the viewer's field; wherein the projection light source is configured to generate an image beam; and the projection screen is configured to receive the image beam, process the image beam, and reflect the processed image beam to a viewer's field.
11. The projection system according to claim 10, further comprising a substrate, arranged at a side of the optical structure layer away from the reflective layer, and a scattering layer, arranged at a side of the substrate away from the optical structure layer.
12. The projection screen according to claim 11, wherein the first working surface of each of the plurality of microstructure units forms a first angle with a surface of the substrate, and one of the first angles is unequal to others of the first angles in a vertical direction of the projection screen, and one of the first angles is within a range from 4° to 12°.
13. The projection system according to claim 10, wherein the plurality of microstructure units have a triangular prism structure, or comprise a triangular prism structure and a quadrangular prism structure which is attached with a sidewall of the triangular prism structure.
14. The projection system according to claim 13, wherein the plurality of microstructure units are arranged in a horizontal direction and the vertical direction of the projection screen and form an array; and a reflective material is coated between two of the plurality of microstructure units that are adjacent to each other.
15. The projection system according to claim 13, wherein the first working surface is configured to deflect a part of the input image beam in the vertical direction of the projection screen, and the part of the input image beam is collimated and transmitted to the viewer's field.
16. The projection system according to claim 10, wherein the scattering layer comprises at least one of a volume scattering film, an irregular surface scattering film or a regular microlens array film; and the substrate is made of a material at least one of polyethylene terephthalate (PET), polycarbonate (PC), polyvinyl chloride (PVC) or polymethyl methacrylate (PMMA).
17. The projection system according to claim 5, wherein the first working surface is configured to deflect another part of the input image beam in a horizontal direction of the projection screen, and guide the another part of the input image beam to the second working surfaces.
18. The projection system according to claim 5, wherein the second working surfaces are configured to deflect the another part of the input image beam in the horizontal direction and/or the vertical direction of the projection screen, and the another part of the image beam is collimated and transmitted to the viewer's field.
19. The projection system according to claim 1, wherein the reflective layer comprises at least one of metal aluminum, silver, absorbing particles or scattering particles.
20. The projection system according to claim 5, wherein the microstructure units are arranged at intervals at least in a horizontal direction of the projection screen or a vertical direction of the projection screen.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0009] To describe the technical solutions in the embodiments of this application more clearly, the drawings required to describe the embodiments are briefly described below. Apparently, the drawings described below are only some embodiments of this application. Those of ordinary skill in the art may further obtain other drawings based on these drawings without creative efforts. Figures:
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DETAILED DESCRIPTION
[0028] The technical solutions in the embodiments of this application are clearly and completely described below with reference to the accompanying drawings in the embodiments of this application. Apparently, the described embodiments are merely some rather than all of the embodiments of this application. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of this application without creative efforts should fall within the protection scope of this application.
[0029] The existing direct projection screen adopts a wire grid structure with the same structure in the horizontal or vertical direction. This structure can only collimate the image beam in a single direction. In addition, the image beam is incident on different positions of the screen at different angles. Therefore, the uncollimated light beam will be transmitted in a region deviated from the viewer's field of view (FOV), resulting in poor brightness evenness of the projection screen and affecting the viewing experience of the viewer.
[0030] The existing direct projection screen adopts a horizontal wire grid structure as shown in
[0031] Referring to
[0032] The optical structure layer 11 includes a plurality of microstructure units. The microstructure unit includes a first sidewall and second sidewalls. The reflective layer covers at least part of the first sidewall and at least part of the second sidewalls to form first working surface 1111 and second working surfaces 1112.
[0033] The first working surface 1111 deflects an input image beam, such that at least a part of the image beam is transmitted to an FOV region and the second working surfaces 1112. The second working surfaces 1112 deflect the image beam from the first working surface 1111, such that the image beam from the first working surface 1111 is transmitted to the FOV region.
[0034] In an embodiment, a projection light source generates and outputs an image beam to the projection screen. The projection light source may be a general projector, a short-throw (ST) projector or an ultra-short-throw (UST) projector. The projection beam emitted by the projection light source can be irradiated on the reflective layer 12 through gaps between the microstructure units or directly irradiated on the microstructure units.
[0035] In this embodiment, the projection screen includes an optical structure layer 11 and a reflective layer 12. The reflective layer 12 covers at least partial surfaces of the microstructure units of the optical structure layer 11 to form the first working surface 1111 and the second working surfaces 1112. The first working surface 1111 deflects the image beam, such that a part of the image beam is transmitted to the second working surfaces 1112 and the FOV region under the action of the first working surface 1111. The image beam transmitted to the second working surfaces 1112 is transmitted to the FOV region under the action of the second working surfaces 1112. This design improves the brightness evenness of the projection screen, and realizes high gain and wide viewing angle.
[0036] For example, as shown in
[0037] It should be noted that, in a conventional viewing environment, the image beam reflected by the screen is preferably a collimated beam. That is, the input image beams B1 and B2 are reflected by the first working surface 1111 and the second working surfaces 1112 to form collimated image beams B1 and B2.
[0038] Referring to
[0039] The divergence angle of the image beam reflected by the reflective layer 12 is generally relatively small, therefore, in order to increase the visible range of the projection screen, the scattering layer 14 may be provided at a side where the projection light source 20 is located. Specifically, the substrate 13 is provided at a side of the optical structure layer 11 away from the reflective layer 12, and the scattering layer 14 is provided at a side of the substrate 13 away from the optical structure layer 11. That is, the projection screen 10 includes the scattering layer 14, the substrate 13, the optical structure layer 11 and the reflective layer 12 which are stacked.
[0040] The scattering layer 14 includes at least one of a volume scattering film, an irregular surface scattering film or a regular microlens array film. That is, the scattering layer 14 may be a commercial scattering film structure, such as a volume scattering film, an irregular surface scattering film or a regular microlens array film. These scattering films can be used alone or stacked together to increase the visible range of the projection screen 10.
[0041] The substrate 13 is made of an organic material such as polyethylene terephthalate (PET), polycarbonate (PC), polyvinyl chloride (PVC) or polymethyl methacrylate (PMMA).
[0042] The microstructure units of the optical structure layer 11 can be fabricated on a master mold by means of precision lathe processing, laser engraving or microstructure development and exposure, and then transferred to a surface of the transparent or gray substrate 13 by heat embossing or ultraviolet (UV) glue transfer.
[0043] The reflective layer 12 can be formed outside the optical structure layer 11 from high-reflectivity metal aluminum, silver or a reflective coating with absorbing/scattering particles by magnetron sputtering, thermal evaporation, electron beam evaporation, etc.
[0044] It should be understood that the deflection mentioned in this embodiment includes deflection in a horizontal direction and/or deflection in a vertical direction. Specifically, the first working surface 1111 is configured to deflect a part of the image beam in the vertical direction of the projection screen, such that the part of the image beam is collimated and transmitted to the FOV region. The first working surface is further configured to deflect another part of the image beam in the horizontal direction of the projection screen, so as to guide another part of the image beam to the second working surfaces 1112. The second working surfaces 1112 are configured to deflect another part of the image beam in the horizontal direction and/or the vertical direction of the projection screen, such that another part of the image beam is collimated and transmitted to the FOV region of the viewer.
[0045] The specific structure of the microstructure units will be described below. As shown in
[0046] The microstructure units further include third sidewalls 1113. Specifically, the bottom walls of the microstructure units are the third sidewalls 1113. The third sidewalls 1113 and the surface of the substrate 13 form second angles β, which are 40-90°. The second angles β corresponding to the microstructural units in the entire projection screen 10 may be equal or may not be equal. The corresponding relationship between a depth Z of the microstructure units and the second angle β is shown in
[0047] In a specific embodiment, as shown in
[0048] The microstructure units are arranged in an array in the horizontal and vertical directions of the projection screen. That is, the microstructure units are arranged at intervals in the horizontal direction of the projection screen, and the microstructure units are also arranged at intervals in the vertical direction of the projection screen 10. A reflective material is coated between every two adjacent ones of the microstructure units.
[0049] Referring to
[0050] In another specific embodiment, the microstructure units may also be irregular structures, as shown in
[0051] Since the inclination angle of the first working surface 1111 is relatively small, the depth of the second working surfaces 1112 is relatively small. Therefore, the triangular prism structures shown in
[0052] The projection screen 10 in this embodiment is simple in structure, low in cost, high in gain, and high in brightness evenness, and the projection screen 10 can be applied to projection products to provide better viewing effects.
[0053] Referring to
[0054] The projection screen 10 of the projection system 160 can adjust the reflected image beam in horizontal and vertical directions, so as to significantly improve the brightness evenness of the projection screen 10 and ensure a better viewing effect.
[0055] The above described are merely implementations of the present disclosure, which do not constitute a limitation on the patent scope of the present application. Any equivalent structure or equivalent process change made based on the description and drawings of the present disclosure, or direct or indirect application thereof in other related technical fields, should still fall in the protection scope of the patent of the present disclosure.