Large field of view, large aperture, negative focal length, visual optical system and near-eye display device
By constructing a large field-of-view, large-aperture, negative-focal-length visual optical system through a combination of positive and negative lenses, the problems of low image quality, small field of view, heavy weight, and poor mass production in existing technologies are solved, achieving high-quality imaging effects and better mass production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHENZHEN NED OPTICS CO LTD
- Filing Date
- 2024-12-05
- Publication Date
- 2026-08-04
AI Technical Summary
Existing optical systems suffer from poor image quality, insufficient field of view, heavy weight, and poor mass production capabilities.
A large field of view, large aperture, negative focal length visual optical system is adopted. Through the combination of positive and positive lenses, a first lens group close to the human eye and a second lens group close to the miniature image display are constructed. Light rays converge after passing through the second lens group and enter the first lens group to form an image. The total focal length of the system is negative, and both the first and second lens groups have positive optical power. The optical surface type in the lens group adopts an even-order aspherical surface type.
This greatly increases the optimization freedom of the optical system, improves imaging quality, and achieves a large field of view, high image resolution, low distortion, and small field curvature, thereby enhancing the competitiveness of the product.
Smart Images

Figure CN122151338B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of near-eye display optics technology, and more specifically, to a large field of view, large aperture, negative focal length visual optical system and near-eye display device. Background Technology
[0002] Near-eye display devices use optical imaging technologies to guide the video image light emitted by a miniature image display (such as a transmissive or reflective liquid crystal display, an organic electroluminescent device, or a DMD device) to the user's pupil, thereby creating a virtual, magnified image within the user's near-eye range and providing the user with intuitive and visual image, video, and text information.
[0003] With the continuous advancement of optical technology, the market demand for near-eye display devices is also changing rapidly. Amidst the emergence of various new optical imaging structures, a negative focal length relay optical structure has stood out. This structure is a visual optical system composed of multiple lenses, similar to microscope and telescope optics. Like these, it focuses light emitted from an object into a real image and then creates a virtual image to reach the observation side. However, unlike microscopes and telescopes, this structure guides video image light emitted from a miniature image display (e.g., transmissive or reflective liquid crystal displays, organic light-emitting diodes, DMD devices) to the user's pupil, thereby realizing a virtual, magnified image within the user's near-eye range, providing intuitive and visual images, videos, and text information. This type of optical structure offers greater design flexibility, allowing for better improvement in the overall imaging quality of the optical system. However, this also results in a significantly heavier overall optical system compared to existing display systems on the market.
[0004] Currently, many papers have proposed their own different optical system designs based on this optical structure.
[0005] For example, Patent Document 1 (Chinese Patent Publication No. CN 103988111 B) and Patent Document 2 (Chinese Patent Publication No. CN107683432 B) respectively adopted optical systems composed of multiple lenses, achieving good manufacturability. However, their optical systems use positive power optical systems and various coordination relationships between lens groups, failing to achieve the conversion between real image optics and virtual image optical paths. Therefore, the degree of freedom of the entire optical system is greatly reduced, and the ideal optical effect cannot be achieved. The stray light generated is also unacceptable, reducing the contrast of the optical system and the user experience.
[0006] Patent document 3 (Chinese Patent Publication No. CN 103217782 A) and patent document 4 (Chinese Patent Publication No. CN103605205 A) disclose a visual optical system composed of multiple lenses, which achieves performance indicators such as large field of view, high image quality, and low distortion. However, this visual optical system largely relies on only a few sets of positive optical power lens groups, and the optical power of the entire optical system is also positive, resulting in the entire optical light being focused in a single direction. There are not enough optical lenses and working distances to correct the effect of the entire optical system.
[0007] Patent document 5 (Chinese Patent Publication No. CN113325566B) discloses a visual optical system composed of multiple lenses. It is also a negative focal length visual optical system composed of positive optical power, and it also achieves the effect of a large field of view. However, this invention requires a set of reflective optical surfaces to achieve its optical effect, which greatly hinders the design of the optical system and increases the size of the optical system.
[0008] Therefore, there is a need to provide an optical system that is more effective and more suitable for mass production, addressing the aforementioned shortcomings of existing technologies. Summary of the Invention
[0009] The technical problem to be solved by the present invention is that the existing optical systems have poor image quality, distortion, insufficient field of view, heavy weight, and poor mass production. In view of the defects of the prior art, the present invention provides a large field of view, large aperture, negative focal length visual optical system and near-eye display device.
[0010] The technical solution adopted by the present invention to solve its technical problem is as follows: a large field of view, large aperture, negative focal length visual optical system is constructed, which includes: a first lens group close to the human eye and a second lens group close to the micro-image display; light emitted from the micro-image display passes through the second lens group once and then passes through the first lens group to enter the human eye to form an image; the total focal length of the visual optical system is negative; both the first lens group and the second lens group have positive optical power; the total focal length of the visual optical system is F, the focal length of the first lens group is F1, and the focal length of the second lens group is F2; wherein, F1 / F and F2 / F satisfy the following relationships (1) and (2) respectively:
[0011] -6.67≤F1 / F≤-1.05(1);
[0012] -1.17≤F2 / F≤-0.34 (2).
[0013] The visual optical system of the present invention has a total length of L, a total length of M for the first lens group, and a total length of W for the second lens group; wherein M / L and W / L satisfy the following relationships (3) and (4):
[0014] 0.2≤M / L≤0.50(3);
[0015] 0.05≤W / L≤0.32 (4).
[0016] The visual optical system of the present invention comprises a first lens group consisting of a positive power lens and a second lens group consisting of a positive power lens.
[0017] The visual optical system of the present invention comprises a first lens group consisting of a single positive power lens and a second lens group consisting of two positive power lenses.
[0018] The visual optical system of the present invention comprises a first lens group consisting of two positive power lenses and a second lens group consisting of two positive power lenses.
[0019] In the visual optical system of the present invention, M / W satisfies the following relationship (5):
[0020] 0.75≤M / W≤10.27 (5).
[0021] In the visual optical system of the present invention, the F1 / F satisfies the following relationship (11):
[0022] -4.31≤F1 / F≤-1.33(11).
[0023] In the visual optical system of the present invention, the F2 / F satisfies the following relationship (21):
[0024] -1.1≤F2 / F≤-0.7(21).
[0025] In the visual optical system of the present invention, the M / L satisfies the following relationship (31):
[0026] 0.23≤M / L≤0.28(31).
[0027] In the visual optical system of the present invention, the W / L satisfies the following relationship (41):
[0028] 0.05≤W / L≤0.27(41).
[0029] In the visual optical system of the present invention, the M / W ratio satisfies the following relationship (51):
[0030] 4.64≤M / W≤10.27(51).
[0031] The visual optical system of the present invention, wherein the optical surface type of the lens group includes an even-order aspherical surface type, satisfying the relation (7):
[0032]
[0033] Where z is the sag of the optical surface, c is the curvature at the vertex of the aspherical surface, K is the aspherical coefficient, a2, a4, a6, a8, ... are coefficients of each order, and r is the distance coordinate from the point on the surface to the optical axis of the lens system.
[0034] The present invention also provides a near-eye display device, comprising a large field of view, large aperture, negative focal length visual optical system as described in any of the preceding claims.
[0035] The beneficial effects of this invention are as follows: by using a combination of positive and negative lenses to form a large field of view, large aperture, and negative focal length visual optical system, the optimization freedom of the optical system is greatly increased, the imaging quality of the entire optical system is greatly improved, and the visual optical system achieves indicators such as large field of view, high image resolution, low distortion, and small field curvature. Moreover, the near-eye display device designed using the visual optical system of this invention can achieve a larger field of view, higher image quality, lower distortion, and better mass production, greatly improving the competitiveness of the product. Attached Figure Description
[0036] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the present invention will be further described below in conjunction with the accompanying drawings and embodiments. The drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0037] Figure 1 This is a schematic diagram of the visual optical system of Embodiment 1 of the present invention;
[0038] Figure 2 This is a schematic diagram of the optical transfer function (MTF) of the visual optical system in Embodiment 1 of the present invention;
[0039] Figure 3 This is a schematic diagram of the diffuse spot of the visual optical system in Embodiment 1 of the present invention;
[0040] Figure 4a , Figure 4b These are schematic diagrams of field curvature and distortion of the visual optical system according to Embodiment 1 of the present invention;
[0041] Figure 5 This is a schematic diagram of the visual optical system of Embodiment 2 of the present invention;
[0042] Figure 6This is a schematic diagram of the optical transfer function (MTF) of the visual optical system in Embodiment 2 of the present invention;
[0043] Figure 7 This is a schematic diagram of the diffusion spot of the visual optical system in Embodiment 2 of the present invention;
[0044] Figure 8a , Figure 8b These are schematic diagrams of field curvature and distortion of the visual optical system according to Embodiment 2 of the present invention;
[0045] Figure 9 This is a schematic diagram of the visual optical system of Embodiment 3 of the present invention;
[0046] Figure 10 This is a schematic diagram of the optical transfer function (MTF) of the visual optical system in Embodiment 3 of the present invention;
[0047] Figure 11 This is a schematic diagram of the diffusion spot of the visual optical system in Embodiment 3 of the present invention;
[0048] Figure 12a , Figure 12b These are schematic diagrams of field curvature and distortion of the visual optical system according to Embodiment 3 of the present invention;
[0049] Figure 13 This is a schematic diagram of the visual optical system of Embodiment 4 of the present invention;
[0050] Figure 14 This is a schematic diagram of the optical transfer function (MTF) of the visual optical system in Embodiment 4 of the present invention;
[0051] Figure 15 This is a schematic diagram of the diffuse spot of the visual optical system in Embodiment 4 of the present invention;
[0052] Figure 16a , Figure 16b These are schematic diagrams of field curvature and distortion of the visual optical system according to Embodiment 4 of the present invention;
[0053] Figure 17 This is a schematic diagram of the visual optical system of Embodiment 5 of the present invention;
[0054] Figure 18 This is a schematic diagram of the optical transfer function (MTF) of the visual optical system in Embodiment 5 of the present invention;
[0055] Figure 19 This is a schematic diagram of the diffuse spot of the visual optical system in Embodiment 5 of the present invention;
[0056] Figure 20a , Figure 20b This is a schematic diagram of field curvature and distortion of the visual optical system of Embodiment 5 of the present invention. Detailed Implementation
[0057] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, a clear and complete description will be provided below in conjunction with the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the protection scope of the present invention.
[0058] A large field-of-view, large-aperture, negative focal length visual optical system is constructed, comprising: a first lens group near the human eye and a second lens group near a miniature image display; light emitted from the miniature image display passes through the second lens group once, then through the first lens group and enters the human eye to form an image; the total focal length of the visual optical system is negative; both the first and second lens groups have positive optical power; the total focal length of the visual optical system is F, the focal length of the first lens group is F1, and the focal length of the second lens group is F2; the total length of the visual optical system is L, the total length of the first lens group is M, and the total length of the second lens group is W;
[0059] Among them, F1 / F, F2 / F, M / L, and W / L satisfy the following relationships (1), (2), (3), and (4), respectively:
[0060] -6.67≤F1 / F≤-1.05(1);
[0061] -1.17≤F2 / F≤-0.34(2);
[0062] 0.2≤M / L≤0.50(3);
[0063] 0.05≤W / L≤0.32 (4).
[0064] The possible values for F1 / F are -6.67, -6.8, -7.6, -5.2, -4.8, -3.6, -2.2, -2.07, -1.87, -1.8, -1.6, -1.2, and -1.05, respectively, while the possible values for F2 / F are -1.17, -1.12, -1.04, -1.02, -0.8, -0.89, -0.4, and -0.3. 4, etc. M / L can take values of 0.2, 0.24, 0.23, 0.26, 0.33, 0.36, 0.38, 0.41, 0.5, etc., and W / L can take values of 0.05, 0.08, 0.1, 0.11, 0.13, 0.14, 0.17, 0.20, 0.21, 0.23, 0.24, 0.27, 0.29, 0.32, etc.
[0065] This embodiment, through the combination of positive and negative lens groups, greatly increases the optimization freedom of the optical system and plays a decisive role in improving the imaging quality of the entire optical system. The near-eye display device designed through the combination relationship of this embodiment moves towards a larger field of view, higher image quality, and lower distortion, thereby achieving indicators such as a large field of view, high image resolution, low distortion, and small field curvature of the visual optical system, greatly improving the product competitiveness.
[0066] Furthermore, in the visual optical system of the above embodiment, the first lens group is composed of a positive power lens; the second lens group is composed of a positive power second lens.
[0067] Furthermore, in the visual optical system of the above embodiment, the first lens group consists of a single positive power lens; the second lens group consists of two positive power lenses.
[0068] Furthermore, in the visual optical system of the above embodiment, the first lens group consists of two positive power lenses; the second lens group consists of two positive power lenses.
[0069] Compared with the prior art, the visual optical system of this embodiment does not require a set of reflective optical surfaces, but can achieve similar optical effects simply by using traditional spherical or aspherical lenses, which greatly improves the degree of freedom and size of the optical system.
[0070] In a further embodiment, the ratio of the total length W of the second lens group to the total length M of the first lens group in the visual optical system, M / W, satisfies the following relationship (5):
[0071] 0.75≤M / W≤10.27 (5).
[0072] The possible values for M / W are 0.75, 1.03, 1.14, 1.3, 1.41, 1.5, 1.54, 1.7, 1.81, 1.83, 1.91, 1.98, 2.01, 2.11, 2.18, 2.21, 5.112, 6.18, and 10.27.
[0073] In a further embodiment, the optical surface type in the lens group of the visual optics system includes an even-order aspherical surface type, satisfying relation (7):
[0074]
[0075] Where z is the sag of the optical surface, c is the curvature at the vertex of the aspherical surface, K is the aspherical coefficient, a2, a4, a6, a8, ... are coefficients of each order, and r is the distance coordinate from the point on the surface to the optical axis of the lens system.
[0076] The principles, schemes, and display results of the above-mentioned visual optical system will be further explained below through more specific embodiments.
[0077] In the following embodiments, the aperture stop EYE can be the exit pupil of the visual optical system, a virtual light-emitting aperture. When the pupil of the human eye is at the aperture stop position, the best imaging effect can be observed. The miniature image display IMMG is the image plane of the visual optical system.
[0078] [Example 1]
[0079] The optical path structure of the visual optical system in this embodiment is as follows: Figure 1 As shown; the optical path structure data is shown in Table 1a, and the aspherical coefficients are shown in Table 1b below:
[0080] Table 1a
[0081] surface radius of curvature thickness Refractive index Abbe number Net diameter Conic coefficient STO Infinity 12.00 3.00 2 11.96 15.00 1.46 90.47 19.05 -0.90 3 -10.92 24.04 23.82 -5.79 4 4.41 20.00 1.57 71.30 15.21 -1.90 5 -10.95 2.76 6.50 9.47 Image unlimited 8.61
[0082] Table 1b
[0083] 2 -1.8260E-04 -2.6247E-06 1.5650E-08 - - - - 3 -2.0164E-04 1.1721E-07 -1.9050E-09 - - - - 4 1.7271E-03 -4.4471E-05 9.9807E-07 -7.6164E-09 - - - 5 -1.0097E-02 7.7192E-04 -1.0062E-04 6.3765E-06 - - -
[0084] like Figure 1 As shown, from the human eye observation side to the miniature image display side (from left to right), the elements are, in sequence, the human eye (EYE), the first lens L1, and the second lens L2. Lenses L1-L2 sequentially have: a first surface 111, a second surface 112, a third surface 201, and a fourth surface 202. The surface parameters of each lens are shown in the table above. The first lens L1 alone constitutes a first lens group with positive optical power. The second lens L2 alone constitutes a second lens group with positive optical power.
[0085] In this embodiment, the total focal length of the visual optical system is negative, and both the first and second lens groups of the visual optical system have positive optical power. The total focal length F of the system is -15.03, the focal length F1 of the first lens group is 15.74, the focal length F2 of the second lens group is 10.47, the total length L of the visual optical system is 73.83, the total length M of the first lens group is 15, and the total length W of the second lens group is 20.
[0086] Appendix Figure 2 Appendix Figure 3 Appendix Figure 4a and attached Figure 4b The figures are the optical transfer function (MTF) curve, the speckle diagram, the field curvature, and the distortion diagram of the visual optical system in this embodiment, respectively, which show that the optical system has high imaging quality, very small field curvature, and optical distortion while ensuring a large field of view.
[0087] [Example 2]
[0088] The optical path structure of the visual optical system in this embodiment is as follows: Figure 5 As shown; the optical path structure data is shown in Table 2a below, and the aspherical coefficients are shown in Table 2b below:
[0089] Table 2a
[0090] surface radius of curvature thickness Refractive index Abbe number Net diameter Conic coefficient STO Infinity 12.00 2.00 2 8.33 15.00 1.44 94.52 9.83 -1.11 3 -5.97 21.15 12.14 -3.16 4 2.50 3.15 1.44 94.52 2.97 0.78 5 -2.49 2.79 2.75 -10.20 Image unlimited 1.77
[0091] Table 2b
[0092] 2 -1.7729E-04 -2.0478E-05 2.6773E-07 - - - - 3 -3.8931E-04 -2.7059E-06 5.2553E-08 - - - - 4 3.7852E-02 -6.1384E-02 2.4261E-02 -3.8837E-03 - - - 5 -6.6482E-02 3.8598E-02 -1.2833E-02 1.6470E-03 - - -
[0093] like Figure 5 As shown, from the human eye observation side to the miniature image display side (from left to right), the elements are, in sequence, the human eye (EYE), the first lens L1, and the second lens L2. Lenses L1-L2 sequentially have: a first surface 111, a second surface 112, a third surface 201, and a fourth surface 202. The surface parameters of each lens are shown in the table above. The first lens L1 alone constitutes a first lens group with positive optical power. The second lens L2 alone constitutes a second lens group with positive optical power.
[0094] In this embodiment, the total focal length of the visual optical system is negative, and both the first and second lens groups of the visual optical system have positive optical power. The total focal length F of the system is -3, the focal length F1 of the first lens group is 11.67, the focal length F2 of the second lens group is 3.52, the total length L of the visual optical system is 54.1, the total length M of the first lens group is 15, and the total length W of the second lens group is 3.15.
[0095] Appendix Figure 6 Appendix Figure 7 Appendix Figure 8a and attached Figure 8b The figures are the optical transfer function (MTF) curve, the speckle diagram, the field curvature, and the distortion diagram of the visual optical system of the present invention, respectively, which reflect that the optical system has high imaging quality, very small field curvature, and optical distortion while ensuring a large field of view.
[0096] [Example 3]
[0097] The optical path structure of the visual optical system in this embodiment is as follows: Figure 9 As shown; the optical path structure data is shown in Table 3a, and the aspherical coefficients are shown in Table 3b.
[0098] Table 3a
[0099] surface radius of curvature thickness Refractive index Abbe number Net diameter Conic coefficient STO Infinity 19.37 2.00 2 16.52 15.00 1.44 94.52 10.41 0.08 3 -9.52 25.82 13.02 -1.45 4 1.85 3.23 1.44 94.52 3.61 -0.04 5 -1.85 2.00 2.20 -12.59
[0100] Table 3b
[0101] 2 -1.3809E-04 -3.2330E-05 7.2316E-07 - - - - 3 -1.8867E-04 -5.7844E-06 9.8606E-08 - - - - 4 -6.6347E-04 -1.9470E-02 7.3146E-03 -1.8411E-03 - - - 5 -3.4654E-02 -1.0662E-02 3.2965E-03 2.9063E-03 - - -
[0102] like Figure 9 As shown, from the human eye observation side to the miniature image display side (from left to right), the elements are, in sequence, the human eye (EYE), the first lens L1, and the second lens L2. Lenses L1-L2 sequentially have: a first surface 111, a second surface 112, a third surface 201, and a fourth surface 202. The surface parameters of each lens are shown in the table above. The first lens L1 alone constitutes a first lens group with positive optical power. The second lens L2 alone constitutes a second lens group with positive optical power.
[0103] In this embodiment, the total focal length of the visual optical system is negative, and both the first and second lens groups of the visual optical system have positive optical power. The total focal length F of the system is -3.886, the focal length F1 of the first lens group is 16.73, the focal length F2 of the second lens group is 2.87, the total length L of the visual optical system is 65.42, the total length M of the first lens group is 15, and the total length W of the second lens group is 3.23.
[0104] Appendix Figure 10 Appendix Figure 11 Appendix Figure 12a and attached Figure 12b The figures are the optical transfer function (MTF) curve, the speckle diagram, the field curvature, and the distortion diagram of the visual optical system of the present invention, respectively, which reflect that the optical system has high imaging quality, very small field curvature, and optical distortion while ensuring a large field of view.
[0105] [Example 4]
[0106] The optical path structure of the visual optical system in this embodiment is as follows: Figure 13 As shown; the optical path structure data is shown in Table 4a, and the aspherical coefficients are shown in Table 4b.
[0107] Table 4a
[0108] surface radius of curvature thickness Refractive index Abbe number Net diameter Conic coefficient STO Infinity 12.00 4.00 2 -10.00 13.89 1.44 94.52 13.86 -8.18 3 -10.01 71.04 22.66 -0.94 4 -73.15 15.00 1.62 63.83 53.74 -202.39 5 -25.03 69.85 54.06 -1.52 6 7.71 9.73 1.44 94.52 17.71 -2.60 7 -6.41 7.65 17.24 -4.21 Image unlimited 7.91
[0109] Table 4b
[0110] 2 -4.0752E-04 1.4069E-06 8.0973E-09 - - - - 3 1.2622E-05 -9.3141E-07 - - - - - 4 1.4314E-05 -9.7027E-09 - - - - - 5 1.2707E-05 -9.0120E-09 - - - - - 6 2.9252E-04 -1.2679E-06 - - - - - 7 2.0791E-04 -2.7522E-06 1.0877E-08 - - - -
[0111] like Figure 13 As shown, from the human eye observation side to the miniature image display side (from left to right), the lenses are, in sequence, the human eye (EYE), the first lens (L1), the second lens (L2), and the third lens (L3). Lenses L1-L3 sequentially have: a first surface 111, a second surface 112, a third surface 201, a fourth surface 202, a fifth surface 203, and a sixth surface 204. The surface parameters of each lens are shown in the table above.
[0112] The first lens L1 alone forms a first lens group with positive optical power. The second lens L2 and the third lens L3 form a second lens group with positive optical power.
[0113] In this embodiment, the total focal length of the visual optical system is negative, and both the first and second lens groups of the visual optical system have positive optical power. The total focal length F of the system is -9.22, the focal length F1 of the first lens group is 61.49, the focal length F2 of the second lens group is 10.12, the total length L of the visual optical system is 199.16, the total length M of the first lens group is 99.93, and the total length W of the second lens group is 9.73.
[0114] Appendix Figure 14 Appendix Figure 15 Appendix Figure 16a and attached Figure 16b The figures are the optical transfer function (MTF) curve, the blur pattern, the field curvature, and the distortion diagram of the visual optical system in this embodiment, respectively. They show that, under the premise of ensuring a large field of view, changing the focal length of different lenses can result in better high-quality imaging, smaller field curvature, and less optical distortion.
[0115] [Example 5]
[0116] The optical path structure of the visual optical system in this embodiment is as follows: Figure 17 As shown; the optical path structure data is shown in Table 5a, and the aspherical coefficients are shown in Table 5b.
[0117] Table 5a
[0118] surface radius of curvature thickness Refractive index Abbe number Net diameter Conic coefficient STO Infinity 12.00 4.00 2 91.12 14.73 1.85 23.83 10.87 156.70 3 16.74 10.22 16.01 -0.29 4 51.07 12.32 1.44 94.52 27.17 9.17 5 -13.10 54.33 29.36 -0.38 6 -42.09 13.97 1.77 49.60 35.42 -0.79 7 -13.36 21.00 33.87 -3.25 8 5.82 15.00 1.81 41.01 7.52 -1.12 9 11.14 2.62 9.38 3.50 Image unlimited 14.27
[0119] Table 5b
[0120]
[0121]
[0122] like Figure 17 As shown, from the human eye observation side to the miniature image display side (from left to right), the lenses are, in sequence, the human eye (EYE), the first lens (L1), the second lens (L2), the third lens (L3), and the fourth lens (L4). Lenses L1-L4 sequentially have: a first surface 111, a second surface 112, a third surface 113, a fourth surface 114, a fifth surface 201, a sixth surface 202, a seventh surface 203, and an eighth surface 204. The surface parameters of each lens are shown in the table above.
[0123] The first lens L1 and the second lens L2 form a first lens group with positive optical power. The third lens L3 and the fourth lens L4 form a second lens group with positive optical power.
[0124] In this embodiment, the total focal length of the visual optical system is negative, and both the first lens group M and the second lens group W of the visual optical system have positive optical power. The total focal length F of the system is -30, the focal length F1 of the first lens group is 40, the focal length F2 of the second lens group is 10.25, the total length L of the visual optical system is 156.2, the total length M of the first lens group is 37.27, and the total length W of the second lens group is 49.97.
[0125] Appendix Figure 18 Appendix Figure 19 Appendix Figure 20a and attached Figure 20b The figures are the optical transfer function (MTF) curve, the speckle diagram, the field curvature, and the distortion diagram of the visual optical system in this embodiment. They show that, under the premise of ensuring a large field of view, the MTF diagram has a resolution value greater than 0.78 at 10 l p. From the above data, it can be concluded that the optical system has high imaging quality and very small field curvature and optical distortion.
[0126] In another embodiment of the present invention, a near-eye display device is also constructed, including the visual optical system as described in any of the foregoing embodiments, and further including a binocular display host for simultaneous viewing of a magnified image by both eyes, a forehead support assembly that contacts the forehead for wear and fixation; and a flip-connecting mechanism that connects the binocular display host and the forehead support assembly, and presents the binocular display host in front of the human body during use; the binocular display host includes: a mounting base and two fixed frame modules slidably mounted on the mounting base, and an interpupillary distance adjustment assembly for adjusting the distance between the two fixed frame modules is provided on the mounting base; each fixed frame module is provided with an optical module, a display module, and a diopter adjustment assembly for adjusting the distance between the optical module and the display module. The optical module adopts the visual optical system structure as described in any of the foregoing embodiments.
[0127] In other embodiments of the present invention, other forms of near-eye display devices are also provided, such as monocular displays and other near-eye display devices, all of which can employ the optical systems of the foregoing embodiments of the present invention. Specific structures are not detailed here.
[0128] In summary, the embodiments of the present invention construct a large field-of-view, large-aperture, negative focal length visual optical system by employing lens combinations of positive plus positive and / or positive plus positive and / or positive plus positive and negative. This greatly increases the optimization freedom of the optical system, significantly improves the imaging quality of the entire optical system, and achieves indicators such as a large field of view, high image resolution, low distortion, and small field curvature for the visual optical system. Moreover, the near-eye display device designed using the visual optical system of the present invention can achieve a larger field of view, higher image quality, lower distortion, and better mass production capability, greatly improving the competitiveness of the product.
[0129] It should be understood that those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of the appended claims.
Claims
1. A wide-field-of-view, large-aperture, negative-focal-length visual optical system, characterized in that, include: A first lens group closer to the human eye and a second lens group closer to the miniature image display; Light emitted from the miniature image display converges once through the second lens group, then passes through the first lens group and enters the human eye to form an image; the total focal length of the visual optical system is negative; both the first and second lens groups have positive optical power; the total focal length of the visual optical system is F, the focal length of the first lens group is F1, and the focal length of the second lens group is F2; wherein, F1 / F and F2 / F satisfy the following relationships (1) and (2) respectively: -6.67≤F1 / F≤-1.05(1); -1.17≤F2 / F≤-0.34 (2).
2. The visual optical system according to claim 1, characterized in that, The total length of the visual optical system is L, the total length of the first lens group is M, and the total length of the second lens group is W; wherein M / L and W / L satisfy the following relationships (3) and (4) respectively: 0.2≤M / L≤0.50(3); 0.05≤W / L≤0.32 (4).
3. The visual optical system according to claim 1, characterized in that, The first lens group consists of a single positive power lens; the second lens group consists of a single positive power lens.
4. The visual optical system according to claim 1, characterized in that, The first lens group consists of a single positive power lens; the second lens group consists of two positive power lenses.
5. The visual optical system according to claim 1, characterized in that, The first lens group consists of two positive power lenses; the second lens group consists of two positive power lenses.
6. The visual optical system according to claim 2, characterized in that, M / W satisfies the following relationship (5): 0.75≤M / W≤10.27(5).
7. The visual optical system according to claim 1, characterized in that, The F1 / F satisfies the following relationship (11): -4.31≤F1 / F≤-1.33 (11).
8. The visual optical system according to claim 1, characterized in that, The F2 / F satisfy the following relationship (21): -1.1≤F2 / F≤-0.7(21).
9. The visual optical system according to claim 2, characterized in that, The M / L ratio satisfies the following relationship (31): 0.23≤M / L≤0.28(31).
10. The visual optical system according to claim 2, characterized in that, The W / L satisfies the following relationship (41): 0.05≤W / L≤0.27 (41).
11. The visual optical system according to claim 2, characterized in that, The M / W ratio satisfies the following relationship (51): 4.64≤M / W≤10.27 (51).
12. The visual optical system according to any one of claims 1-11, characterized in that, The optical surface types in the lens group include even-order aspherical surface types, satisfying relation (7): Where z is the sag of the optical surface, c is the curvature at the vertex of the aspherical surface, K is the aspherical coefficient, a2, a4, a6, a8, ... are coefficients of each order, and r is the distance coordinate from the point on the surface to the optical axis of the lens system.
13. A near-eye display device, characterized in that, It includes a large field of view, large aperture, negative focal length visual optical system as described in any one of claims 1-12.