Imaging optical system
By employing a polarization-folded optical path design in a desktop virtual image display device, combined with curved mirrors, beam splitters, and reflectors, the optical path structure is optimized, solving the problem of large optical system thickness and achieving thinner, higher-quality imaging effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN JUQINGQING TECH CO LTD
- Filing Date
- 2025-06-12
- Publication Date
- 2026-04-28
AI Technical Summary
The optical systems of existing desktop virtual image display devices are quite thick, which limits their use and design. Furthermore, the increased area of the beam splitter and curved mirror at large field of view and large exit pupil distance leads to an increase in system size.
The design employs a polarization-folding optical path. Through the special configuration of the curved mirror and beam splitter, combined with the reflector and lens, a polarization-folding optical path is formed. This shortens the distance between the beam splitter and the curved mirror, increases the distance between the image source and the curved mirror, reduces the thickness of the optical system, and optimizes the imaging effect by adjusting the angle of the reflector and the use of the lens.
It effectively reduces the thickness of desktop display devices, making their appearance closer to traditional monitors, while reducing image ghosting when viewed at large angles, thus improving image quality and visual experience.
Smart Images

Figure CN224176820U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of desktop display technology, and in particular to an imaging optical system. Background Technology
[0002] Scientific research shows that myopia is the result of the combined effects of genetic and environmental factors. After close-range use of the eyes, the refractive state of the human eye undergoes a small-amplitude, temporary myopic drift, which is called transient myopia induced by close-range use of the eyes. Prolonged, continuous close-range use of the eyes is considered a key inducing factor for the development of myopia.
[0003] To address the shortcomings of near-field eye-use products, desktop virtual image displays have been proposed. These displays employ an optical distance imaging scheme, magnifying a small, near-field image onto a large, distant virtual image within a small space on a desktop. This distance-based virtual image reduces the refractive power required for the eye to focus, thereby reducing eye strain and the risk of myopia.
[0004] In general optical imaging systems, including reflective imaging systems, the basic object-image relationship can be referenced to thin lens imaging. A thin lens is one whose thickness is negligible in imaging calculations. For a thin lens in air, its object-side and image-side focal lengths are equal, i.e. The imaging formula is Where s and s′ are the object distance and image distance, respectively. (Vertical magnification) When the object is a real object, i.e., s>0, there are several possible imaging possibilities, as shown in Table 1.
[0005]
[0006]
[0007] Table 1 Thin Lens Imaging Analysis
[0008] VR optics, based on the imaging principle of the aforementioned thin-lens imaging system, has successively gone through three stages: aspherical lenses, Fresnel lenses, and pancake folded optical paths. (See also...) Figure 17 Fresnel lenses offer advantages in terms of low cost and controllable image quality. Their design principle involves eliminating the portion of light that travels in a straight line within the lens, retaining only the curved lens surface used to refract light. This significantly reduces lens thickness while preserving the optical characteristics of conventional lenses, achieving a lightweight design. However, because this approach requires placing the screen near the focal plane of the lens, the distance between the lens and the screen is relatively long, resulting in a larger overall optical module size. Furthermore, the single-layer lens design of Fresnel lenses inherently leads to issues such as blurred image edges, susceptibility to distortion, and the inability to adjust diopter.
[0009] Against this backdrop, the Pancake optical solution emerged and has gradually become the direction for the development and evolution of consumer-grade VR optics. Based on the principle of folded optical paths, this solution not only achieves ultra-short optical focusing and imaging, thereby greatly reducing lens thickness and headset size, but also overcomes the edge blurring and distortion phenomena of traditional Fresnel lens optical solutions, achieving a zero-distortion, full-field high-definition visual experience.
[0010] The core design concept of the Pancake optical solution is to fold the optical path through the reflection and refraction of polarized light. Also known as a folded optical path solution, the Pancake optical solution is a type of VR short-focal-length optical solution. The principle is that the image source emitted by the display screen enters a lens with semi-transparent and semi-reflective properties. The light then refracts multiple times between the lens, a quarter-phase retardation plate, and a reflective polarizer, finally exiting from the reflective polarizer and entering the human eye. Figure 18 As shown. In other words, this solution uses folded optical elements to allow light to travel the same distance in a narrower space, "folding" the original light path, thereby compressing the space between the optical lens and the display screen, and thus significantly reducing the size of the VR headset. Theoretically, this optical solution can reduce the size of the VR headset to 1 / 4 of that of the Fresnel lens solution.
[0011] The optical path principle of the desktop virtual image display device based on the above Pancake optical scheme is as follows: Figure 1 As shown, the specific polarized light emitted from the image source 1' (such as an LCD screen) is reflected by the beam splitter 3' and then shines on the curved mirror 2'. After being reflected by the curved mirror 2', the imaging light passes through the beam splitter 3' and enters the human eye at the observation position 4'. The human eye focuses the light against the light onto the virtual image surface and, based on the experience that light travels in a straight line, assumes that the light is emitted from the virtual image surface.
[0012] This technology is inspired by the mature Birdbath coaxial catadioptric optics solution in AR (Augmented Reality) displays. The project's product architecture can be considered an enlarged version of the Birdbath solution in AR glasses. Traditional AR glasses, as head-mounted products, prioritize small size for performance, hence the generally small size of the Birdbath curved mirrors. The curved mirrors used in AR glasses cannot meet the 10-inch to 20-inch aperture requirements of desktop designs. In recent years, the increasingly mature head-up display market has driven the industrialization of large-aperture curved mirrors to achieve a wider viewing angle. Currently, mass-produced freeform mirrors that meet imaging accuracy requirements have made desktop optical solutions with large viewing angles, large exit pupil distances, and large eyeboxes possible.
[0013] Desktop virtual image display devices employing the above technology have a longer image distance because the image source 1' is positioned within one focal length of the curved reflector 2' and close to the focal point. Consequently, the virtual image is also farther from the viewer's eye. Typical product designs have a virtual image distance greater than 5 meters, compared to approximately 30 centimeters for close-range reading. When viewing the display device, the accommodative effort required by the lens of the eye is significantly reduced, and the lens remains in a more relaxed state, thus reducing eye strain and the risk of myopia.
[0014] The distance from the observation position 8' to the beam splitter 3' is the exit pupil distance; the angle between the two lines connecting the observation position 8' as the vertex and the opposite edges of the light-emitting ends of the image source 1' from the observation position 8' is the field of view angle; and the distance from the beam splitter 3' to the light-emitting end of the image source 1' is the thickness of the optical system. When the exit pupil distance or field of view angle increases, a larger beam splitter 3' is required to achieve the same display effect. However, the beam splitter 3' is tilted relative to the curved mirror 2', and the larger beam splitter 3' increases the thickness of the entire optical system. Generally speaking, when the exit pupil distance is about 200mm and the diagonal field of view angle is about 30°, the thickness of the optical design is generally above 150mm. Furthermore, the thickness of the optical design increases with the increase of the exit pupil distance and the field of view angle, thus limiting the use of desktop display devices. Therefore, how to reduce the thickness of desktop display systems is a problem that urgently needs to be solved by those skilled in the art. Utility Model Content
[0015] The main objective of this invention is to propose an imaging optical system to reduce the thickness of desktop display systems.
[0016] To achieve the above objectives, the imaging optical system proposed in this utility model includes a curved mirror, an image source, a reflecting mirror, and a beam splitter; the curved mirror has a first side and a second side arranged opposite to each other, the first side of the curved mirror is configured as a convex surface, the second side of the curved mirror is configured as a concave surface, and a first beam splitter is provided on the surface of the first side or the second side of the curved mirror;
[0017] The image source is located on the first side of the curved mirror;
[0018] A reflector, disposed on a first side of the curved mirror, is used to reflect light emitted from the image source back to the first side of the curved mirror; and,
[0019] A beam splitter is disposed on the second side of the curved mirror and spaced apart from the curved mirror. The beam splitter is used to reflect the imaging light transmitted through the curved mirror to the first beam splitting surface of the curved mirror. The imaging light is reflected again by the first beam splitting surface of the curved mirror and then exits from the imaging optical system through the beam splitter.
[0020] Wherein, the focal length of the curved mirror is f, and the object distance between the image source and the curved mirror is s, where s < f.
[0021] Light emitted from the image source enters the curved mirror from the first side via a reflector, passes through the curved mirror, and exits from the second side. It then enters the beam splitter near the curved mirror and is reflected again. After being reflected to the second side of the curved mirror, it is reflected again and then transmitted from the beam splitter away from the curved mirror. A virtual image at a distance can be observed at the viewing position. By placing the image source and the beam splitter on opposite sides of the curved mirror, the above-mentioned light path forms a polarized folded light path. The light path between the curved mirror and the image source is then folded by a reflector to form a back-folded light path. This reduces the distance between the beam splitter and the curved mirror and increases the distance between the curved mirror and the image source screen. This makes the thickness of the folded light path controllable and the overall shape closer to that of a traditional display. Furthermore, the angle of light from the image source to the curved mirror can be controlled by the size of the reflector used for light path folding, thereby reducing image ghosting when viewed at large angles.
[0022] Furthermore, the curved mirror and the beam splitter extend along a first direction, the first side and the second side of the curved mirror are arranged opposite each other in a second direction, the beam splitter and the curved mirror are spaced apart in the second direction, and the reflector and the image source are arranged opposite each other in the first direction.
[0023] Both the curved mirror and the beam splitter extend along the first direction. The beam splitter is not tilted relative to the curved mirror. While realizing virtual image imaging, the length of the curved mirror in the second direction is shortened, thereby reducing the thickness of the optical system.
[0024] Furthermore, the angle formed between the extending direction of the reflector and the second direction is α, where α ≥ 45°.
[0025] By adjusting the angle of the reflector, the image source does not increase the overall thickness of the imaging optical system, and the overall thickness is further reduced by making the reflector shorter in the thickness direction.
[0026] Furthermore, the imaging optical system also includes at least one lens disposed between the image source and the reflector.
[0027] Therefore, by adding lenses in the optical path, the field curvature and distortion of the real image can be optimized.
[0028] Furthermore, a flat glass plate and a plano-convex lens are arranged at intervals along the first direction between the image source and the reflector. The plano-convex lens is disposed between the flat glass plate and the reflector, with the planar side of the plano-convex lens facing the flat glass plate and the convex side of the plano-convex lens facing the reflector.
[0029] The plano-convex lens has a first reflective polarizer and a first quarter-wave plate arranged sequentially on its planar side in the direction close to the image source.
[0030] The flat glass has a first side and a second side that are arranged opposite to each other in the first direction, and a second beam-splitting surface is provided on the surface of the first side or the second side of the flat glass.
[0031] Therefore, by increasing the polarization deflection optical path, the volume and length of the back deflection optical path are reduced, thereby further reducing the overall thickness of the imaging optical system.
[0032] Furthermore, to match the polarization folding optical path of the next stage, a second quarter-wave plate is provided between the planar side of the plano-convex lens and the first reflective polarizer.
[0033] Furthermore, the light-emitting end of the image source includes a first linear polarizer and a third quarter-wave plate arranged sequentially from the inside out;
[0034] A first beam-splitting film is provided on the first or second side surface of the curved mirror to form the first beam-splitting surface;
[0035] The beam splitter faces the curved mirror, and a second reflective polarizer and a fourth quarter-wave plate are arranged sequentially in the direction close to the curved mirror.
[0036] This allows for the formation of a polarization-folded optical path, reducing the overall thickness of the imaging optical system.
[0037] Furthermore, a second linear polarizer is provided on the side of the second reflective polarizer that is away from the fourth quarter-wave plate.
[0038] This reduces the ghosting effect caused by light leakage during reflection from the first reflective polarizer.
[0039] Furthermore, to reduce the reflection of ambient light by the beam splitter, a fifth quarter-wave plate and a third linear polarizer are sequentially arranged on the side of the beam splitter away from the curved mirror in a direction away from the curved mirror.
[0040] Furthermore, to reduce ghosting from the curved mirror, a sixth quarter-wave plate and a fourth linear polarizer are sequentially arranged on the side of the third linear polarizer away from the beam splitter in a direction away from the beam splitter.
[0041] In this invention, light emitted from the image source enters the curved mirror from the first side via a reflector, passes through the curved mirror, and exits from the second side. It then enters the beam splitter near the curved mirror and is reflected again to the second side of the curved mirror. After being reflected back to the beam splitter, it is transmitted from the side away from the curved mirror. A distant virtual image can be observed at the viewing position. The image source and beam splitter are positioned at opposite ends of the curved mirror, both extending along a first direction. The beam splitter is not tilted relative to the curved mirror, thus achieving virtual image imaging. At the same time, the length of the curved mirror in the second direction is shortened, thereby reducing the thickness of the optical system; moreover, the above-mentioned optical path forms a polarization folding optical path, and then the optical path between the curved mirror and the image source is folded by the reflector to form a back folding optical path. This can reduce the distance between the beam splitter and the curved mirror, increase the distance between the curved mirror and the image source screen, make the thickness of the folding optical path part controllable, and make the overall shape closer to that of a traditional display. Moreover, the angle of light from the image source to the curved mirror can be controlled by the size of the reflector used for optical path folding, thereby reducing image ghosting when viewed at large angles. Attached Figure Description
[0042] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0043] Figure 1 For imaging optical systems in related technologies;
[0044] Figure 2 A schematic diagram of the structure of Embodiment 1 provided by this utility model;
[0045] Figure 3 The optical path schematic diagram of Embodiment 1 provided by this utility model;
[0046] Figure 4 for Figure 2 A schematic diagram of membrane material stacking;
[0047] Figure 5 The optical path mesh distortion diagram of Embodiment 1 provided by this utility model;
[0048] Figure 6 The optical path binocular parallax provided in Embodiment 1 of this utility model;
[0049] Figure 7 A schematic diagram of the beam splitter film stacking in Embodiment 2 of this utility model;
[0050] Figure 8 A schematic diagram of the optical paths of the ghost image reflected from the image source and the ghost image reflected from the curved mirror;
[0051] Figure 9 A schematic diagram of the beam splitter film stacking in Embodiment 3 of this utility model;
[0052] Figure 10 This is a schematic diagram of the light path of the ghost image source;
[0053] Figure 11 This is a schematic diagram showing the relationship between the brightness of the image source and the emission angle of the pixels.
[0054] Figure 12 A schematic diagram of the structure of Embodiment 6 provided by this utility model;
[0055] Figure 13 A schematic diagram of angle adjustment for Embodiment 6 of this utility model;
[0056] Figure 14 A schematic diagram of the structure of Embodiment 7 provided by this utility model;
[0057] Figure 15 A schematic diagram of the structure of Embodiment 8 provided by this utility model;
[0058] Figure 16 A schematic diagram of the plano-convex lens and image source provided in Embodiment 8 of this utility model;
[0059] Figure 17 This is a comparative diagram of existing virtual imaging solutions;
[0060] Figure 18 This is a schematic diagram of the propagation path of polarized light in a pancake fold.
[0061] Explanation of icon numbers:
[0062] 100. Imaging optical system; 1. Image source; 11. First linear polarizer; 12. Third quarter-wave plate; 13. First anti-reflection coating; 2. Curved mirror; 21. First beam splitter; 3. Beam splitter; 31. Second anti-reflection coating; 32. Fourth quarter-wave plate; 33. Second reflective polarizer; 34. Second linear polarizer; 35. Fifth quarter-wave plate; 36. Third linear polarizer; 37. Sixth quarter-wave plate; 38. Fourth linear polarizer; 39. Third anti-reflection coating; 4. Reflector; 5. Lens; 6. Plano-convex lens; 7. Flat glass; 8. Observation position;
[0063] 200. Imaging optical system of related technologies; 1'. Image source; 2'. Curved mirror; 3'. Beam splitter; 4'. Observation position.
[0064] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0065] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present utility model.
[0066] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.
[0067] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the use of "and / or" or "and / or" throughout the text includes three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution where both A and B are satisfied simultaneously. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.
[0068] To reduce the thickness of desktop virtual image display devices, this utility model proposes an imaging optical system 100.
[0069] Please see Figure 2In one embodiment of this utility model, the imaging optical system 100 includes: a curved mirror 2, an image source 1, and a beam splitter 3; the curved mirror 2 extends along a first direction and has a first side and a second side arranged opposite to each other in a second direction, the first side of the curved mirror 2 is convex, the second side of the curved mirror 2 is concave, and a first beam splitting surface is provided on the surface of the first side or the second side of the curved mirror 2; the image source 1 is located on the first side of the curved mirror 2, the light-emitting end of the image source 1 faces the first side of the curved mirror 2, and the imaging light emitted by the image source 1 can pass through the curved mirror 2; the beam splitter 3 extends along the first direction and is located on the second side of the curved mirror 2, the beam splitter 3 and the curved mirror 2 are arranged at intervals in the second direction, the beam splitter 3 is used to reflect the imaging light to the first beam splitting surface of the curved mirror 2, and the imaging light is reflected again by the first beam splitting surface of the curved mirror 2 and then exits from the imaging optical system through the beam splitter 3; wherein, the focal length of the curved mirror 2 is f, the object distance between the image source 1 and the curved mirror 2 is s, and s < f.
[0070] In the technical solution of this utility model, the image source 1 and the beam splitter 3 are respectively arranged at both ends of the curved mirror 2. Both the curved mirror 2 and the beam splitter 3 extend along the first direction. The beam splitter is not tilted relative to the curved mirror. Under the premise of satisfying virtual image imaging, the length of the beam splitter 3 in the second direction is shortened, thereby reducing the thickness of the optical system.
[0071] Among them, the object distance S is approximately equal to the sum of the distance from the center of image source 1 to the center of curved mirror 2 and the distance from the center of twice the curved mirror 2 to the center of beam splitter 3.
[0072] The light emitted from image source 1 passes through curved mirror 2 and is incident on beam splitter 3. It is reflected at the point where beam splitter 3 is close to curved mirror 2 and then reflected back to curved mirror 2. It is reflected again at the first beam splitting surface of curved mirror 2 and then reflected back to beam splitter 3. It then passes through the side of beam splitter 3 away from curved mirror 2 and reaches observation position 8. At observation position 8, the observer can observe a virtual image at a distance.
[0073] Please see Figures 2 to 4 In Embodiment 1 of this utility model, in order to achieve the above-mentioned optical path folding effect, the light-emitting end of the image source 1 includes a first linear polarizer 11 and a third quarter-wave plate 12 arranged sequentially from the inside to the outside; a curved mirror 2 ( Figure 4 The first or second side surface of the beam splitter 2 (not shown in the figure) is provided with a first beam splitting film 21 to form a first beam splitting surface. The opposite side surface of the first beam splitting surface of the curved mirror 2 can be left untreated. On the side of the beam splitter 3 facing the curved mirror 2, a second reflective polarizer 33 and a fourth quarter-wave plate 32 are arranged in sequence in the direction close to the curved mirror 2.
[0074] In the technical solution of this utility model, in order to enhance the light transmission effect of the imaging optical system 100 and reduce unnecessary reflection, a first anti-reflection film 13 is provided on the side of the first quarter glass plate 12 away from the first linear polarizer 11, and a second anti-reflection film 31 is provided on the side of the second quarter glass plate 32 away from the second reflective polarizer 32. The anti-reflection film can also be provided on the side surface of the first beam splitter of the curved mirror 2.
[0075] Along the direction of light propagation, the imaging light emitted from the image source 1 becomes linearly polarized light after passing through the first linear polarizer 11 on the surface of the image source 1, and then becomes circularly polarized light after passing through the third quarter-wave plate 12. The imaging light then reaches the curved mirror 2 after passing through the first anti-reflection film 13.
[0076] Circularly polarized light can pass through the first beam splitter 21 on the curved mirror 2, so the imaging light reaches the beam splitter 3 after passing through the first beam splitter 21.
[0077] When the imaging light is incident on the beam splitter 3, it becomes linearly polarized light after passing through the second antireflection film 31 and the fourth quarter-wave plate 32. The linearly polarized light can be reflected by the second reflective polarizer 33. After being reflected by the second reflective polarizer 33, the imaging light propagates in the opposite direction.
[0078] During the process of propagating in the reverse direction, the imaging light passes through the fourth quarter-wave plate 32 and the second anti-reflection film 31 and reaches the curved mirror 2. The linearly polarized light can be reflected by the first beam splitter 21. Therefore, the imaging light is reflected by the first beam splitter 21 on the curved mirror 2 and propagates again in the positive direction.
[0079] During the second forward propagation, the imaging light passes through the second antireflection film 31 and the fourth quarter-wave plate 32 again to reach the second reflective polarizer 33.
[0080] As the imaging light propagates backward from the beginning to the second forward direction to the second reflective polarizer 33, it passes through the fourth quarter-wave plate 32 twice. The polarization direction of the imaging light is perpendicular to the polarization direction when it is reflected by the second reflective polarizer 33, so it can pass through the second reflective polarizer 33 and exit outside the optical system to reach the observation position 8.
[0081] Specifically, the angle between the absorption axis of the first linear polarizer 11 and the slow axis of the third quarter-wave plate is set to 45°, and the angle between the slow axis of the fourth quarter-wave plate 32 and the reflection axis of the second reflective polarizer 33 is set to 45° or 90°.
[0082] Preferably, the second side surface of the curved mirror 2 is provided with an anti-reflection film to improve the transmittance of light emitted from the image source 1 in the curved mirror 2.
[0083] Furthermore, during use, the beam splitter 3, the curved mirror 2, and the image source 1 can be moved along the second direction to adjust the position of the virtual image display.
[0084] Using the scheme of Example 1, when the virtual image distance is 2000mm, the exit pupil distance is 200mm, the horizontal field of view is about 34°, the vertical field of view is about 20°, and the diagonal field of view is about 39°, the corresponding optical thickness is about 65mm.
[0085] Please see Figure 5 In Example 1, the maximum mesh distortion value corresponding to the system center eye point (the center position between the left and right eye points) is approximately 3.1%.
[0086] During the optimization process, the front and rear surfaces of the curved mirror 2 are kept to have the same shape to ensure compatibility with the hot bending process of the flat glass 7. Furthermore, while keeping the entrance pupil diameter greater than the general interpupillary distance of 65mm, the optimization goal is to minimize the RMS diameter of the imaging spot in each field of view, thereby ensuring the binocular parallax index.
[0087] Please see Figure 6 In Example 1, the binocular parallax between the corresponding left eye point (X coordinate 32.5mm) and right eye point (X coordinate -32.5mm) is as follows: Figure 5 As shown in the figure, Biocular Dipvergence represents vertical binocular parallax, with the horizontal axis representing the field of view in the Y direction, ranging from -10° to +10°. Each line in the curve represents a different field of view in the X direction. Biocular Convergence represents horizontal binocular parallax, with the vertical axis using an offset value of 25 mrad.
[0088] Please see Figure 7 In embodiment 2, a second linear polarizer 34 is provided on the side of the second reflective polarizer 33 away from the fourth quarter-wave plate 32; on the side of the beam splitter 3 away from the curved mirror 2, a fifth quarter-wave plate 35 and a third linear polarizer 36 are arranged in sequence in the direction away from the curved mirror 2.
[0089] Similar to Example 1, in order to enhance the light transmission effect of the imaging optical system 100 and reduce unnecessary reflections, a third anti-reflection film 39 is provided on the third linear polarizer 36 in a direction away from the fifth quarter-wave plate 35.
[0090] In the technical solution of this utility model, a second linear polarizer 34 is provided on the side of the second reflective polarizer 33 away from the fourth quarter-wave plate 32, so as to reduce the ghost image formed by light leakage when the second reflective polarizer 33 reflects light.
[0091] When the second reflective polarizer 33 reflects polarized light whose polarization direction is parallel to its reflection axis, the extinction ratio of the reflection axis of the second reflective polarizer 33 is insufficient, which will cause some light to be transmitted. In order to reduce this type of reflection, the absorption axis of the second linear polarizer 34 is set parallel to the reflection axis of the second reflective polarizer 33.
[0092] In the technical solution of this utility model, on the side of the beam splitter 3 away from the curved mirror 2, a fifth quarter-wave plate 35, a third linear polarizer 36 and a third anti-reflection film 39 are sequentially arranged in the direction away from the curved mirror 2 to reduce the reflection of ambient light by the beam splitter 3.
[0093] During the process of ambient light incident on beam splitter 3 and being reflected, the light passes sequentially through the third linear polarizer 36 and the fifth quarter-wave plate 35 before reaching the surface of beam splitter 3 and being reflected. It then passes through the fifth quarter-wave plate 35 and the third linear polarizer 36 again. The light that passes through the third polarizer for the first time is linearly polarized light with a polarization direction perpendicular to the absorption axis of the third polarizer. The linearly polarized light passes through the fifth quarter-wave plate 35 twice. At this time, the polarization direction of the light is perpendicular to the polarization direction of the light transmitted through the third polarizer, and it cannot pass through the third polarizer again, thereby reducing the reflection of ambient light by beam splitter 3.
[0094] Furthermore, to ensure that the above scheme does not affect the emitted light from inside the optical system, the slow axis direction of the fifth quarter-wave plate 35 can be set at 45° or 135° to the absorption axis direction of the second linear polarizer 34, while the absorption axis of the third linear polarizer 36 can be set at any angle to the absorption axis of the second linear polarizer 34. When the light from inside the optical system is transmitted from the glass surface, it first passes through the fifth quarter-wave plate 35 to become circularly polarized light, and then passes through the third linear polarizer 36 and the third antireflection coating 39 before exiting the optical system and reaching the observation position 8.
[0095] Please see Figure 8 The light emitted from image source 1 is not directly transmitted through the first beam splitter 21 but is reflected, forming a ghost image reflected from the image source; the ambient light is reflected by the curved mirror 2 after passing through the beam splitter 3 and then exits through the beam splitter 3, forming a ghost image reflected from the curved mirror 2.
[0096] In Embodiment 3, to reduce ghosting of the image source, based on Embodiment 2, an AG film is further provided at the light-emitting end of the image source 1. Preferably, the AG film is provided on the side of the first antireflection film 13 facing away from the third quarter-wave plate 12;
[0097] Please see Figure 9To reduce ghosting in the reflection of the curved mirror 2, a sixth quarter-wave plate 37 and a fourth linear polarizer 38 are sequentially arranged on the side of the third linear polarizer 3 facing away from the beam splitter 3, in a direction away from the beam splitter 3. Preferably, the sixth quarter-wave plate 37 and the fourth linear polarizer 38 are sequentially arranged between the third linear polarizer 36 and the third antireflection coating 39, in a direction away from the beam splitter 3.
[0098] In the technical solution of this utility model, an AG film is added to the first antireflection film 13, so that the light that falls on the screen of the image source 1 after being reflected once by the curved mirror 2 from the image source is scattered and its intensity is reduced, and it can no longer be strictly imaged.
[0099] Furthermore, the higher the haze of the AG film, the better it is at reducing ghosting of the image source, but at the same time, the more severe the degradation of image sharpness will be. Therefore, AG films with a haze greater than 3% are preferred.
[0100] In the technical solution of this utility model, on the side of the beam splitter 3 away from the curved mirror 2 in embodiment 2, a layer of circular polarizers, namely the sixth quarter-wave plate 37 and the fourth linear polarizer 38, is added, which can effectively reduce the transmittance of the beam splitter 3 to ambient light and reduce the ghost image reflected by the curved mirror 2.
[0101] Please see Figure 10 Due to the dispersion of the third quarter-wave plate 12 and the fourth quarter-wave plate 32, and the phase delay of the third quarter-wave plate 12 and the fourth quarter-wave plate 32 for non-normally incident large-angle light deviating from the strict 1 / 4 wavelength phase difference, and the fact that the first linear polarizer 11 and the second linear polarizer 34 are not strictly orthogonal to non-normally incident large-angle light, large-angle light emitted from the image source screen will directly pass through the curved mirror 2 and the beam splitter 3, resulting in light leakage and thus image source ghosting.
[0102] In Example 4, the transmittance of the first spectral separator 21 is t, where t ≤ 50%.
[0103] In the technical solution of this utility model, when the transmittance t of the first beam splitter 21 is ≤ 50%, the contrast of the imaging light compared to the ghost image of the image source will be improved, thereby reducing the impact of the ghost image of the image source on the display effect.
[0104] The first beam splitter 21 has a transmittance of t and a reflectance of r = 1 - t. Therefore, the imaging brightness compared to the scheme with 50% transmittance is: The brightness ratio of the source ghost image becomes The contrast of the imaging light compared to the ghost image of the image source becomes 2×(1-t) of the contrast of the scheme with a transmittance of 50%. It can be seen that when the transmittance of the beam splitter is less than 50%, the contrast of the imaging light compared to the ghost image of the image source will be improved.
[0105] The preferred first beam splitter 21 has a transmittance of 10%. Compared to the first beam splitter 21 with a transmittance of 10%, the brightness of the ghost image source is reduced to 1 / 5 of its original value, while the corresponding brightness of the image is reduced to [a fraction of the original value]. The brightness contrast between the imaging light and the ghost image will become Therefore, the image light is more prominent than the image source ghost image, while the image source ghost image is less noticeable than the image light.
[0106] Image ghosting becomes more pronounced as the viewing angle increases. In embodiment 5, to avoid the appearance of large-angle light, a collimating backlight film is provided between the first polarizer and the image source 1.
[0107] In the technical solution of this utility model, a collimating backlight film is set between the first polarizer and the image source 1 to control the emission angle of the image source 1, thereby avoiding the occurrence of large-angle light and reducing image source ghosting.
[0108] Please see Figure 11 Where the vertical axis L represents the luminance of image source 1, and the horizontal axis represents the pixel emission angle of image source 1, where θ max This indicates that by using a polarizing film material in the optical path, a light emission angle that can effectively eliminate ghosting of the source image can be achieved.
[0109] For LCD image source screens, the above effect can be achieved by adjusting the backlight emission angle. Common solutions include adding collimating backlight materials such as 3M BEF (Brightness Enhancement Film) film or ALCF (Advanced Light Control Film), or using a micro-nano structured collimating light guide plate, or using a direct-lit backlight superimposed with a collimating lens 5, etc. For uLED self-emissive image source screens, a solution can be achieved by using uLEDs in conjunction with a matching collimating lens 5 array.
[0110] In one embodiment, to further reduce the thickness of the optical system, the image source 1 extends along a first direction and is spaced apart from and arranged in parallel with the curved mirror 2 in a second direction.
[0111] When the window size of the desktop monitor increases, the radius of curvature of the curved mirror 2, which can form a better image, will increase accordingly, and the object distance required for imaging will also increase accordingly. This will increase the distance between the beam splitter 3 and the image source screen, making it appear bulky and adding constraints to the actual structural placement.
[0112] Please see Figure 12In embodiment 6, in order to further reduce the thickness of the optical system, the image source 1 extends along the second direction and is located on one side of the curved mirror 2 in the first direction; the imaging optical system 100 also includes a reflector 4 disposed on the first side of the curved mirror 2, the reflector 4 being disposed opposite to the image source 1 in the second direction, for reflecting the light emitted from the image source 1 to the first side of the curved mirror 2.
[0113] In the technical solution of this utility model, the optical path between the reflector 4 and the curved mirror 2 and the image source 1 is folded by the reflector 4 to form a back-folded optical path, thereby increasing the optical path distance between the curved mirror 2 and the image source 1 in an optical path system of the same volume.
[0114] Furthermore, the distance between the beam splitter 3 and the curved mirror 2 can be reduced, the distance between the curved mirror 2 and the image source 1 can be increased, and the optical path between the curved mirror 2 and the image source 1 can be folded by the reflector 4 to further reduce the thickness of the optical system.
[0115] The advantage of this solution is that the thickness of the folded optical path section is controllable in terms of appearance, and the overall shape is closer to that of a traditional display. Another advantage is that the angle of light from the image source 1 to the curved mirror 2 can be controlled by adjusting the size of the optical path folding reflector 4, thereby reducing image ghosting when viewed at large angles.
[0116] After adding the folding mirror 4 to the optical path, the rotation of the circularly polarized light will change, and the polarizing film material involved in the optical path isolation needs to be adjusted accordingly. Therefore, compared with Embodiment 1, the slow axis direction of the fourth quarter-wave plate 32 needs to be rotated by 90°.
[0117] Please see Figure 13 In embodiment 6, in order to effectively reduce the thickness of the optical system, the angle formed between the extension direction of the reflector 4 and the second direction is α, where α ≥ 45°.
[0118] In the technical solution of this utility model, by adjusting the angle of the reflector 4, the overall volume of the imaging optical system 100 is made smaller. When α≥45°, the image source 1 will not increase the overall thickness of the imaging optical system 100. Moreover, as α increases, the length of the reflector 4 in the thickness direction will gradually decrease, further reducing the overall thickness. In this embodiment, α=50°.
[0119] Since the degree of freedom to optimize a single curved mirror 2 for imaging is limited, especially given the current limitations in the manufacturing process of curved mirror 2, the surface shape of curved mirror 2 is mostly spherical, and the field curvature and distortion of the actual virtual image may exceed the required specifications.
[0120] Please see Figure 14In embodiment 7, based on embodiment 6, the imaging optical system 100 further includes at least one lens 5 disposed between the image source 1 and the mirror 4.
[0121] In the technical solution of this utility model, at least one lens 5 is provided between the image source 1 and the reflector 4, and the field curvature and distortion of the real image are optimized by increasing the number of lenses 5 in the optical path.
[0122] Please see Figure 15 and Figure 16 In embodiment 8, to reduce the distance between the image source 1 and the reflector 4, a flat glass 7 and a planar convex lens 6 are arranged at intervals along a first direction between the image source 1 and the reflector 4. The planar convex lens 6 is positioned between the flat glass 7 and the reflector 4, with its planar side facing the flat glass 7 and its convex side facing the reflector 4. A first reflective polarizer 61 and a first quarter-wave plate 62 are sequentially arranged on the planar side of the planar convex lens 6 in the direction close to the image source 1. A fourth anti-reflection coating can be added to the surface of the first quarter-wave plate 62 to reduce unnecessary reflection. The flat glass 7 has a first side and a second side arranged opposite to each other in the first direction, and a second beam-splitting surface is provided on the surface of either the first or second side of the flat glass 7. Preferably, the second beam-splitting surface of the flat glass 7 is selected as a second beam-splitting film.
[0123] The light emitted from image source 1 is reflected on the planar side of the plano-convex lens 6 after passing through the flat glass 7, thus propagating in the reverse direction. During the reverse propagation, the light reaches the second side of the flat glass 7 and is reflected again, and then propagates in the forward direction for the second time and passes through the plano-convex lens 6, thereby reducing the thickness of the imaging optical system 100.
[0124] Meanwhile, in order to match the polarization folding optical path of the next stage, it is preferable to add a second quarter-wave plate 63 between the planar side of the plano-convex lens 6 and the first reflective polarizer, so that the polarized light emitted from the plano-convex lens 6 is circularly polarized light that matches the polarization folding optical path of the next stage.
[0125] The above description is merely an exemplary embodiment of the present utility model and does not limit the patent scope of the present utility model. Any equivalent structural transformations made based on the technical concept of the present utility model and the contents of the present utility model specification and drawings, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present utility model.
Claims
1. An imaging optical system, characterized in that, The imaging optical system includes: A curved mirror (2) has a first side and a second side arranged opposite to each other. The first side of the curved mirror (2) is set as a convex surface, and the second side of the curved mirror (2) is set as a concave surface. A first beam splitting surface is provided on the surface of the first side or the second side of the curved mirror (2). Image source (1) is located on the first side of the curved mirror (2); A reflector (4) is disposed on the first side of the curved mirror (2), the reflector (4) being used to reflect light emitted from the image source (1) to the first side of the curved mirror (2); and, A beam splitter (3) is disposed on the second side of the curved mirror (2) and spaced apart from the curved mirror (2). The beam splitter (3) is used to reflect the imaging light transmitted through the curved mirror (2) to the first beam splitting surface of the curved mirror (2). The imaging light is reflected again by the first beam splitting surface of the curved mirror (2) and then passes through the beam splitter (3) and exits from the imaging optical system. The focal length of the curved mirror (2) is f, and the object distance between the image source (1) and the curved mirror (2) is s, where s < f.
2. The imaging optical system according to claim 1, characterized in that, The curved mirror (2) and the beam splitter (3) extend along a first direction. The first side and the second side of the curved mirror (2) are arranged opposite each other in a second direction. The beam splitter (3) and the curved mirror (2) are arranged at intervals in the second direction. The reflector (4) and the image source (1) are arranged opposite each other in the first direction.
3. The imaging optical system according to claim 2, characterized in that, The angle between the extension direction of the reflector (4) and the second direction is α, where α ≥ 45°.
4. The imaging optical system according to claim 2, characterized in that, The imaging optical system further includes at least one lens (5) disposed between the image source (1) and the reflector (4).
5. The imaging optical system according to claim 2, characterized in that, A flat glass (7) and a plano-convex lens (6) are arranged at intervals along the first direction between the image source (1) and the reflector (4). The plano-convex lens (6) is arranged between the flat glass (7) and the reflector (4), with the planar side of the plano-convex lens (6) facing the flat glass (7) and the convex side of the plano-convex lens (6) facing the reflector (4). The plano-convex lens (6) has a first reflective polarizer (61) and a first quarter-wave plate (62) arranged sequentially on its planar side in the direction close to the image source (1); The flat glass (7) has a first side and a second side that are arranged opposite to each other in the first direction, and a second beam-splitting surface is provided on the surface of the first side or the second side of the flat glass (7).
6. The imaging optical system according to claim 5, characterized in that, A second quarter-wave plate (63) is provided between the planar side of the plano-convex lens (6) and the first reflective polarizer (61).
7. The imaging optical system according to any one of claims 1 to 6, characterized in that, The light-emitting end of the image source (1) includes a first linear polarizer (11) and a third quarter-wave plate (12) arranged sequentially from the inside to the outside. The curved mirror (2) has a first beam-splitting film (21) on its first or second side surface to form the first beam-splitting surface; The beam splitter (3) faces the curved mirror (2) and has a second reflective polarizer (33) and a fourth quarter-wave plate (32) arranged sequentially in the direction close to the curved mirror (2).
8. The imaging optical system according to claim 7, characterized in that, The second reflective polarizer (33) has a second linear polarizer (34) disposed on the side opposite to the fourth quarter-wave plate (32).
9. The imaging optical system according to claim 8, characterized in that, The beam splitter (3) is located on the side away from the curved mirror (2), and a fifth quarter-wave plate (35) and a third linear polarizer (36) are arranged sequentially in the direction away from the curved mirror (2).
10. The imaging optical system according to claim 9, characterized in that, The third linear polarizer (36) is located on the side opposite to the beam splitter (3), and a sixth quarter-wave plate (37) and a fourth linear polarizer (38) are arranged sequentially in the direction away from the beam splitter (3).