CN101221289B - Multi-primary color image combination synthesizer - Google Patents

Multi-primary color image combination synthesizer Download PDF

Info

Publication number
CN101221289B
CN101221289B CN2007100362962A CN200710036296A CN101221289B CN 101221289 B CN101221289 B CN 101221289B CN 2007100362962 A CN2007100362962 A CN 2007100362962A CN 200710036296 A CN200710036296 A CN 200710036296A CN 101221289 B CN101221289 B CN 101221289B
Authority
CN
China
Prior art keywords
prism
light
splitting surface
incident
headprism
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
Application number
CN2007100362962A
Other languages
Chinese (zh)
Other versions
CN101221289A (en
Inventor
程思洋
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Guangchang Xiamen Technology Co ltd
Original Assignee
Individual
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Individual filed Critical Individual
Priority to CN2007100362962A priority Critical patent/CN101221289B/en
Publication of CN101221289A publication Critical patent/CN101221289A/en
Application granted granted Critical
Publication of CN101221289B publication Critical patent/CN101221289B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Optical Elements Other Than Lenses (AREA)
  • Projection Apparatus (AREA)

Abstract

The invention provides a multi-fundamental color image combination synthesizer which includes a main prism and at least one correcting prism arranged on each incident direction. The main prism is a polygon and includes a positive incident surface, a plurality of beam spitting surfaces and an exiting surface. The main prism is used for forming the light injected in the main prism from the positive incident surface and the beam splitting surface into a light path from the positive incident surface to the exiting surface. The light path generates full reflection on the location of each beam splitting surface. The correcting prisms are all provided with an incident surface and an exiting surface. The incident light which is injected from the positive incident surface directly and vertically injects into the positive incident surface. The incident light in other incident directions injects into the incident surface of one of at least one correcting prism and injects out from the exiting surface of the correcting prisms, then injects into the beam splitting surface corresponding to the correcting prisms and synthesizes in the main prism along the incident light of each incident direction, and finally injects out from the exiting surface of the main prism; wherein, the exiting surface of the correcting prism is mutually parallel to the beam splitting surface corresponding to the correcting prism. An image with a more realistic color can be obtained by the synthesizer of the invention.

Description

Multi-primary color image combination synthesizer
Technical field
The present invention relates to a kind of optical device, relate in particular to a kind of multi-primary color image combination synthesizer.
Background technology
As everyone knows, in the display of red, green, blue three looks as primary colours, image synthesizer is wherein requisite device.There has been multiple beam synthesizing device in this area.But these devices respectively have length.For example, Fig. 1 discloses the X prism that generally adopts in the present projector.Different wave length (λ 1, λ 2, λ 3) monochromatic light inject this prism from three directions respectively, and from the four direction of this prism stack output.But under the situation that will import more primary colours, this prism obviously can not meet the demands.In addition, among the Chinese invention patent No.93109784.3 a kind of laser beam combining unit is disclosed.This device has utilized the feature that the light beam of different polarization states can be synthesized of calcite crystal.But, the polarization state of light beam of input there is special requirement according to the principle of this device.Thus, though the synthesizer kind of prior art is a lot, certain limitation is arranged all.
Just developing display system now based on many primary colours (primary colours more than three kinds).The increase of number of primary colors means that the reductibility of color of image is better, and display effect is better.Fig. 2 A and 2B show the demonstration colour gamut under three primary colours and the nine primary colours conditions respectively.Comparison by Fig. 2 A and 2B can be seen, the more approaching true colour gamut that needs reduction of the colour gamut of nine primary colours.Yet, because display system in the past mainly based on three primary colours (RGB), therefore fails to provide the image synthesizer that is suitable for this many primary display system.
Patent document 1: Inst. of Physics, CAS is in the patented claim of 2004/07/16 title of submitting to for " a kind of have red, green, blue tricolor laser colour display device ", application number: 200410069055.", these multi-primary color image synthesizers can't realize problem to the transition of many primary colours laser display because mainly being the present existing tricolor laser display device of solution.
Summary of the invention
The object of the present invention is to provide a kind of compositor that is used for multi-primary color image.
The invention provides a kind of multi-primary color image combination synthesizer, it comprise headprism and be arranged on each incident direction at least one revise prism.Headprism is polygon and comprises a normal incidence face, a plurality of beam-splitting surface and an exit facet, the light that headprism is used for going into to inject headprism from normal incidence face and beam-splitting surface forms the light path from the normal incidence face to exit facet, and this light path at each beam-splitting surface place total reflection takes place.Revise prism and all comprise a plane of incidence and an exit facet.The incident light of injecting from the normal incidence face directly vertically incides the normal incidence face.The incident light of other incident direction is then injected at least one plane of incidence of revising one of prism and is penetrated from its exit facet, incide subsequently and the corresponding beam-splitting surface of this correction prism, incident light along each incident direction is synthetic in headprism, penetrate from the exit facet of headprism at last, the exit facet of wherein revising prism be parallel to each other with the corresponding beam-splitting surface of this correction prism.
According to a kind of embodiment, except that first beam-splitting surface, all beam-splitting surfaces are identical with respect to the sense of rotation of last beam-splitting surface.According to another kind of embodiment, except that first beam-splitting surface and last beam-splitting surface, a back beam-splitting surface of at least one beam-splitting surface is different with its sense of rotation with respect to last beam-splitting surface with respect to its sense of rotation.
In addition, each size of revising the angle of the plane of incidence of prism and exit facet is determined according to the angle between each corresponding beam-splitting surface of headprism.
In addition, each prism of multi-primary color image combination synthesizer of the present invention is made of in isotropic material, negative crystal and the positive crystal any.
In addition, multi-primary color image combination synthesizer of the present invention also comprises and turns to prism before the exit facet that is arranged at headprism.
Can obtain color image more true to nature by compositor of the present invention.
Should be appreciated that the above generality of the present invention is described and the following detailed description all is exemplary and explanat, and be intended to the further explanation that the invention provides for as claimed in claim.
Description of drawings
Comprise that accompanying drawing is for providing the present invention further to be understood, they are included and are constituted the application's a part, and accompanying drawing shows embodiments of the invention, and play the effect of explaining the principle of the invention with this instructions.In the accompanying drawing:
Fig. 1 is the structural representation of the X prism of prior art.
Fig. 2 A and 2B are respectively the synoptic diagram of the demonstration colour gamut of three primary colours and the demonstration of nine primary colours.
Fig. 3 A and 3B are respectively the synoptic diagram of multi-primary color image combination synthesizer according to an embodiment of the invention.
Fig. 4 A and 4B are respectively the synoptic diagram according to the multi-primary color image combination synthesizer of second embodiment of the invention.
Fig. 5 A and 5B are respectively the synoptic diagram according to the multi-primary color image combination synthesizer of third embodiment of the invention.
Fig. 6 is the synoptic diagram according to the multi-primary color image combination synthesizer of fourth embodiment of the invention.
Fig. 7 is the synoptic diagram according to the multi-primary color image combination synthesizer of fifth embodiment of the invention.
Embodiment
Now with embodiments of the present invention will be described by referring to the drawings in detail.
Fig. 3 A is the synoptic diagram of multi-primary color image combination synthesizer according to an embodiment of the invention.
As shown in Figure 3A, multi-primary color image combination synthesizer of the present invention comprises irregular polygon headprism A, is arranged at the correction prism A on each incident direction 1, A 2, A 3, A 4And turn to prism B.Alphabetical represented limit identical among the figure has identical geometric properties.Dotted line is a boost line.Among the figure, 1., 2., 3., 4., 5. represent incident direction.The width of s ' expression primary color image.Prism A, A shown in the figure 1, A 2, A 3, A 4Building material identical, be isotropic medium; The building material that turns to prism B is isotropic medium, this medium can with prism A, A 1, A 2, A 3, A 4Used material difference, but the refractive index of the light that the material that must guarantee to turn to prism B in visible-range shows any participation all greater than
Figure S07136296220070126D000031
).Each is provided with optical path compensator D before revising prism, and this optical path compensator D must not change light path.Headprism A is polygon and comprises a normal incidence face (rs) and a plurality of beam-splitting surface (bc), (df), (hg), (pq).Beam-splitting surface be defined as one of prism A can total reflection prism A in the prism facets of part light of light path.
Wherein, the incident light of injecting from normal incidence face (rs) directly vertically incides this normal incidence face (rs), and the incident light of other direction is injected correction prism A 1, A 2, A 3, A 4One of the plane of incidence and penetrate from its exit facet, incide subsequently and one of the corresponding a plurality of beam-splitting surfaces of this correction prism (bc), (df), (hg), (pq), incident light along each incident direction is synthetic in headprism A, and the exit facet (av) from headprism A penetrates at last.After this, impinge perpendicularly on the plane of incidence that turns to prism B and penetrate perpendicular to its exit facet.Wherein, the exit facet of revising prism be parallel to each other with its corresponding beam-splitting surface, for example
Figure S07136296220070126D000032
In the present embodiment, preferred satisfied following geometric condition:
1, boost line explanation:
Figure S07136296220070126D000033
And with
Figure S07136296220070126D000035
Intersect at a w 1,
Figure S07136296220070126D000036
Figure S07136296220070126D000037
And with
Figure S07136296220070126D000038
Intersect at a w 2,
Figure S07136296220070126D000039
Figure S07136296220070126D0000310
And with
Figure S07136296220070126D0000311
Intersect at a w 3,
Figure S07136296220070126D0000312
And with Intersect at a w 4,
Figure S07136296220070126D0000315
Figure S07136296220070126D0000316
And with Intersect at a w 5
2, prism A, A 1, A 2, A 3, A 4Seamed edge: av is vertical with emergent light,
Figure S07136296220070126D0000318
Figure S07136296220070126D0000319
Figure S07136296220070126D0000320
Rs is perpendicular to the incident light direction from 5. incident; Ab, cd, fg, hp, qr, st, tu, uv,
Figure S07136296220070126D0000323
Figure S07136296220070126D0000324
Figure S07136296220070126D0000325
Do not require, but do not influence at prism A, A 1, A 2, A 3, A 4In light path.
3, prism A, A 1, A 2, A 3, A 4Angle:
(1) prism A: ∠ aw 1B=π-θ 1, ∠ cw 2D=π-θ 2, ∠ fw 3G=π-θ 3, ∠ hw 4P=π-θ 4,
∠qw 5r=π-θ 5
(2) prism A 1: ∠ x 1y 1z 1=π-θ 1
(3) prism A 2: ∠ x 2y 2z 212=(π-θ 2)-(π-θ 1);
(4) prism A 3: ∠ x 3y 3z 3=π-θ 3+ θ 21=(π-θ 3)-[(π-θ 2)-(π-θ 1)
(5) prism A 4:
∠x 4y 4z 4=θ 1234=(π-θ 4)-{(π-θ 3)-[(π-θ 2)-(π-θ 1)]};
4, the seamed edge of prism B: yz is vertical with incident light, and xz is vertical with emergent light.
5, the angle of prism B: ∠ xyz=θ.
How below describe in detail utilizes device of the present invention to realize the purpose of composograph of the present invention.
Suppose to show that required number of primary colors is N, these optical wavelength are respectively λ i(i=1,2 ... N), at prism A, A 1, A 2, A 3, A 4Refractive index in the used isotropic medium is respectively n i(i=1,2 ... and suppose that these light are arranged in order and are designated as again n according to refractive index is ascending N), j(be n J+1N j); Refractive index in turning to the used isotropic medium of prism B is respectively n i ′ ( i = 1,2 · · · · · · N ) .
Supposing need be from prism A iGoing into to inject compositor light is n j(m I-1<j≤m i, m i〉=m I-1〉=0, i 〉=1, m 0=0, mi is a positive integer, 1≤i≤u≤N, m u≤ N, u represent last beam-splitting surface), the refractive index of supposing air is n 0
Each relevant angle preferably meets the following conditions among 1}, the headprism A:
1, the effect of beam-splitting surface mainly contains:
The image of composite part primary colours: (as figure, beam-splitting surface (bc), (df), (gh), (pq))
Figure S07136296220070126D000042
Figure S07136296220070126D000043
s=m i+1,t=m i,i≤u [1];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
2,5. enter headprism A (as figure, normal incidence face (rs)) from incident direction:
Figure S07136296220070126D000044
Wherein u represents last beam-splitting surface.
2}, on i beam-splitting surface:
n k=n j,n k<n k+1
Figure S07136296220070126D000051
1≤k≤(m i-m i-1),m i-1<j≤m i,i≤u [3];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
3}, offset distance:
1, i the beam-splitting surface that has only a kind of light incident of wavelength revised prism A iAnd the distance H between i the beam-splitting surface of headprism A iPreferred satisfied:
H i>0,1≤i≤N [4];
The correction prism A of light incident that 2, two or more wavelength is arranged iAnd the distance H between i the beam-splitting surface of headprism A I, k(H I, k0, m I-1<j≤m i, k 〉=2, k is a positive integer), for all from revising prism A iIncident is (promptly from incident direction
Figure S07136296220070126D00005181957QIETU
Incident, 1≤i≤u, u represent last beam-splitting surface) the primary color image of light of different wave length and the offset distance of compound direction be:
Figure S07136296220070126D000052
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [5];
So from same correction prism A iOffset distance between two kinds of adjacent different primary color images of incident is:
Δd i,k=|d i,k+1-d i,k|,
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [6];
As Δ d I, k((Δ d during 〉=s I, k-s) 〉=0), separate in the space during each primary color image incident, and through reaching the synthetic purpose of monochrome image of many primary colours fully at space overlap after the compositor.
Before entering compositor, incident light is used to adjust each other the phase place of light when arriving exit facet (av) of each primary colours earlier by the optical path compensation device of each primary colours correspondence.
Image enters from exit facet (av) ejaculation and from the plane of incidence (zy) and turns to prism B after will synthesizing at last, penetrates from exit facet (xz) after fully reflecting surface (xy) total reflection, turns to prism B to be mainly used in the exit direction of adjusting the image after synthesizing.
Turn to prism B the angle the preferred condition that satisfies be:
n 0 n i &prime; < sin &theta; , 1 &le; i &le; N - - - [ 7 ] ;
The refractive index of air is n 0, example among the figure adopts the right-angle prism of a base angle ∠ xyz=∠ yxz=θ=45 °.
In addition, be to improve the utilization factor of light, can be on the plane of incidence of each prism and exit facet the corresponding anti-reflection film of plating, to improve the transmitance of light.
In addition, for Fig. 3 A by two prism A 4, the light of two kinds of primary colours is parallel respectively to incide two prism A 4Situation can be applied to equally respectively revise prism among other embodiments of the invention and other embodiment.
Fig. 3 B is the synoptic diagram of multi-primary color image combination synthesizer according to an embodiment of the invention.
Fig. 3 B and Fig. 3 A have many something in common, and identical among the label of these same sections and Fig. 3 A also represented identical implication, so its description can be with reference to the situation among above-mentioned Fig. 3 A.Among Fig. 3 B, the 4th beam-splitting surface is (sr) ((sr) is the normal incidence face in the embodiment of Fig. 3 A), and the normal incidence face is (pq) ((pq) is the 4th beam-splitting surface in the embodiment of Fig. 3 A).In the present embodiment, if a back beam-splitting surface of a beam-splitting surface is different with its sense of rotation with respect to last beam-splitting surface with respect to its sense of rotation, claim that so this beam-splitting surface is critical beam-splitting surface.(first beam-splitting surface and last except), for example beam-splitting surface (gh) among Fig. 3 B.
The difference of embodiment shown in embodiment shown in Fig. 3 B and Fig. 3 A mainly is: among the embodiment of Fig. 3 A, all beam-splitting surfaces are with respect to the sense of rotation of last beam-splitting surface identical (except first beam-splitting surface); And among the embodiment of Fig. 3 B, a back beam-splitting surface of at least one beam-splitting surface is with respect to its sense of rotation different with its sense of rotation with respect to last beam-splitting surface (except first beam-splitting surface and last beam-splitting surface), such as beam-splitting surface (gh).
In the embodiment shown in Fig. 3 B, along first direction 1., 2. identical among situation and Fig. 3 A of incident of second direction.4. in the situation of incident, there is being the parallel light of two kinds of primary colours to incide same correction prism A along direction 4The parallel light of this multiple primary colours incides same correction prism A iThe situation that incides the i beam-splitting surface again can be applicable to respectively revise prism among other embodiments of the invention and other embodiment equally.In addition, in the present embodiment, along direction 4. the light of incident through revising prism A 4The beam-splitting surface that enters is (sr).And along direction 5. the headprism face of the direct vertical incidence of light of incident be (pq), i.e. normal incidence face.
The synthetic number of primary colors of multi-primary color image that only can realize with a headprism in the embodiment of Fig. 3 A is limited; And the number of primary colors that the multi-primary color image that only can realize with a headprism in the embodiment of Fig. 3 B synthesizes is far more than the embodiment of Fig. 3 A.
In the present embodiment, preferred satisfied following geometric condition:
1, boost line explanation:
Figure S07136296220070126D000062
And with
Figure S07136296220070126D000063
Intersect at a w 1,
Figure S07136296220070126D000064
Figure S07136296220070126D000065
And with
Figure S07136296220070126D000066
Intersect at a w 2,
Figure S07136296220070126D000067
Figure S07136296220070126D000068
And with
Figure S07136296220070126D000069
Intersect at a w 3,
Figure S07136296220070126D0000610
Figure S07136296220070126D0000611
Figure S07136296220070126D0000612
Figure S07136296220070126D0000613
And with
Figure S07136296220070126D0000614
Intersect at a w 5
2, prism A, A 1, A 2, A 4Seamed edge: av is vertical with emergent light,
Figure S07136296220070126D0000615
Figure S07136296220070126D0000616
Figure S07136296220070126D0000617
Pq is perpendicular to the incident light direction from 5. incident; Ab, cd, fg, hp, qr, st, tu, uv,
Figure S07136296220070126D0000618
Figure S07136296220070126D0000620
Do not require, but do not influence at prism A, A 1, A 2, A 4In light path.
3, prism A, A 1, A 2, A 4Angle:
(1) prism A: ∠ aw 1B=π-θ 1, ∠ cw 2D=π-θ 2, ∠ fw 3G=π-θ 3, ∠ rsw 4=π-θ 4, ∠ qw 5R=π-θ 5
(2) prism A 1: ∠ x 1y 1z 1=π-θ 1
(3) prism A 2: ∠ x 2y 2z 212=(π-θ 2)-(π-θ 1);
(4) prism A 4:
∠x 4y 4z 4=π-θ 1234=(π-θ 3)-[(π-θ 2)-(π-θ 1)]-θ 4
4, the seamed edge of prism B: yz is vertical with incident light, and xz is vertical with emergent light.
5, the angle of prism B: ∠ xyz=θ.
How below describe in detail utilizes device of the present invention to realize the purpose of composograph of the present invention.
Suppose to show that required number of primary colors is N, these optical wavelength are respectively λ i(i=1,2 ... N), at prism A, A 1, A 2, A 4Refractive index in the used isotropic medium is respectively n i(i=1,2 ... and suppose that these light are arranged in order and are designated as again n according to refractive index is ascending N), j(be n J+1N j); Refractive index in the used isotropic medium of prism B is respectively n i &prime; ( i = 1,2 &CenterDot; &CenterDot; &CenterDot; &CenterDot; &CenterDot; &CenterDot; N ) .
Supposing need be from prism A iGoing into to inject compositor light is n j(m I-1<j≤m i, m i〉=m I-1〉=0, i 〉=1, m 0=0, m iBe positive integer, 1≤i≤u≤N, m u≤ N, u represent last beam-splitting surface), the refractive index of supposing air is n 0
Each relevant angle preferably meets the following conditions among 1}, the headprism A:
1, the effect of beam-splitting surface mainly contains 2 points:
(1) image of composite part primary colours: (as figure, beam-splitting surface (bc), (df), (sr))
Figure S07136296220070126D000072
Figure S07136296220070126D000073
i≠h k+1,
Figure S07136296220070126D000074
i=hk+1,
s=m i+1,t=m i
Figure S07136296220070126D000075
i≤u [8];
H wherein kRepresent k critical beam-splitting surface, it is numbered h k(i.e. h kIndividual beam-splitting surface),
U represents last beam-splitting surface, and the refractive index of air is n 0
(2) light path among the adjustment headprism A: (as figure, beam-splitting surface (gh))
Figure S07136296220070126D000076
Figure S07136296220070126D000077
i≠h k+1,
Figure S07136296220070126D000078
i=h k+1,
r=m i,m i=m i-1
Figure S07136296220070126D000079
r≤u [9];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
2,5. enter prism A (as figure, normal incidence face (rs)) from incident direction:
Figure S07136296220070126D000081
Wherein u represents last beam-splitting surface.
2}, on i beam-splitting surface:
Figure S07136296220070126D000082
n k=n j,n k<n k+1
Figure S07136296220070126D000083
i≠h k+1,
Figure S07136296220070126D000084
i=h k+1,
1≤k≤(m i-m i-1),m i-1<j≤m ii≤u [11];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
3}, offset distance:
1, a kind of i beam-splitting surface of light incident of wavelength only revised prism A iAnd the distance H between i the beam-splitting surface of headprism A iPreferred satisfied:
H i>0,1≤i≤N [12];
The correction prism A of light incident that 2, two or more wavelength is arranged iAnd the distance H between i the beam-splitting surface of headprism A I, k(H I, k0, m I-1<j≤m i, k 〉=2, k is a positive integer), for all from revising prism A iIncident is (promptly from incident direction Incident, 1≤i≤u, u represent last beam-splitting surface) the primary color image of light of different wave length and the offset distance of compound direction be:
Figure S07136296220070126D000086
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [13];
So from same correction prism A iOffset distance between two kinds of adjacent different primary color images of incident is:
Δd i,k=|d i,k+1-d i,k|,
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [14];
As Δ d I, k((Δ d during 〉=s I, k-s) 〉=0), separate in the space during each primary color image incident, and through reaching the synthetic purpose of monochrome image of many primary colours fully at space overlap after the compositor.
Before entering compositor, incident light is used to adjust each other the phase place of light when arriving exit facet (av) of each primary colours earlier by the optical path compensation device of each primary colours correspondence.
Image enters from exit facet (av) ejaculation and from the plane of incidence (zy) and turns to prism B after will synthesizing at last, penetrates from exit facet (xz) after fully reflecting surface (xy) total reflection, turns to prism B to be mainly used in the exit direction of adjusting the image after synthesizing.
Turn to prism B the angle the preferred condition that satisfies be:
n 0 n i &prime; < sin &theta; , 1≤i≤N [15];
The refractive index of air is n 0, example among the figure adopts the right-angle prism of a base angle ∠ xyz=∠ yxz=θ=45 °.
In the embodiment of Fig. 3 B, saved from the 3. situation of incident of incident direction, with this illustrate can select from above 1., 2., 3., 4., 5. any the incident direction or a plurality of incident, and can realize similarly that required image is synthetic.But be appreciated that among the embodiment of Fig. 3 B and also can increase incident direction correction prism A 3. 3, and the condition among Fig. 3 A embodiment can continued to use realizes the technique effect in Fig. 3 A scheme.
Fig. 4 A is the synoptic diagram of multi-primary color image combination synthesizer according to another embodiment of the present invention.
The structure of the embodiment of Fig. 4 A and Fig. 3 A are basic identical, and the key distinction is each prism A, A among the embodiment of Fig. 4 A 1, A 2, A 4Material be negative crystal, the material of prism B still is an isotropic material, and compares with Fig. 3 A, has saved prism A among Fig. 4 A 3M represents prism A, A among the figure 1, A 2, A 4Optical axis direction.Require the polarization of incident light direction must be parallel or in the design of this technical scheme of negative crystal perpendicular to above-mentioned optical axis direction.
Shown in Fig. 4 A, multi-primary color image combination synthesizer of the present invention comprises irregular polygon headprism A, is arranged at the correction prism A on each incident direction 1, A 2, A 4And turn to prism B.Alphabetical represented limit identical among the figure has identical geometric properties.Dotted line is a boost line.Among the figure, 1., 2., 4., 5. represent incident direction.The width of s ' expression primary color image.Prism A, A shown in the figure 1, A 2, A 4Building material identical, be negative crystal of the same race; The building material that turns to prism B is isotropic medium, but the refractive index of the light that the material that must guarantee to turn to prism B in visible-range shows any participation all greater than ).Each is provided with optical path compensator D before revising prism, and this optical path compensator D must not change light path.Headprism A is polygon and comprises a normal incidence face (rs) and a plurality of beam-splitting surface (bc), (df), (hg), (pq).Beam-splitting surface is defined as the prism facets of one of the prism A part light in can total reflection prism A.
Wherein, the incident light of injecting from normal incidence face (rs) directly vertically incides this normal incidence face (rs), and the incident light of other direction is injected correction prism A 1, A 2, A 4One of the plane of incidence and penetrate from its exit facet, incide subsequently and one of the corresponding a plurality of beam-splitting surfaces of this correction prism (bc), (df), (pq), incident light along each incident direction is synthetic in headprism A, and the exit facet (av) from headprism A penetrates at last.After this, impinge perpendicularly on the plane of incidence that turns to prism B and penetrate perpendicular to its exit facet.Wherein, the exit facet of revising prism be parallel to each other with its corresponding beam-splitting surface, for example
Figure S07136296220070126D000093
In the present embodiment, preferred satisfied following geometric condition:
1, boost line explanation:
Figure S07136296220070126D000101
Figure S07136296220070126D000102
And with Intersect at a w 1,
Figure S07136296220070126D000104
Figure S07136296220070126D000105
And with
Figure S07136296220070126D000106
Intersect at a w 2,
Figure S07136296220070126D000108
And with
Figure S07136296220070126D000109
Intersect at a w 3,
Figure S07136296220070126D0001010
Figure S07136296220070126D0001011
And with
Figure S07136296220070126D0001012
Intersect at a w 4,
Figure S07136296220070126D0001013
Figure S07136296220070126D0001014
And with
Figure S07136296220070126D0001015
Intersect at a w 5
2, prism A, A 1, A 2, A 4Seamed edge: av is vertical with emergent light,
Figure S07136296220070126D0001016
Figure S07136296220070126D0001017
Figure S07136296220070126D0001018
Rs is perpendicular to the incident light direction from 5. incident; Ab, cd, fg, hp, qr, st, tu, uv,
Figure S07136296220070126D0001019
Figure S07136296220070126D0001021
Do not require, but do not influence at prism A, A 1, A 2, A 4In light path.
3, prism A, A 1, A 2, A 4Angle:
(1) prism A: ∠ aw 1B=π-θ 1, ∠ cw 2D=π-θ 2, ∠ fw 3G=π-θ 3, ∠ hw 4P=π-θ 4,
∠qw 5r=π-θ 5
(2) prism A 1: ∠ x 1y 1z 1=π-θ 1
(3) prism A 2: ∠ x 2y 2z 212=(π-θ 2)-(π-θ 1);
(4) prism A 4:
∠x 4y 4z 4=θ 1234=(π-θ 4)-{(π-θ 3)-[(π-θ 2)-(π-θ 1)]};
4, the seamed edge of prism B: yz is vertical with incident light, and xz is vertical with emergent light.
5, the angle of prism B: ∠ xyz=θ.
How below describe in detail utilizes device of the present invention to realize the purpose of composograph of the present invention.
Suppose to show that required number of primary colors is N, these optical wavelength are respectively λ i(i=1,2 ... N), at prism A, A 1, A 2, A 4The o light in the used negative crystal and the principal refractive index of e light are respectively n OiAnd n Ei(i=1,2 ... N) (n in negative crystal OiN Ei), so the total 2N kind incident mode (polarization direction is perpendicular or parallel in optical axis) of the demonstration of N kind primary colours guarantees under the condition of N kind display primary that (the kind mode of N≤m≤2N) also is arranged in order and is designated as again n according to refractive index is ascending to filter out m j(be n J+1N j); Refractive index in the used isotropic medium of prism B is respectively n i &prime; ( i = 1,2 &CenterDot; &CenterDot; &CenterDot; &CenterDot; &CenterDot; &CenterDot; N ) .
If n jThe expression wavelength is λ iThe principal refractive index n of light corresponding o light in the used negative crystal of prism Oi, it is vertical with optical axis direction to require incident light must satisfy the polarization direction so in the design before entering headprism A, if light needs earlier through revising prism A iEnter headprism A again, entering correction prism A so iMake the polarisation of light direction vertical with optical axis direction before; If n jBeing expressed as wavelength is λ iThe principal refractive index n of light corresponding e light in the used negative crystal of prism Ei, must to satisfy the polarization direction parallel with optical axis direction entering headprism A to require incident light so in the design, if light needs earlier through revising prism A iEnter headprism A again, entering correction prism A so iMake the polarisation of light direction parallel with optical axis direction before.
Supposing need be from revising prism A iThe light of going into to inject compositor is n j(m I-1<j≤m i, m i〉=m I-1〉=0, i 〉=1, m 0=0, m iBe positive integer, 1≤i≤u≤N, m u≤ N, u represent last beam-splitting surface), the refractive index of supposing air is n 0
Among 1}, the headprism A relevant each angle the preferred condition that satisfies be:
1, the effect of beam-splitting surface mainly contains 2 points:
(1) image of composite part primary colours: (as figure, beam-splitting surface (bc), (df), (pq))
Figure S07136296220070126D000111
Figure S07136296220070126D000112
s=m i+1,t=m i,i≤u [16];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
(2) light path among the adjustment headprism A: (as figure, beam-splitting surface (gh))
Figure S07136296220070126D000114
r=m i,m i=m i-1,r≤u [17];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
2,5. enter headprism A (as figure, normal incidence face (rs)) from incident direction:
Wherein u represents last beam-splitting surface.
2}, on i beam-splitting surface:
n k=n j,n k<n k+1
Figure S07136296220070126D000117
1≤k≤(m i-m i-1),m i-1<j≤m i,i≤u [19];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
3}, offset distance:
1, i the beam-splitting surface that has only a kind of light incident of wavelength revised prism A iAnd the distance H between i the beam-splitting surface of headprism A iPreferred satisfied:
H i>0,1≤i≤N [20];
The correction prism A of light incident that 2, two or more wavelength is arranged iAnd the distance H between i the beam-splitting surface of headprism A I, k(H I, k0, m I-1<j≤m i, k 〉=2, k is a positive integer), for all from revising prism A iThe primary color image of the light of the different wave length of incident (promptly from 1. incident of incident direction, 1≤i≤u, u represent last beam-splitting surface) and the offset distance of compound direction are:
Figure S07136296220070126D000121
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [21];
So from same correction prism A iOffset distance between two kinds of adjacent different primary color images of incident is:
Δd i,k=|d i,k+1-d i,k|,
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [22];
As Δ d I, k((Δ d during 〉=s I, k-s) 〉=0), separate in the space during each primary color image incident, and through reaching the synthetic purpose of monochrome image of many primary colours fully at space overlap after the compositor.
Before entering compositor, incident light is used to adjust each other the phase place of light when arriving exit facet (av) of each primary colours earlier by the optical path compensation device of each primary colours correspondence.
Image enters from exit facet (av) ejaculation and from the plane of incidence (zy) and turns to prism B after will synthesizing at last, penetrates from exit facet (xz) after fully reflecting surface (xy) total reflection, turns to prism B to be mainly used in the exit direction of adjusting the image after synthesizing.
Turn to prism B the angle the preferred condition that satisfies be:
n 0 n i &prime; < sin &theta; , 1 &le; i &le; N - - - [ 23 ] ;
The refractive index of air is n 0, example among the figure adopts the right-angle prism of a base angle ∠ xyz=∠ yxz=θ=45 °.
In addition, for Fig. 4 A by two prism A 4, the light of two kinds of primary colours is parallel respectively to incide two prism A 4Situation can be applied to equally respectively revise prism among other embodiments of the invention and other embodiment.
Fig. 4 B is the synoptic diagram of multi-primary color image combination synthesizer in accordance with another embodiment of the present invention.
Fig. 4 B and Fig. 4 A have many something in common, and identical among the label of these same sections and Fig. 3 A also represented identical implication, so its description can be with reference to the situation among above-mentioned Fig. 4 A.Among Fig. 4 B, the 4th beam-splitting surface is (sr) ((sr) is the normal incidence face in the embodiment of Fig. 4 A), and the normal incidence face is (pq) ((pq) is the 4th beam-splitting surface in the embodiment of Fig. 4 A).In the present embodiment, if a back beam-splitting surface of a beam-splitting surface is different with its sense of rotation with respect to last beam-splitting surface with respect to its sense of rotation, claim that so this beam-splitting surface is critical beam-splitting surface.(first beam-splitting surface and last except), for example beam-splitting surface (gh) among Fig. 4 B.
The difference of embodiment shown in embodiment shown in Fig. 4 B and Fig. 4 A mainly is: among the embodiment of Fig. 4 A, all beam-splitting surfaces are with respect to the sense of rotation of last beam-splitting surface identical (except first beam-splitting surface); And among the embodiment of Fig. 4 B, a back beam-splitting surface of at least one beam-splitting surface is with respect to its sense of rotation different with its sense of rotation with respect to last beam-splitting surface (except first beam-splitting surface and last beam-splitting surface), such as beam-splitting surface (gh).
In the embodiment shown in Fig. 4 B, along first direction 1., 2. identical among situation and Fig. 4 A of incident of second direction.4. in the situation of incident, there is being the parallel light of two kinds of primary colours to incide same correction prism A along direction 4The parallel light of this multiple primary colours incides same correction prism A iThe situation that incides the i beam-splitting surface again can be applicable to respectively revise prism among other embodiments of the invention and other embodiment equally.In addition, in the present embodiment, along direction 4. the light of incident through revising prism A 4The beam-splitting surface that enters is (sr).And along direction 5. the headprism face of the direct vertical incidence of light of incident be (pq), i.e. normal incidence face.
The synthetic number of primary colors of multi-primary color image that only can realize with a headprism in the embodiment of Fig. 4 A is limited; And the number of primary colors that the multi-primary color image that only can realize with a headprism in the embodiment of Fig. 4 B synthesizes is far more than the embodiment of Fig. 4 A.
In the present embodiment, the preferred satisfied following geometric condition of device:
1, boost line explanation:
Figure S07136296220070126D000131
Figure S07136296220070126D000132
And with
Figure S07136296220070126D000133
Intersect at a w 1,
Figure S07136296220070126D000134
Figure S07136296220070126D000135
And with
Figure S07136296220070126D000136
Intersect at a w 2, And with
Figure S07136296220070126D000139
Intersect at a w 3,
Figure S07136296220070126D0001310
Figure S07136296220070126D0001312
Figure S07136296220070126D0001313
And with
Figure S07136296220070126D0001314
Intersect at a w 5
2, prism A, A 1, A 2, A 4Seamed edge: av is vertical with emergent light,
Figure S07136296220070126D0001315
Figure S07136296220070126D0001317
Pq is perpendicular to the incident light direction from 5. incident; Ab, cd, fg, hp, qr, st, tu, uv,
Figure S07136296220070126D0001318
Figure S07136296220070126D0001319
Figure S07136296220070126D0001320
Do not require, but do not influence at prism A, A 1, A 2, A 4In light path.
3, prism A, A 1, A 2, A 4Angle:
(1) prism A: ∠ aw 1B=π-θ 1, ∠ cw 2D=π-θ 2, ∠ fw 3G=π-θ 3, ∠ rsw 4=π-θ 4,
∠qw 5r=π-θ 5
(2) prism A 1: ∠ x 1y 1z 1=π-θ 1
(3) prism A 2: ∠ x 2y 2z 212=(π-θ 2)-(π-θ 1);
(4) prism A 4:
∠x 4y 4z 4=π-θ 1234=(π-θ 3)-[(π-θ 2)-(π-θ 1)]-θ 4
4, the seamed edge of prism B: yz is vertical with incident light, and xz is vertical with emergent light.
5, the angle of prism B: ∠ xyz=θ.
How below describe in detail utilizes device of the present invention to realize the purpose of composograph of the present invention.
Suppose to show that required number of primary colors is N, these optical wavelength are respectively λ i(i=1,2 ... N), at prism A, A 1, A 2, A 4The o light in the used negative crystal and the principal refractive index of e light are respectively n OiAnd n Ei(i=1,2 ... N) (n in negative crystal OiN Ei), so the total 2N kind incident mode (polarization direction is perpendicular or parallel in optical axis) of the demonstration of N kind primary colours guarantees under the condition of N kind display primary that (the kind mode of N≤m≤2N) also is arranged in order and is designated as again n according to refractive index is ascending to filter out m j(be n J+1N j), the refractive index in the used isotropic medium of prism B is respectively n i &prime; ( i = 1,2 &CenterDot; &CenterDot; &CenterDot; &CenterDot; &CenterDot; &CenterDot; N ) .
If n jThe expression wavelength is λ iThe principal refractive index n of light corresponding o light in the used negative crystal of prism Oi, it is vertical with optical axis direction to require incident light must satisfy the polarization direction so in the design before entering headprism A, if light needs earlier through revising prism A iEnter headprism A again, entering correction prism A so iMake the polarisation of light direction vertical with optical axis direction before; If n jBeing expressed as wavelength is λ iThe principal refractive index n of light corresponding e light in the used negative crystal of prism Ei, must to satisfy the polarization direction parallel with optical axis direction entering headprism A to require incident light so in the design, if light needs earlier through revising prism A iEnter headprism A again, entering correction prism A so iMake the polarisation of light direction parallel with optical axis direction before.
Supposing need be from revising prism A iGoing into to inject compositor light is n j(m I-1<j≤m i, m i〉=m I-1〉=0, i 〉=1, m 0=0, m iBe positive integer, 1≤i≤u≤N, m u≤ N, u represent last beam-splitting surface), the refractive index of supposing air is n 0
Among 1}, the headprism A relevant each angle the preferred condition that satisfies be:
1, the effect of beam-splitting surface mainly contains 2 points:
(1) image of composite part primary colours: (as figure, beam-splitting surface (bc), (df), (sr))
Figure S07136296220070126D000143
i≠h k+1,
Figure S07136296220070126D000144
i=h k+1,
s=m i+1,t=m i
Figure S07136296220070126D000145
i≤u          [24];
H wherein kRepresent k critical beam-splitting surface, it is numbered h k(i.e. h kIndividual beam-splitting surface),
U represents last beam-splitting surface, and the refractive index of air is n 0
(2) light path among the adjustment headprism A: (as figure, beam-splitting surface (gh))
Figure S07136296220070126D000146
Figure S07136296220070126D000147
i≠h k+1,
Figure S07136296220070126D000148
i=h k+1,
r=m i,m i=m i-1r≤u        ? [25];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
2,5. enter headprism A (as figure, normal incidence face (rs)) from incident direction:
Figure S07136296220070126D0001410
Wherein u represents last beam-splitting surface.
2}, on i beam-splitting surface:
n k=n j,n k<n k+1
i≠h k+1,
Figure S07136296220070126D000153
i=h k+1,
1≤k≤(m i-m i-1),m i-1<j≤m i
Figure S07136296220070126D000154
,i≤u      [27];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
3}, offset distance:
1, a kind of i beam-splitting surface of light incident of wavelength only revised prism A iAnd the distance H between i the beam-splitting surface of headprism A iPreferred satisfied:
H i>0,1≤i≤N          [28];
The correction prism A of light incident that 2, two or more wavelength is arranged iAnd the distance H between i the beam-splitting surface of headprism A I, k(H I, k0, m I-1,<j≤m i, k 〉=2, k is a positive integer), for all from revising prism A iIncident is (promptly from incident direction
Figure S07136296220070126D00015191353QIETU
Incident, 1≤i≤u, u represent last beam-splitting surface) the primary color image of light of different wave length and the offset distance of compound direction be:
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [29];
So from same correction prism A iOffset distance between two kinds of adjacent different primary color images of incident is:
Δd i,k=|d i,k+1-d i,k|,
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [30];
As Δ d I, k((Δ d during 〉=s I, k-s) 〉=0), separate in the space during each primary color image incident, and through reaching the synthetic purpose of monochrome image of many primary colours fully at space overlap after the compositor.
Before entering compositor, incident light is used to adjust each other the phase place of light when arriving exit facet (av) of each primary colours earlier by the optical path compensation device of each primary colours correspondence.
Image enters from exit facet (av) ejaculation and from the plane of incidence (zy) and turns to prism B after will synthesizing at last, penetrates from exit facet (xz) after fully reflecting surface (xy) total reflection, turns to prism B to be mainly used in the exit direction of adjusting the image after synthesizing.
Turn to prism B the angle the condition that must satisfy be:
n 0 n i &prime; < sin &theta; , 1 &le; i &le; N - - - [ 31 ] ;
The refractive index of air is n 0, example among the figure adopts the right-angle prism of a base angle ∠ xyz=∠ yxz=θ=45 °.
Fig. 5 A is the synoptic diagram according to the multi-primary color image combination synthesizer of further embodiment of this invention.
The structure of the embodiment of Fig. 5 A and Fig. 3 A are basic identical, and the key distinction is each prism A, A among the embodiment of Fig. 5 A 1, A 2, A 4Material be positive crystal, the material of prism B still is an isotropic material, and compares with Fig. 3 A, has saved prism A among Fig. 4 A 3M represents prism A, A among the figure 1, A 2, A 4Optical axis direction.Require the polarization of incident light direction must be parallel or in the design of this technical scheme of positive crystal perpendicular to above-mentioned optical axis direction.
Shown in Fig. 5 A, multi-primary color image combination synthesizer of the present invention comprises irregular polygon headprism A, is arranged at the correction prism A on each incident direction 1, A 2, A 4And turn to prism B.Alphabetical represented limit identical among the figure has identical geometric properties.Dotted line is a boost line.Among the figure, 1., 2., 4., 5. represent incident direction.The width of s ' expression primary color image.Prism A, A shown in the figure 1, A 2, A 4Building material identical, be positive crystal of the same race; The building material that turns to prism B is isotropic medium, but the refractive index of the light that the material that must guarantee to turn to prism B in visible-range shows any participation all greater than
Figure S07136296220070126D000162
).Each is provided with optical path compensator D before revising prism, and this optical path compensator D must not change light path.Headprism A is polygon and comprises a normal incidence face (rs) and a plurality of beam-splitting surface (bc), (df), (hg), (pq).Beam-splitting surface is defined as the prism facets of one of the prism A part light in can total reflection prism A.
Wherein, the incident light of injecting from normal incidence face (rs) directly vertically incides this normal incidence face (rs), and the incident light of other direction is injected correction prism A 1, A 2, A 4One of the plane of incidence and penetrate from its exit facet, incide subsequently and one of the corresponding a plurality of beam-splitting surfaces of this correction prism (bc), (df), (pq), incident light along each incident direction is synthetic in headprism A, and the exit facet (av) from headprism A penetrates at last.After this, impinge perpendicularly on the plane of incidence that turns to prism B and penetrate perpendicular to its exit facet.Wherein, the exit facet of revising prism be parallel to each other with its corresponding beam-splitting surface, for example
Figure S07136296220070126D000163
In the present embodiment, preferred satisfied following geometric condition:
1, boost line explanation:
Figure S07136296220070126D000164
Figure S07136296220070126D000165
And with
Figure S07136296220070126D000166
Intersect at a w 1,
Figure S07136296220070126D000167
And with
Figure S07136296220070126D000169
Intersect at a w 2,
Figure S07136296220070126D0001610
Figure S07136296220070126D0001611
And with
Figure S07136296220070126D0001612
Intersect at a w 3,
Figure S07136296220070126D0001613
Figure S07136296220070126D0001614
And with
Figure S07136296220070126D0001615
Intersect at a w 4,
Figure S07136296220070126D0001616
And with
Figure S07136296220070126D0001618
Intersect at a w 5
2, the seamed edge of prism A, A1, A2, A4: av is vertical with emergent light,
Figure S07136296220070126D0001619
Figure S07136296220070126D0001620
Figure S07136296220070126D0001621
Rs is perpendicular to the incident light direction from 5. incident; Ab, cd, fg, hp, qr, st, tu, uv,
Figure S07136296220070126D0001622
Figure S07136296220070126D0001623
Figure S07136296220070126D0001624
Do not require, but do not influence at prism A, A 1, A 2, A 4In light path.
3, prism A, A 1, A 2, A 4Angle:
(1) prism A: ∠ aw 1B=π-θ 1, ∠ cw 2D=π-θ 2, ∠ fw 3G=π-θ 3, ∠ hw 4P=π-θ 4,
∠qw 5r=π-θ 5
(2) prism A1: ∠ x 1y 1z 1=π-θ 1
(3) prism A 2: ∠ x 2y 2z 212=(π-θ 2)-(π-θ 1);
(4) prism A 4:
∠x 4y 4z 4=θ 1234=(π-θ 4)-{(π-θ 3)-[(π-θ 2)-(π-θ 1)]};
4, the seamed edge of prism B: yz is vertical with incident light, and xz is vertical with emergent light.
5, the angle of prism B: ∠ xyz=θ.
How below describe in detail utilizes device of the present invention to realize the purpose of composograph of the present invention.
Suppose to show that required number of primary colors is N, these optical wavelength are respectively λ i(i=1,2 ... N), at prism A, A 1, A 2, A 4The o light in the used positive crystal and the principal refractive index of e light are respectively n OiAnd n Ei(i=1,2 ... N) (n in positive crystal Oi<n Ei), so the total 2N kind incident mode (polarization direction is perpendicular or parallel in optical axis) of the demonstration of N kind primary colours guarantees under the condition of N kind display primary that (the kind mode of N≤m≤2N) also is arranged in order and is designated as again n according to refractive index is ascending to filter out m j(be n J+1N j); Refractive index in the used isotropic medium of prism B is respectively n i &prime; ( i = 1,2 &CenterDot; &CenterDot; &CenterDot; &CenterDot; &CenterDot; &CenterDot; N ) .
If n jThe expression wavelength is λ iThe principal refractive index n of light corresponding o light in the used positive crystal of prism Oi, it is vertical with optical axis direction to require incident light must satisfy the polarization direction so in the design before entering headprism A, if light needs earlier through revising prism A iEnter headprism A again, entering correction prism A so iMake the polarisation of light direction vertical with optical axis direction before; If n jBeing expressed as wavelength is λ iThe principal refractive index n of light corresponding e light in the used positive crystal of prism Ei, must to satisfy the polarization direction parallel with optical axis direction entering headprism A to require incident light so in the design, if light needs earlier through revising prism A iEnter headprism A again, entering correction prism A so iMake the polarisation of light direction parallel with optical axis direction before.
Supposing need be from revising prism A iThe light of going into to inject compositor is n j(m I-1<j≤m i, m i〉=m I-1〉=0, i 〉=1, m 0=0, m iBe positive integer, 1≤i≤u≤N, m u≤ N, u represent last beam-splitting surface), the refractive index of supposing air is n 0
Among 1}, the prism A relevant each angle the preferred condition that satisfies be:
1, the effect of beam-splitting surface mainly contains 2 points:
(1) image of composite part primary colours: (as figure, beam-splitting surface (bc), (df), (pq))
Figure S07136296220070126D000172
Figure S07136296220070126D000181
s=m i+1,t=m i,i≤u [32];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
(2) light path among the adjustment headprism A: (as figure, beam-splitting surface (gh))
Figure S07136296220070126D000182
Figure S07136296220070126D000183
r=m i,m i=m i-1,r≤u [33];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
2,5. enter headprism A (as figure, normal incidence face (rs)) from incident direction:
Figure S07136296220070126D000184
Wherein u represents last beam-splitting surface.
2}, on i beam-splitting surface:
n k=n j,n k<n k+1
Figure S07136296220070126D000186
1≤k≤(m i-m i-1),m i-1<j≤m i,i≤u [35];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
3}, offset distance:
1, i the beam-splitting surface that has only a kind of light incident of wavelength revised prism A iAnd the distance H between i the beam-splitting surface of headprism A iPreferred satisfied:
Hi>0,1≤i≤N [36];
The correction prism A of light incident that 2, two or more wavelength is arranged iAnd the distance H between i the beam-splitting surface of headprism A I, k(H I, k0, m I-1<j≤m i, k 〉=2, k is a positive integer), for all from revising prism A iThe primary color image of the light of the different wave length of incident (promptly from 1. incident of incident direction, 1≤i≤u, u represent last beam-splitting surface) and the offset distance of compound direction are:
Figure S07136296220070126D000187
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [37];
So from same correction prism A iOffset distance between two kinds of adjacent different primary color images of incident is:
Δd i,k=|d i,k+1-d i,k|,
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [38];
As Δ d I, k((Δ d during 〉=s I, k-s) 〉=0), separate in the space during each primary color image incident, and through reaching the synthetic purpose of monochrome image of many primary colours fully at space overlap after the compositor.
Before entering compositor, incident light is used to adjust each other the phase place of light when arriving exit facet (av) of each primary colours earlier by the optical path compensation device of each primary colours correspondence.
Image enters from exit facet (av) ejaculation and from the plane of incidence (zy) and turns to prism B after will synthesizing at last, penetrates from exit facet (xz) after fully reflecting surface (xy) total reflection, turns to prism B to be mainly used in the exit direction of adjusting the image after synthesizing.
Turn to prism B the angle the condition that must satisfy be:
n 0 n i &prime; < sin &theta; , 1 &le; i &le; N - - - [ 39 ] ;
The refractive index of air is n 0, example among the figure adopts the right-angle prism of a base angle ∠ xyz=∠ yxz=θ=45 °.
In addition, for Fig. 5 A by two prism A 4, the light of two kinds of primary colours is parallel respectively to incide two prism A 4Situation can be applied to equally respectively revise prism among other embodiments of the invention and other embodiment.
Fig. 5 B is the synoptic diagram according to the multi-primary color image combination synthesizer of further embodiment of this invention.
Fig. 5 B and Fig. 5 A have many something in common, and identical among the label of these same sections and Fig. 3 A also represented identical implication, so its description can be with reference to the situation among above-mentioned Fig. 5 A.Among Fig. 5 B, the 4th beam-splitting surface is (sr) ((sr) is the normal incidence face in the embodiment of Fig. 4 A), and the normal incidence face is (pq) ((pq) is the 4th beam-splitting surface in the embodiment of Fig. 4 A).In the present embodiment, if a back beam-splitting surface of a beam-splitting surface is different with its sense of rotation with respect to last beam-splitting surface with respect to its sense of rotation, claim that so this beam-splitting surface is critical beam-splitting surface.(first beam-splitting surface and last except), for example beam-splitting surface (gh) among Fig. 5 B.
The difference of embodiment shown in embodiment shown in Fig. 5 B and Fig. 5 A mainly is: among the embodiment of Fig. 5 A, all beam-splitting surfaces are with respect to the sense of rotation of last beam-splitting surface identical (except first beam-splitting surface); And among the embodiment of Fig. 5 B, a back beam-splitting surface of at least one beam-splitting surface is with respect to its sense of rotation different with its sense of rotation with respect to last beam-splitting surface (except first beam-splitting surface and last beam-splitting surface), such as beam-splitting surface (gh).
In the embodiment shown in Fig. 5 B, along first direction 1., 2. identical among situation and Fig. 5 A of incident of second direction.4. in the situation of incident, there is being the parallel light of two kinds of primary colours to incide same correction prism A along direction 4The parallel light of this multiple primary colours incides same correction prism A iThe situation that incides the i beam-splitting surface again can be applicable to respectively revise prism among other embodiments of the invention and other embodiment equally.In addition, in the present embodiment, along direction 4. the light of incident through revising prism A 4The beam-splitting surface that enters is (sr).And along direction 5. the beam-splitting surface of the direct vertical incidence of light of incident be (pq), i.e. normal incidence face.
The synthetic number of primary colors of multi-primary color image that only can realize with a headprism in the embodiment of Fig. 5 A is limited; And the number of primary colors that the multi-primary color image that only can realize with a headprism in the embodiment of Fig. 5 B synthesizes is far more than the embodiment of Fig. 5 A.
In the present embodiment, the preferred satisfied following geometric condition of device:
1, boost line explanation:
Figure S07136296220070126D000201
And with
Figure S07136296220070126D000202
Intersect at a w 1,
Figure S07136296220070126D000203
And with
Figure S07136296220070126D000204
Intersect at a w 2,
Figure S07136296220070126D000205
And with
Figure S07136296220070126D000206
Intersect at a w 3,
Figure S07136296220070126D000207
Figure S07136296220070126D000208
And with
Figure S07136296220070126D000209
Intersect at a w 5
2, prism A, A 1, A 2, A 4Seamed edge: av is vertical with emergent light,
Figure S07136296220070126D0002010
Figure S07136296220070126D0002011
Pq is perpendicular to the incident light direction from 5. incident; Ab, cd, fg, hp, qr, st, tu, uv, Do not require, but do not influence at prism A, A 1, A 2, A 4In light path.
3, prism A, A 1, A 2, A 4Angle:
(1) prism ends: ∠ aw 1B=π-θ 1, ∠ cw 2D=π-θ 2, ∠ fw 3G=π-θ 3, ∠ rsw 4=π-θ 4,
∠qw 5r=π-θ 5
(2) prism A 1: ∠ x 1y 1z 1=π-θ 1
(3) prism A 2: ∠ x 2y 2z 212(π-θ 2)-(π-θ 1)
(4) prism A 4:
∠x 4y 4z 4=π-θ 1234=(π-θ 3)-[(π-θ 2)-(π-θ 1)]-θ 4
4, the seamed edge of prism B: yz is vertical with incident light, and xz is vertical with emergent light.
5, the angle of prism B: ∠ xyz=θ.
How below describe in detail utilizes device of the present invention to realize the purpose of composograph of the present invention.
Suppose to show that required number of primary colors is N, these optical wavelength are respectively λ i(i=1,2 ... N), at prism A, A 1, A 2, A 4The o light in the used positive crystal and the principal refractive index of e light are respectively n OiAnd n Ei(i=1,2 ... N) (n in positive crystal Oi<n Ei), so the total 2N kind incident mode (polarization direction is perpendicular or parallel in optical axis) of the demonstration of N kind primary colours guarantees under the condition of N kind display primary that (the kind mode of N≤m≤2N) also is arranged in order and is designated as again, n according to refractive index is ascending to filter out m j(be n J+1N j), the refractive index in the used isotropic medium of prism B is respectively n i &prime; ( i = 1,2 &CenterDot; &CenterDot; &CenterDot; &CenterDot; &CenterDot; &CenterDot; N ) .
If n j, the expression wavelength is λ iThe principal refractive index of light corresponding o light in the used negative crystal of prism, n Oi, it is vertical with optical axis direction to require incident light must satisfy the polarization direction so in the design before entering headprism A, if light needs earlier through revising prism A iEnter headprism A again, entering correction prism A so iMake the polarisation of light direction vertical with optical axis direction before; If n jBeing expressed as wavelength is λ iThe principal refractive index n of light corresponding e light in the used negative crystal of prism Ei, must to satisfy the polarization direction parallel with optical axis direction entering headprism A to require incident light so in the design, if light needs earlier through revising prism A iEnter headprism A again, entering correction prism A so iMake the polarisation of light direction parallel with optical axis direction before.
Supposing need be from revising prism A iGoing into to inject compositor light is n j(m I-1<j≤m i, m i〉=m I-1〉=0, i 〉=1, m 0=0, m iBe positive integer, 1≤i≤u≤N, m u≤ N, u represent last beam-splitting surface), the refractive index of supposing air is n 0
Among 1}, the headprism A relevant each angle the preferred condition that satisfies be:
1, the effect of beam-splitting surface mainly contains 2 points:
(1) image of composite part primary colours: (as figure, beam-splitting surface (bc), (df), (sr))
Figure S07136296220070126D000211
Figure S07136296220070126D000212
i≠h k+1,
Figure S07136296220070126D000213
i=h k+1,
s=m i+1,t=m ii≤u [40];
H wherein kRepresent k critical beam-splitting surface, it is numbered h k(i.e. h kIndividual beam-splitting surface),
U represents last beam-splitting surface, and the refractive index of air is n 0
(2) light path among the adjustment headprism A: (as figure, beam-splitting surface (gh))
Figure S07136296220070126D000215
Figure S07136296220070126D000216
i≠h k+1,
Figure S07136296220070126D000217
i=h k+1,
r=m i,m i=m i-1
Figure S07136296220070126D000218
r≤u [41];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
2,5. enter headprism A (as figure, normal incidence face (rs)) from incident direction:
Figure S07136296220070126D000219
Wherein u represents last beam-splitting surface.
2}, on i beam-splitting surface:
Figure S07136296220070126D0002110
n k=n j,nk<n k+1
Figure S07136296220070126D0002111
i≠h k+1,
Figure S07136296220070126D0002112
i=h k+1,
1≤k≤(m i-m i-1),m i-1<j≤m i
Figure S07136296220070126D000221
i≤u [43];
Wherein u represents last beam-splitting surface, and the refractive index of air is n 0
3}, offset distance:
1, a kind of i beam-splitting surface of light incident of wavelength only revised prism A iAnd the distance H between i the beam-splitting surface of headprism A iPreferred satisfied:
H i>0,1≤i≤N [44];
The correction prism A of light incident that 2, two or more wavelength is arranged iAnd the distance H between i the beam-splitting surface of headprism A I, k(H I, k0, m I-1<j≤m i, k 〉=2, k is a positive integer), for all from revising prism A iIncident is (promptly from incident direction
Figure S07136296220070126D00022194225QIETU
Incident, 1≤i≤u, u represent last beam-splitting surface) the primary color image of light of different wave length and the offset distance of compound direction be:
Figure S07136296220070126D000222
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [45];
So from same correction prism A iOffset distance between two kinds of adjacent different primary color images of incident is:
Δd i,k=|d i,k+1-d i,k|,
1≤i≤N,1≤k<(k+1)≤(m i-m i-1) [46];
As Δ d I, k((Δ d during 〉=s I, k-s) 〉=0), separate in the space during each primary color image incident, and through reaching the synthetic purpose of monochrome image of many primary colours fully at space overlap after the compositor.
Before entering compositor, incident light is used to adjust each other the phase place of light when arriving exit facet (av) of each primary colours earlier by the optical path compensation device of each primary colours correspondence.
Image enters from exit facet (av) ejaculation and from the plane of incidence (zy) and turns to prism B after will synthesizing at last, penetrates from exit facet (xz) after fully reflecting surface (xy) total reflection, turns to prism B to be mainly used in the exit direction of adjusting the image after synthesizing.
Turn to prism B the angle the condition that must satisfy be:
n 0 n i &prime; < sin &theta; , 1 &le; i &le; N - - - [ 47 ] ;
The refractive index of air is n 0, example among the figure adopts the right-angle prism of a base angle ∠ xyz=∠ yxz=θ=45 °.
Fig. 6 is the synoptic diagram according to the multi-primary color image combination synthesizer of fourth embodiment of the invention.The headprism A of this compositor has three beam-splitting surfaces (bc), (df), (gh), and its principle and above all embodiment are similar.Its preferred geometric condition is:
1, boost line explanation:
Figure S07136296220070126D000231
Figure S07136296220070126D000232
And with Intersect at a w 1
Figure S07136296220070126D000234
And with
Figure S07136296220070126D000236
Intersect at a w 2
Figure S07136296220070126D000237
Figure S07136296220070126D000238
And with
Figure S07136296220070126D000239
Intersect at a w 3
Figure S07136296220070126D0002310
Figure S07136296220070126D0002311
And with
Figure S07136296220070126D0002312
Intersect at a w 4
2, prism A, A 1, A 2, A 3Seamed edge: av is vertical with emergent light,
Figure S07136296220070126D0002313
Figure S07136296220070126D0002314
Figure S07136296220070126D0002315
Rp perpendicular to from the incident light direction ab of 4. incident, cd, fg, hp, rs, st, tu, uv,
Figure S07136296220070126D0002316
Figure S07136296220070126D0002317
Figure S07136296220070126D0002318
Do not require, but do not influence at prism A, A 1, A 2, A 3In light path.
3, prism A, A 1, A 2, A 3Angle:
(1) prism A: ∠ aw 1B=π-θ 1, ∠ cw 2D=π-θ 2, ∠ fw 3G=π-θ 3, ∠ hw 4P=π-θ 4
(2) prism A 1: ∠ x 1y 1z 1=π-θ 1
(3) prism A 2: ∠ x 2y 2z 212=(π-θ 2)-(π-θ 1);
(4) prism A 3: ∠ x 3y 3z 3=π-θ 31+ θ 2=(π-θ 3)-[(π-θ 2)-(π-θ 1)];
4, the seamed edge of prism B: yz is vertical with incident light, and xz is vertical with emergent light.
5, the angle of prism B: ∠ xyz=θ.
Other content and four beam-splitting surfaces identical, difference is: beam-splitting surface is (bc), (df), (gh); The normal incidence face is (pr).
The material of present embodiment can be isotropic material, negative crystal or positive crystal, and is identical with content among the above corresponding embodiment at the condition of these materials.
Fig. 7 is the synoptic diagram according to the multi-primary color image combination synthesizer of fifth embodiment of the invention.The headprism A of this compositor has five beam-splitting surfaces (bc), (df), (gh), (rs), (c 1Q), its principle and above all embodiment are similar.Its preferred geometric condition is:
1, boost line explanation:
Figure S07136296220070126D0002319
Figure S07136296220070126D0002320
And with
Figure S07136296220070126D0002321
Intersect at a w 1
Figure S07136296220070126D0002322
Figure S07136296220070126D0002323
And with
Figure S07136296220070126D0002324
Intersect at a w 2
Figure S07136296220070126D0002325
And with Intersect at a w 3
Figure S07136296220070126D0002328
Figure S07136296220070126D0002329
Figure S07136296220070126D0002330
Figure S07136296220070126D0002331
And with
Figure S07136296220070126D0002332
Intersect at a w 5
Figure S07136296220070126D0002333
Figure S07136296220070126D0002334
And with
Figure S07136296220070126D0002335
Intersect at a w 6
2, prism A, A 1, A 2, A 4, A 5Seamed edge: av is vertical with emergent light,
Figure S07136296220070126D0002337
Figure S07136296220070126D0002338
Figure S07136296220070126D0002339
Figure S07136296220070126D0002340
Perpendicular to incident light direction from 6. incident; Ab, cd, fg, hp, pa ', a ' b ',
Figure S07136296220070126D0002341
Qr, st, tu, uv,
Figure S07136296220070126D0002342
Figure S07136296220070126D0002343
Figure S07136296220070126D0002345
Do not require, but do not influence at prism A, A 1, A 2, A 4, A 5In light path.
3, prism A, A 1, A 2, A 4, A 5Angle:
(1) prism A: ∠ aw 1B=π-θ 1, ∠ cw 2D=π-θ 2, ∠ fw 3G=π-θ 3, ∠ rsw 4=π-θ 4,
∠qw 5r=π-θ 5,∠r 1w 6c 1=π-θ 6
(2) prism A 1: ∠ x 1y 1z 1=π-θ 1
(3) prism A 2: ∠ x 2y 2z 212=(π-θ 2)-(π-θ 1);
(4) prism A 4: ∠ x 4y 4z 4=π-θ 1+ θ 234=(π-θ 3)-[(π-θ 2)-(π-θ 1)]-θ 4
(5) prism A 5:
∠x 5y 5z 5=θ 12345=(π-θ 5)-{(π-θ 3)-[(π-θ 2)-(π-θ 1)]-θ 4};
4, the seamed edge of prism B: yz is vertical with incident light, and xz is vertical with emergent light.
5, the angle of prism B: ∠ xyz=θ.
Other content and four beam-splitting surfaces identical, difference is: beam-splitting surface is (bc), (df), (gh), (c 1Q); The normal incidence face is (b ' r 1); Critical beam-splitting surface is (rs).
The material of present embodiment can be isotropic material, negative crystal or positive crystal, and is identical with content among the above corresponding embodiment at the condition of these materials.
It should be noted that the relevant technologies feature among above each embodiment is not to be intended to limit ground to limit embodiments of the present invention.Be appreciated that under the prerequisite that realizes image combination purpose of the present invention and can select to be used according to general optics general knowledge the technical characterictic in the various embodiments described above.For example, 4. used on two correction prism A4 to come respectively light in direction among above Fig. 3 A embodiment by a kind of different base colors, only use a correction prism A4 to come light and in the embodiment of Fig. 3 B, 4. go up by two kinds of different base colors in direction, but obviously these two kinds of technical schemes can both realize essentially identical technique effect, and these two kinds of technical schemes are of equal value.In addition, these two kinds of correction prism schemes of 4. going up of above-mentioned direction can be used on other direction equally.Moreover, as mentioned above, under the prerequisite that can realize purpose of the present invention (being that image is synthetic), but the arbitrary beam-splitting surface among any embodiment of the present invention is the corresponding correction prism with it not like that of the beam-splitting surface (gh) among the embodiment of image pattern 3B all, promptly do not utilize this beam-splitting surface to carry out incident, but pass through the light of other beam-splitting surface incident different base colors.The described above-mentioned all embodiment of instructions part of the present invention just provide the special case of using device of the present invention to realize the image combination in every way, therefore can realize that wherein the technical characterictic of similar or identical function obviously can exchange or accept or reject according to common practise.
The structure and the embodiment of multi-primary color image combination synthesizer of the present invention have more than been described.But be appreciated that many other embodiment also within the scope of the invention.Though only be used with a headprism and a plurality of correction prism in for example above each scheme, it is synthetic that a plurality of headprisms also capable of being combined carry out image.For example can synthesize with other light beam being input to another headprism from the normal incidence face of another headprism again by the synthetic light beam of a headprism.The realization of this mode is that the personnel of described technical field are conspicuous.
Those skilled in the art can be obvious, can carry out various modifications and variations and without departing from the spirit and scope of the present invention to above-mentioned exemplary embodiment of the present invention.Therefore, be intended to that the present invention is covered and drop in appended claims and the equivalence techniques scheme scope thereof to modification of the present invention and modification.

Claims (4)

1. a multi-primary color image combination synthesizer is characterized in that, comprise headprism and be arranged on each incident direction at least one revise prism,
Described headprism is polygon and comprises a normal incidence face, a plurality of beam-splitting surface and an exit facet, the light that described headprism is used for going into to inject headprism from described normal incidence face and described beam-splitting surface forms the light path from described normal incidence face to described exit facet, total reflection takes place at each beam-splitting surface place in described light path
Described correction prism all has a plane of incidence and an exit facet,
The incident light of injecting from the normal incidence face directly vertically incides described normal incidence face, the incident light of other incident direction is then injected the plane of incidence of a correction prism in described at least one correction prism and is penetrated from its exit facet, incide subsequently and the corresponding beam-splitting surface of this correction prism, the incident light of each incident direction described light path along described headprism in described headprism is synthetic, exit facet from described headprism penetrates at last
The exit facet of wherein revising prism be parallel to each other with the corresponding beam-splitting surface of this correction prism.
2. multi-primary color image combination synthesizer as claimed in claim 1 is characterized in that, the size of the angle of the described plane of incidence of respectively revising prism and exit facet is determined according to the angle between each corresponding beam-splitting surface of described headprism.
3. multi-primary color image combination synthesizer as claimed in claim 1 is characterized in that, the headprism of described multi-primary color image combination synthesizer and at least one are revised prism and be made of in isotropic material, negative crystal and the positive crystal any.
4. multi-primary color image combination synthesizer as claimed in claim 1 is characterized in that, also comprises turning to prism before the exit facet that is arranged at described headprism.
CN2007100362962A 2007-01-09 2007-01-09 Multi-primary color image combination synthesizer Active CN101221289B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN2007100362962A CN101221289B (en) 2007-01-09 2007-01-09 Multi-primary color image combination synthesizer

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN2007100362962A CN101221289B (en) 2007-01-09 2007-01-09 Multi-primary color image combination synthesizer

Publications (2)

Publication Number Publication Date
CN101221289A CN101221289A (en) 2008-07-16
CN101221289B true CN101221289B (en) 2010-11-17

Family

ID=39631233

Family Applications (1)

Application Number Title Priority Date Filing Date
CN2007100362962A Active CN101221289B (en) 2007-01-09 2007-01-09 Multi-primary color image combination synthesizer

Country Status (1)

Country Link
CN (1) CN101221289B (en)

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112909725B (en) * 2021-01-13 2022-05-20 华中科技大学 Star-reflection-based blue light semiconductor laser wavelength beam combining device and method

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN2289254Y (en) * 1997-01-31 1998-08-26 中国大恒公司 Colour light splitting and synthetic device for combined prism
CN200986623Y (en) * 2007-01-09 2007-12-05 程思洋 Multi-primary color image combined synthesizer

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN2289254Y (en) * 1997-01-31 1998-08-26 中国大恒公司 Colour light splitting and synthetic device for combined prism
CN200986623Y (en) * 2007-01-09 2007-12-05 程思洋 Multi-primary color image combined synthesizer

Also Published As

Publication number Publication date
CN101221289A (en) 2008-07-16

Similar Documents

Publication Publication Date Title
KR102534128B1 (en) Method and system for large field of view display with scanning reflector
US6899430B2 (en) Color imaging systems and methods
US6961181B2 (en) Compensated color management systems and methods
EP0764289B1 (en) A subtractive color liquid crystal display utilizing circular notch polarizers
US6704065B1 (en) Optical system for producing a modulated color image
EP0359461A2 (en) Optical element and system
US6561652B1 (en) Optical assembly for reflective light valves
WO2010116702A1 (en) Flat lighting device and liquid crystal display device using same
US6678015B2 (en) Color separating/synthesizing apparatus
CN102084283A (en) Optical element and color combiner
JP2001318426A (en) Liquid crystal projector
CN102667546A (en) Phase-compensated thin-film beam combiner
KR20070003794A (en) Non-absorbing polarization color filter and liquid crystal display incorporating the same
CN102272659A (en) Polarization converting color combiner
CN112654900A (en) Optical device comprising multilayer waveguide
US6793344B2 (en) Optical systems for liquid crystal display projectors
JP2002544556A (en) Optical system for forming a modulated color image
CN101221289B (en) Multi-primary color image combination synthesizer
CN200986623Y (en) Multi-primary color image combined synthesizer
US20020089679A1 (en) Color separating/synthesizing apparatus
CN201060326Y (en) Multi-primary color image superimposer
US5829852A (en) Liquid crystal projector having improved color uniformity
CN101206309B (en) Multi-primary-color image synthesizer
CN101311773B (en) Multi- elementary color image superimposer
WO2007129266A2 (en) Bi-directional use of waveguides

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
C14 Grant of patent or utility model
GR01 Patent grant
EE01 Entry into force of recordation of patent licensing contract

Application publication date: 20080716

Assignee: XIAMEN CHAOXUAN OPTOELECTRONICS TECHNOLOGY CO., LTD.

Assignor: Cheng Siyang

Contract record no.: 2012350000131

Denomination of invention: Multi-primary color image combination synthesizer

Granted publication date: 20101117

License type: Exclusive License

Record date: 20121107

LICC Enforcement, change and cancellation of record of contracts on the licence for exploitation of a patent or utility model
C41 Transfer of patent application or patent right or utility model
TR01 Transfer of patent right

Effective date of registration: 20160718

Address after: View of the road Xiamen city Fujian province 361008 Software Park Siming District No. 22 building 501 room 5

Patentee after: XIAMEN CHAOXUAN OPTOELECTRONICS TECHNOLOGY CO., LTD.

Address before: 200041, room 288, 805 Fengyang Road, Shanghai, Huangpu District

Patentee before: Cheng Siyang

TR01 Transfer of patent right
TR01 Transfer of patent right

Effective date of registration: 20201210

Address after: Room 609a, block B, No.178 Xinfeng Road, Huizhi space, Xiamen Torch hi tech Zone, Xiamen, Fujian Province

Patentee after: Guangchang (Xiamen) Technology Co.,Ltd.

Address before: Room 501, 5 / F, 22 guanri Road, software park, Siming District, Xiamen City, Fujian Province

Patentee before: XIAMEN CHAOXUAN PHOTOELECTRIC TECHNOLOGY Co.,Ltd.