CN205450445U - Augmented reality is lens for glasses based on free -form surface - Google Patents
Augmented reality is lens for glasses based on free -form surface Download PDFInfo
- Publication number
- CN205450445U CN205450445U CN201521065516.0U CN201521065516U CN205450445U CN 205450445 U CN205450445 U CN 205450445U CN 201521065516 U CN201521065516 U CN 201521065516U CN 205450445 U CN205450445 U CN 205450445U
- Authority
- CN
- China
- Prior art keywords
- semi
- wave guide
- light wave
- guide card
- curved surface
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Active
Links
- 230000003190 augmentative effect Effects 0.000 title claims abstract description 21
- 239000011521 glass Substances 0.000 title claims abstract description 16
- 239000000835 fiber Substances 0.000 claims abstract description 24
- 230000005540 biological transmission Effects 0.000 claims abstract description 15
- 239000011248 coating agent Substances 0.000 claims abstract description 10
- 238000000576 coating method Methods 0.000 claims abstract description 10
- 230000003287 optical effect Effects 0.000 claims description 9
- 238000000034 method Methods 0.000 abstract description 2
- 230000008878 coupling Effects 0.000 abstract 4
- 238000010168 coupling process Methods 0.000 abstract 4
- 238000005859 coupling reaction Methods 0.000 abstract 4
- 230000000007 visual effect Effects 0.000 description 9
- 210000001747 pupil Anatomy 0.000 description 2
- 239000000758 substrate Substances 0.000 description 2
- 230000000295 complement effect Effects 0.000 description 1
- 230000007547 defect Effects 0.000 description 1
- 238000010586 diagram Methods 0.000 description 1
- 230000000694 effects Effects 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
Abstract
The utility model relates to a augmented reality technique. Augmented reality is lens for glasses based on free -form surface, including a fiber waveguide lens, the fiber waveguide lens is equipped with light -emitting end, a light transfer unit, an income light end, the fiber waveguide lens is equipped with at least three -layer transflective film, and each transflective film is parallel to each other, and transflective film is located the light -emitting end, the fiber waveguide lens still is equipped with a coupling prism, and the coupling prism lies in into the light end, and the lower terminal surface of coupling prism is a transmission curved surface, and the transmission curved surface is the convex surface shape of an evagination, and the up end of coupling prism is a reflecting surface, and reflecting surface is the convex surface shape of an evagination, scribbles reflective coating on reflecting surface 's the inside wall.
Description
Technical field
This utility model relates to augmented reality, is specifically related to augmented reality glasses.
Background technology
Augmented reality is a kind of by new technique integrated to real world information and virtual world information, can be that people offer convenience in daily life.It can realize surmounting the visual experience of electronic curtain, while representing the information of real world, virtual information is shown simultaneously, and the information of digital world and real world is complementary to one another and superposition, and the two perfectly combines and is presented in user's eye.
But the most existing augmented reality glasses, generally deposit that the angle of visual field in use is too small causes the user visual field the best, and the thickest defect causing entirety to lay particular stress on of eyeglass, thus reduce satisfaction of users.
Utility model content
The purpose of this utility model is, it is provided that augmented reality spectacle lens based on free form surface.
This utility model is solved the technical problem that to realize by the following technical solutions:
Augmented reality spectacle lens based on free form surface, including a fiber waveguide eyeglass, described fiber waveguide eyeglass is provided with one and goes out light end, an optical transport portion, a light inputting end;It is characterized in that, described fiber waveguide eyeglass is provided with at least three layers of semi-transparent semi-reflecting film, and each described semi-transparent semi-reflecting film is parallel to each other, described semi-transparent semi-reflecting film be positioned at described in go out light end;
Described fiber waveguide eyeglass is additionally provided with a couple prism, described couple prism is positioned at described light inputting end, the lower surface of described couple prism is a transmission curved surface, described transmission curved surface is the convex shape of an evagination, the upper surface of described couple prism is a reflecting curved surface, described reflecting curved surface is the convex shape of an evagination, and the medial wall of described reflecting curved surface scribbles reflective coating.
In described transmission curved surface, described reflecting curved surface, the equation of at least one meets one of three below equation:
A () anamorphic aspherical surface, he has the radius of curvature of both direction, and can differ, and this curved surface is plane symmetry curved surface, and it has two planes of symmetry, respectively about yoz, xoz plane symmetry.
CxIt is the radius of curvature of X-direction, C in curved surface X Z planeyIt is the curved surface radius of curvature of Y-direction, K in Y Z planexIt is the whose conic coefficient of curved surface X-direction, KyIt is the whose conic coefficient of curved surface Y-direction, AiIt it is 4,6,8 ... 2n rank rotation asymmetry coefficient.
(b) XY polynomial surface,
Wherein C is surface curvature, cjFor multinomial coefficient.
C () toroid is a circle or the surface of revolution of plane curve of order n shape, a circle or plane curve of order n are generated around coplanar with this curve axle revolution.
Wherein c is radius of curvature, and k is quadratic surface coefficient, and A, B, C, D are respectively 4,6,8,10 rank asphericity coefficients.
This utility model is in use, the light that image display sends is transmitted into couple prism via the transmission curved surface of couple prism, then fiber waveguide sheet is entered after being reflected by reflecting curved surface, advance in described light wave guide card inner total reflection, there is certain reflection and transmission in light, finally occurs the light of reflection through the pupil entering observer bottom glass substrate successively after being irradiated to the incidence surface of semi-transparent semi-reflecting film.
As a kind of preferred version, described fiber waveguide eyeglass is additionally provided with a plate-shaped light wave guide card, and using described light wave guide card as described optical transport portion, described couple prism is positioned at described light wave guide card one end, and described reflective coating is towards described light wave guide card;Described semi-transparent semi-reflecting film is positioned at the described light wave guide card other end, can be provided with transparent glass between two adjacent described semi-transparent semi-reflecting films, and the semi-transparent semi-reflecting film near described light wave guide card connects described light wave guide card by transparent glass.
As another kind of preferred version, described fiber waveguide eyeglass is additionally provided with a plate-shaped light wave guide card, and using described light wave guide card as described optical transport portion, described couple prism is positioned at described light wave guide card one end, and described reflective coating is towards described light wave guide card;Described semi-transparent semi-reflecting film embeds in described light wave guide card, and described semi-transparent semi-reflecting film is positioned at the described light wave guide card one end away from described couple prism.
Described semi-transparent semi-reflecting film is an angle with the lower surface of described light wave guide card, and described angle is 20~30 degree, preferably 24.5 degree.Using this angle, the angle of visual field more existing augmented reality glasses improve a lot, and the angle of visual field can reach 36 degree, and visual range is about 18mm.Angle formed by each described semi-transparent semi-reflecting film and described light wave guide card is the most equal.
Described semi-transparent semi-reflecting film more increases the closer to described couple prism, reflectance, and transmitance more subtracts.
Described light wave guide card thickness is 1.8mm~2.2mm, preferably 2mm.Light wave guide card thickness reduces, and reduces the weight of glasses, improves the comfort of user.
Accompanying drawing explanation
Fig. 1 is that this utility model is at the light path schematic diagram used.
Detailed description of the invention
For the technological means making this utility model realize, creation characteristic, reach purpose and be easy to understand with effect, this utility model is expanded on further below in conjunction with being specifically illustrating.
With reference to Fig. 1, augmented reality spectacle lens based on free form surface, including a lens body, the fiber waveguide eyeglass that lens body includes mirror holder, is arranged on mirror holder, fiber waveguide eyeglass is provided with one and goes out light end, an optical transport portion, a light inputting end;Fiber waveguide eyeglass is provided with at least three layers of semi-transparent semi-reflecting film 2, and each semi-transparent semi-reflecting film 2 is parallel to each other, and semi-transparent semi-reflecting film 2 is positioned at light end;Fiber waveguide eyeglass is additionally provided with a couple prism, couple prism is positioned at light inputting end, the lower surface of couple prism is a transmission curved surface 4, transmission curved surface 4 is the convex shape of an evagination, the upper surface of couple prism is a reflecting curved surface 3, reflecting curved surface 3 is the convex shape of an evagination, and the medial wall of reflecting curved surface scribbles reflective coating.
In transmission curved surface, reflecting curved surface, the equation of at least one meets one of three below equation:
A () anamorphic aspherical surface, he has the radius of curvature of both direction, and can differ, and this curved surface is plane symmetry curved surface, and it has two planes of symmetry, respectively about yoz, xoz plane symmetry.
CxIt is the radius of curvature of X-direction, C in curved surface X Z planeyIt is the curved surface radius of curvature of Y-direction, K in Y Z planexIt is the whose conic coefficient of curved surface X-direction, KyIt is the whose conic coefficient of curved surface Y-direction, AiIt it is 4,6,8 ... 2n rank rotation asymmetry coefficient.
(b) XY polynomial surface,
Wherein C is surface curvature, cjFor multinomial coefficient.
C () toroid is a circle or the surface of revolution of plane curve of order n shape, a circle or plane curve of order n are generated around coplanar with this curve axle revolution.
Wherein c is radius of curvature, and k is quadratic surface coefficient, and A, B, C, D are respectively 4,6,8,10 rank asphericity coefficients.
This utility model is in use, the light that image display sends is transmitted into couple prism via the transmission curved surface of couple prism, then fiber waveguide sheet is entered after being reflected by reflecting curved surface, advance in light wave guide card inner total reflection, there is certain reflection and transmission in light, finally occurs the light of reflection through the pupil entering observer bottom glass substrate successively after being irradiated to the incidence surface of semi-transparent semi-reflecting film 2.
As a kind of preferred version, fiber waveguide eyeglass is additionally provided with a plate-shaped light wave guide card, and using light wave guide card as optical transport portion, couple prism is positioned at light wave guide card one end, and reflective coating is towards light wave guide card;Semi-transparent semi-reflecting film is positioned at the light wave guide card other end, can be provided with transparent glass between two adjacent semi-transparent semi-reflecting films, and the semi-transparent semi-reflecting film near light wave guide card connects light wave guide card by transparent glass.As another kind of preferred version, such as Fig. 1, fiber waveguide eyeglass is additionally provided with a plate-shaped light wave guide card 1, and using light wave guide card 1 as optical transport portion, couple prism is positioned at light wave guide card 1 one end, and reflective coating is towards light wave guide card 1;Semi-transparent semi-reflecting film 2 embeds in light wave guide card 1, and semi-transparent semi-reflecting film 2 is positioned at the light wave guide card 1 one end away from couple prism.Semi-transparent semi-reflecting film 2 more increases the closer to couple prism, reflectance, and transmitance more subtracts.Light wave guide card thickness is 1.8mm~2.2mm, preferably 2mm.Light wave guide card thickness reduces, and reduces the weight of glasses, improves the comfort of user.
Semi-transparent semi-reflecting film 2 is an angle with the lower surface of light wave guide card, and angle is 20~30 degree, preferably 24.5 degree.Using this angle, the angle of visual field more existing augmented reality glasses improve a lot, and the angle of visual field can reach 36 degree, and visual range is about 18mm.Angle formed by each semi-transparent semi-reflecting film 2 and light wave guide card is the most equal.
Of the present utility model ultimate principle and principal character and of the present utility model advantage have more than been shown and described.Skilled person will appreciate that of the industry; this utility model is not restricted to the described embodiments; described in above-described embodiment and description, principle of the present utility model is simply described; on the premise of without departing from this utility model spirit and scope; this utility model also has various changes and modifications, in the range of these changes and improvements both fall within claimed this utility model.This utility model claims scope and is defined by appending claims and equivalent thereof.
Claims (8)
1. augmented reality spectacle lens based on free form surface, including a fiber waveguide eyeglass, described fiber waveguide eyeglass is provided with one and goes out light end, an optical transport portion, a light inputting end;It is characterized in that, described fiber waveguide eyeglass is provided with at least three layers of semi-transparent semi-reflecting film, and each described semi-transparent semi-reflecting film is parallel to each other, described semi-transparent semi-reflecting film be positioned at described in go out light end;
Described fiber waveguide eyeglass is additionally provided with a couple prism, described couple prism is positioned at described light inputting end, the lower surface of described couple prism is a transmission curved surface, described transmission curved surface is the convex shape of an evagination, the upper surface of described couple prism is a reflecting curved surface, described reflecting curved surface is the convex shape of an evagination, and the medial wall of described reflecting curved surface scribbles reflective coating.
Augmented reality spectacle lens based on free form surface the most according to claim 1, it is characterised in that in described transmission curved surface, described reflecting curved surface, the equation of at least one meets one of three below equation:
(a)
CxIt is the radius of curvature of X-direction, C in curved surface X Z planeyIt is the curved surface radius of curvature of Y-direction, K in Y Z planexIt is the whose conic coefficient of curved surface X-direction, KyIt is the whose conic coefficient of curved surface Y-direction, AiIt it is 4,6,8 ... 2n rank rotation asymmetry coefficient;
(b)
Wherein C is surface curvature, cjFor multinomial coefficient;
(c)
Wherein c is radius of curvature, and k is quadratic surface coefficient, and A, B, C, D are respectively 4,6,8,10 rank asphericity coefficients.
Augmented reality spectacle lens based on free form surface the most according to claim 1, it is characterized in that, described fiber waveguide eyeglass is additionally provided with a plate-shaped light wave guide card, using described light wave guide card as described optical transport portion, described couple prism is positioned at described light wave guide card one end, and described reflective coating is towards described light wave guide card;Described semi-transparent semi-reflecting film is positioned at the described light wave guide card other end, is provided with transparent glass between two adjacent described semi-transparent semi-reflecting films, and the semi-transparent semi-reflecting film near described light wave guide card connects described light wave guide card by transparent glass.
Augmented reality spectacle lens based on free form surface the most according to claim 3, it is characterised in that described semi-transparent semi-reflecting film is an angle with the lower surface of described light wave guide card, and described angle is 20~30 degree.
Augmented reality spectacle lens based on free form surface the most according to claim 4, it is characterised in that described semi-transparent semi-reflecting film more increases the closer to described couple prism, reflectance, and transmitance more subtracts.
Augmented reality spectacle lens based on free form surface the most according to claim 1, it is characterized in that, described fiber waveguide eyeglass is additionally provided with a plate-shaped light wave guide card, using described light wave guide card as described optical transport portion, described couple prism is positioned at described light wave guide card one end, and described reflective coating is towards described light wave guide card;Described semi-transparent semi-reflecting film embeds in described light wave guide card, and described semi-transparent semi-reflecting film is positioned at the described light wave guide card one end away from described couple prism.
Augmented reality spectacle lens based on free form surface the most according to claim 6, it is characterised in that described semi-transparent semi-reflecting film is an angle with the lower surface of described light wave guide card, and described angle is 20~30 degree.
Augmented reality spectacle lens based on free form surface the most according to claim 7, it is characterised in that described semi-transparent semi-reflecting film more increases the closer to described couple prism, reflectance, and transmitance more subtracts.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
CN201521065516.0U CN205450445U (en) | 2015-12-18 | 2015-12-18 | Augmented reality is lens for glasses based on free -form surface |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
CN201521065516.0U CN205450445U (en) | 2015-12-18 | 2015-12-18 | Augmented reality is lens for glasses based on free -form surface |
Publications (1)
Publication Number | Publication Date |
---|---|
CN205450445U true CN205450445U (en) | 2016-08-10 |
Family
ID=57181263
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
CN201521065516.0U Active CN205450445U (en) | 2015-12-18 | 2015-12-18 | Augmented reality is lens for glasses based on free -form surface |
Country Status (1)
Country | Link |
---|---|
CN (1) | CN205450445U (en) |
Cited By (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN107797278A (en) * | 2016-09-07 | 2018-03-13 | 美国梦境视觉公司 | Head mounted display |
CN109828376A (en) * | 2016-10-09 | 2019-05-31 | 鲁姆斯有限公司 | Use the aperture multiplier of rectangular waveguide |
CN111373306A (en) * | 2017-11-29 | 2020-07-03 | 株式会社籁天那 | Method for manufacturing optical device |
CN111474719A (en) * | 2020-05-05 | 2020-07-31 | 谷东科技有限公司 | Waveguide device and augmented reality apparatus |
US12013540B2 (en) | 2017-11-29 | 2024-06-18 | Letinar Co., Ltd | Method of manufacturing optical device having array of reflective units on optical element surfaces |
-
2015
- 2015-12-18 CN CN201521065516.0U patent/CN205450445U/en active Active
Cited By (7)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN107797278A (en) * | 2016-09-07 | 2018-03-13 | 美国梦境视觉公司 | Head mounted display |
CN109828376A (en) * | 2016-10-09 | 2019-05-31 | 鲁姆斯有限公司 | Use the aperture multiplier of rectangular waveguide |
CN109828376B (en) * | 2016-10-09 | 2021-05-18 | 鲁姆斯有限公司 | Aperture multiplier using rectangular waveguides |
CN111373306A (en) * | 2017-11-29 | 2020-07-03 | 株式会社籁天那 | Method for manufacturing optical device |
US11656460B2 (en) | 2017-11-29 | 2023-05-23 | Letinar Co., Ltd | Method of manufacturing optical device with first and second optical elements having reflective units |
US12013540B2 (en) | 2017-11-29 | 2024-06-18 | Letinar Co., Ltd | Method of manufacturing optical device having array of reflective units on optical element surfaces |
CN111474719A (en) * | 2020-05-05 | 2020-07-31 | 谷东科技有限公司 | Waveguide device and augmented reality apparatus |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
CN205450445U (en) | Augmented reality is lens for glasses based on free -form surface | |
US10571617B2 (en) | Systems, devices, and methods for curved waveguides integrated with curved eyeglass lenses | |
CN114325903B (en) | A free-form surface prism assembly and a near-eye display device using the same | |
CN103852891B (en) | Head-mounted display device | |
CN105629478B (en) | Visual optical imaging device and the binocular near-eye display for using it | |
CN110806645A (en) | A grating waveguide for augmented reality | |
CN107300777A (en) | A kind of imaging system reflected based on double free form surfaces | |
CN111492302A (en) | Stepped waveguide element, personal display device and method of producing an image | |
US11567322B2 (en) | Systems, devices, and methods for eyebox expansion in wearable heads-up displays | |
CN107065049A (en) | The display prism and optical system of a kind of big angle of visual field augmented reality | |
WO2021139725A1 (en) | Near-to-eye display apparatus | |
CN105629468A (en) | Freeform surface-based slab waveguide augmented reality glasses | |
TW200807056A (en) | Design method, production method of a progressive refraction index lens, and supply system of a spectacle lens | |
CN110036235A (en) | Waveguide with the peripheral sides geometry for recycling light | |
CN116338842A (en) | Display device, diffraction optical element and preparation method thereof | |
CN217443725U (en) | Optical-mechanical system | |
US10310271B2 (en) | Systems, devices, and methods employing waveguides embedded in curved lenses | |
CN205450446U (en) | Fiber waveguide lens with cambered surface transflective film | |
CN106019586A (en) | Double optical waveguide sheet-type augment reality eyeglass | |
CN208569195U (en) | A kind of nearly eye of compact free form surface waveguide shows Optical devices | |
CN105572876A (en) | Slab waveguide augmented reality glasses | |
CN104090330B (en) | A kind of Waveguide display based on integrated freeform optics element | |
CN109814262A (en) | A kind of miniscope imaging optical system and the equipment for having VR/AR function | |
US20180348528A1 (en) | Systems, devices, and methods employing waveguides embedded in curved lenses | |
CN210166569U (en) | Augmented reality optical system based on free-form surface and optical waveguide |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
C14 | Grant of patent or utility model | ||
GR01 | Patent grant |