Partially transparent and partially retroreflective optical component with planar-symmetrical deviation
By arranging micro-recesses in distinct retroreflective bands within the optical component, the issues of reduced transmission and shadowing are addressed, resulting in improved retroreflective efficiency and planar-symmetric light convergence.
Patent Information
- Authority / Receiving Office
- FR · FR
- Patent Type
- Applications
- Current Assignee / Owner
- COMMISSARIAT A LENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVES
- Filing Date
- 2024-10-28
- Publication Date
- 2026-05-01
AI Technical Summary
Existing partially transparent and partially retroreflective optical components do not efficiently converge light rays according to a planar symmetry, leading to issues such as reduced transmission efficiency and shadowing effects due to the orientation of micro-recesses.
The optical component is designed with micro-recesses arranged in distinct retroreflective bands separated by transparent longitudinal portions, oriented along a transverse axis, and configured to minimize shadowing by adjusting the spacing and thickness of these bands to optimize transmission and reflection efficiency.
This configuration enhances the retroreflective efficiency and transmission efficiency, reducing shadowing effects and improving the performance of imaging systems by achieving planar-symmetric light convergence.
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Abstract
Description
Title of the invention: Partially transparent and partially retroreflective optical component with planar-symmetrical deviation. Technical field
[0001] The field of the invention is that of partially transparent and partially retroreflective optical components having micro-recesses in the shape of a truncated pyramid. It finds application in imaging, in particular in float imaging. PREVIOUS STATE OF THE ART
[0002] Partially transparent and partially retroreflective optical components are known. Such an optical component is substantially planar and comprises a first transparent layer, one face of which is structured to form cube-shaped micro-recesses. A second transparent layer can be attached to the micro-structured face of the first layer by means of a transparent adhesive. The retroreflective micro-recesses are adapted to retroreflect the light incident on the second transparent layer. Each is surrounded by a transparent portion so that the incident light is transmitted (with refraction) through the optical component without retroreflection.
[0003] This optical component can be used as a display screen, as for example in the floating imaging system described in document WO 2018 / 069625 A1, or as an improved windshield as described in document EP 3 141 952 A1. Such an optical component is then adapted to retroreflect the light from an image to be displayed, and to transmit the opposite light coming from the scene.
[0004] Note that the retroreflective micro-recesses in the corner of the cube can have the shape of a truncated pyramid, where the retroreflective trihedron is formed by the apex face of the pyramid and by two of its lateral faces. These three faces are perpendicular to each other, and the apex face is also parallel to the base of the pyramid and to the mean plane of the optical component. Such a configuration is described in particular in document WO 2021 / 104739 AL
[0005] However, there is a need to improve at least some aspects of such an optical component. Description of the invention
[0006] The invention aims to provide a partially transparent and partially retroreflective optical component configured to converge light rays according to a planar symmetry with respect to a principal plane in which the optical component extends, and this with an optimized transmission efficiency.
[0007] For this purpose, the object of the invention is an optical component extending in a principal plane, and having an entrance face and an opposite exit face, planar and parallel to the principal plane, comprising: a first transparent layer, having the entrance face, and a second opposite face, planar and parallel to the principal plane, and having retroreflective micro-recesses, in the shape of a truncated pyramid, extending from the second face; and a second transparent layer, having the exit face, and extending on and in contact with the second face of the first layer and the micro-recesses.
[0008] According to the invention, the micro-recesses are arranged in distinct retroreflective bands parallel to each other, the retroreflective bands being separated in pairs by a transparent longitudinal portion not having micro-recesses; the micro-recesses of the same retroreflective band being placed side by side and oriented along a transverse axis of the retroreflective band.
[0009] Some preferred but not limiting aspects of this optical component are the following.
[0010] The micro-recesses of the same strip can all have the same dimensions.
[0011] The micro-recesses can each have a square apex face of the truncated pyramid and a square base, parallel to the apex face and coplanar with the second face of the first layer.
[0012] The micro-recesses can each have a trihedron formed by the apex face and two lateral faces orthogonal to each other and to the apex face.
[0013] The micro-recesses can each have a first diagonal formed from a point common to the trihedron and the opposite point of the base, this diagonal being substantially oriented along the transverse axis of the retroreflective strip.
[0014] In the same retroreflective strip, the micro-recesses can be arranged periodically according to a step substantially equal to the dimension of a diagonal of the base orthogonal to the first diagonal.
[0015] The optical component may include a reflective layer that covers the internal surface of the micro-recesses as well as an intermediate surface of the second face of the first layer located between two adjacent micro-recesses.
[0016] The retroreflective strips can be straight or concentric.
[0017] Each retroreflective strip may include, along its transverse axis, between 2 and 15 micro-recesses.
[0018] The entrance face can be designed to be illuminated by a light beam with a non-zero mean angle of incidence α₀, which is refracted to form a light beam having a non-zero angle αᵢ with respect to an axis orthogonal to the principal plane. Furthermore, the retroreflective strips can be arranged side by side at a spacing of Lₚ, the second layer then having a thickness D; the values D and Lₚ being chosen to satisfy the relation: n → Lₚ.... .....Lₚ...... 4xtan«] 2xtan«!
[0019] Two adjacent micro-recesses of the same retroreflective strip can be spaced apart from each other by a distance not exceeding one-fifth of their depth and preferably not exceeding one-tenth of their depth.
[0020] The invention also relates to a floating imaging system, comprising: an image formation component, adapted to provide an image; and the optical component according to any one of the preceding characteristics, its input face being oriented towards the image formation component and disposed in an inclined manner to an optical axis of the latter.
[0021] The floating imaging system may include an absorbing structure located opposite the input face of the optical component so as to receive the light beams from the image-forming component and reflected by the input face.
[0022] The image formation component may include: an image projector, comprising an image source and an optical system; and a transparent diffuser, located in the image plane of the optical system, adapted to transmit and diffuse the image received from the projector. Brief description of the drawings
[0023] Other aspects, objects, advantages and features of the invention will become more apparent upon reading the following detailed description of preferred embodiments thereof, given by way of non-limiting example, and made with reference to the accompanying drawings in which:
[0024] [Fig.1A] is a schematic and partial cross-sectional view of an optical component according to an example of the prior art;
[0025] [Fig.1B] is a perspective view of a micro-recess in the shape of a truncated pyramid of the optical component of [Fig.1A];
[0026] [Fig.2] is a schematic and partial cross-sectional view of the optical component of [Fig.1A], illustrating the cast shadow;
[0027] [Fig.3A] is a schematic and partial cross-sectional view of an optical component according to one embodiment;
[0028] [Fig.3B] is a cross-sectional view of micro-recesses of the optical component of [Fig.3A];
[0029] [Fig.3C] is a top view of micro-recesses of the optical component of [Fig.3A];
[0030] [Fig.4A] is a schematic and partial top view of retroreflective strips of an optical component according to one embodiment;
[0031] [Fig.4B] is a schematic and partial perspective view of an optical component having retroreflective bands similar to those of [Fig.4A];
[0032] [Fig.5A] is a schematic and partial top view of retroreflective strips of an optical component according to another embodiment;
[0033] [Fig.5B] is a schematic and partial perspective view of an optical component having retroreflective bands similar to those of [Fig.5A];
[0034] [Fig.6] is a schematic and partial cross-sectional view of a floating imaging system comprising an optical component according to one embodiment;
[0035] Figures 7A and 7B illustrate an angular dependence of a retroreflection efficiency q in the case ([Fig.7A]) of an optical component similar to that of [Fig.1A] and in the case ([Fig.7B]) of an optical component similar to that of [Fig.3A].
[0036] DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS
[0037] In the figures and throughout the description, the same reference numerals represent identical or similar elements. Furthermore, the various elements are not drawn to scale in order to enhance the clarity of the figures. Moreover, the different embodiments and variants are not mutually exclusive and may be combined. Unless otherwise indicated, the terms "approximately," "about," and "in the order of" mean within 10%, and preferably within 5%. Furthermore, the terms "between ... and ..." and equivalents mean that the limits are inclusive, unless otherwise stated.
[0038] Figures IA and IB illustrate an example of an optical component 10 which differs from the prior art examples mentioned above in that the truncated pyramid-shaped micro-recesses 13 are oriented towards the output face 12b and not, as in the prior art, towards the input face 1la. The purpose here is to introduce the issue of the cast shadow highlighted later in connection with [Fig.2].
[0039] Here and for the remainder of the description, a three-dimensional orthogonal XYZ direct frame is defined, where the X and Z axes form a plane parallel to the mean plane (principal plane) of the optical component 10, and where the Y axis is oriented from the input face to the output face 12b. In the remainder of the description, the terms "front" and "rear" are understood to be relative to an orientation along the +Y direction.
[0040] The optical component 10 has two faces opposite each other, flat and parallel to the principal plane, called the input face 1a and the output face 12b. It is intended to receive incident light rays through the entrance face 1a (input diopter) and to transmit them through the exit face 12b (output diopter). It is formed of two transparent layers 11, 12 (which can be plates, films, sheets, etc.) fixed to each other. The principal plane can be the plane located equidistant between the entrance face 1a and the exit face 12b, or even the plane located at the rear face 11b of the first layer 11.
[0041] The first layer 11 comprises the entrance face 1la and an opposing rear face 11b. These faces are flat and parallel to each other. It is made of a material transparent to the transmitted light. This may be a plastic material, such as polymethyl methacrylate. As previously stated, the entrance face lia forms the entrance diopter of the optical component. The entrance face 1la may be coated with a reflection-minimizing layer RL
[0042] Micro-recesses 13 in the shape of a truncated pyramid are formed in the layer 11 from the rear face 11b. They form non-through notches made in the layer 11, and have an inner surface oriented towards the rear face 11b and therefore towards the second layer 12. They are filled with the transparent glue, or with a filling material having the same refractive index as the layers 11, 12 and the glue.
[0043] The micro-recesses 13 are identical or similar to those described in document WO 2021 / 104739 Al and in the document by Martinez et al. entitled Optimized Design and Manufacturing Process of Diffuse Micro Corner Cubes for Head Up Projection Display Applications, Proceedings Volume 12443, Advances in Display Technologies XIII; 1244301 (2023).
[0044] The micro-recesses 13 are retroreflective in the sense that the reflected rays have a direction of reflection parallel to the direction of incidence. They are therefore reflective, either by total internal reflection or by metallic reflection. In the case of total internal reflection, the refractive index of the medium filling the micro-recess 13 (and possibly that of layer 12) is greater than that of layer 11. Furthermore, in the case of metallic reflection, the inner face of each micro-recess is covered by a thin reflective layer (not shown), made, for example, of at least one metallic material. This thin reflective layer is present only on the inner surface of the micro-recesses.
[0045] As illustrated in detail in [Fig. 1B], each micro-recess 13 has a truncated pyramid shape (which is a particular shape of a cube corner) with a quadrilateral base. The base of the truncated pyramid is a quadrilateral EFGH, and the apex face of the truncated pyramid, i.e., the bottom of the micro-recess, is the quadrilateral ABCD. The base EFGH is coplanar with the back face 11b of the layer 11. The bottom ABCD is parallel to the main plane of the optical component 10. The inner surface of the micro-recess 13 is thus formed on the one hand by the four lateral walls which join the base to the bottom, and on the other hand by the bottom ABCD.
[0046] The lateral walls are ABFE, ADHE, CDHG, and BCGF. Here, the lateral walls ABFE and ADHE are substantially orthogonal to each other and to the base ABCD (and therefore to the principal plane P). Point A is common to these lateral walls ABFE and ADHE and to the base ABCD. These three surfaces thus form a trirectangular trihedron, also called a cube corner, which is designed to ensure the retroreflection of incident light rays. In contrast, the lateral walls CDHG and BCGF are not designed to participate in retroreflection. They are inclined with respect to the base ABCD, and each forms an angle with it greater than 90°.
[0047] Furthermore, the base EFGH and the back ABCD are preferably square, and the side length of the square base EFGH is preferably equal to twice the side length of the square back ABCD. This improves the retroreflective efficiency of the micro-recess. The dimensions of the diagonals FH and EG are denoted by "a". Furthermore, the depth of the truncated pyramid, i.e., the distance AE, is denoted by "h".
[0048] The micro-recesses 13 are arranged here in a regular manner in an XZ plane parallel to the principal plane (mean plane) of the optical component 10, with a constant pitch p. They can, however, be arranged in a non-regular manner, for example randomly or semi-randomly.
[0049] The micro-recesses 13 therefore form retroreflective portions, and are each surrounded by a transparent portion allowing the transmission of incident light from the input face 11 to the output face 12b. Thus, the optical component 10 is partially retroreflective and partially transparent.
[0050] The second layer 12 has a front face 12a, by which it is attached to the layer 11, and the opposite exit face 12b, which forms the exit diopter. These faces 12a and 12b are flat and parallel to each other. It is made of a material transparent to the light to be transmitted. This may be a plastic material, such as polymethyl methacrylate. Preferably, the refractive indices of the two layers 11 and 12 and of the transparent adhesive are substantially identical (they may, however, be different, as mentioned previously, when the reflection in the micro-recesses 13 is of the total internal reflection type). The layer 12 has a constant thickness D, formed by the distance between the rear face 11b and the exit face 12b along the Y-axis.
[0051] Other configurations are possible. Thus, the second layer 12 can be formed of a material deposited on the rear face 11b of the layer 11, the material of which continuously fills the interior space of the micro-recesses, and which has the exit face 12b, flat and parallel to the entrance face 1la.
[0052] During operation, the entrance face 1la is illuminated by a light beam Io having a non-zero angle of incidence α0. The ray of intensity Io is then refracted at the entrance face 1la and forms the ray of intensity Ib. This is transmitted without refraction to the interface between the two layers 11, 12, and then reflected by the output face 12b to form the ray of intensity Lr. This is then back-reflected by the truncated pyramid-shaped micro-recess 13, and then refracted at the output face 12b to form the ray of intensity I2. Furthermore, light not passing through the micro-recesses but through the transparent portions is then transmitted by the optical component without being back-reflected.
[0053] Tu denotes the useful transmission rate of the incident ray 10 for obtaining the deflected transmitted ray I2. It is said to be useful insofar as the ray I2 is the one that participates in forming an image in a planar-symmetric manner with respect to the object to be imaged. We have: Tu = (l-Rl)xTccxR2xyxRccx(l-R2), where RI is the reflection rate on the input face 1a; Tcc is the transmission rate between the micro-recesses at the interface between the two layers (this is the spatial coverage rate of the micro-recesses); R2 is the reflection rate at the output face 12b; y is an illumination rate of a micro-recess by a light beam I[r (which depends on the values of Tcc and the thickness D; it is the overlap between the complementary pattern of the micro-recess 13 generated by reflection on the exit face 12b and the pattern of the micro-recess 13); and Rcc is the retroreflection rate of the micro-recesses.
[0054] For example, for the following values Rl=1%; Tcc=50%; R2=50%; y=100% and Rcc=100%, a useful transmission rate of 12.4% is obtained, which is comparable to the yields of Pepper Ghost type floating image formation systems that use semi-reflective blades.
[0055] Note that the optical component 10 is configured, in terms of the thickness D of the layer 12 and the dimensions and orientation of the micro-recesses 13, according to the angle and plane of incidence to benefit from the 'cube corner' effect. On the one hand, the micro-recesses 13 are oriented so that the diagonal AG is contained in the plane of incidence of the incident rays Ir. On the other hand, as indicated in documents Martinez et al 2023 and WO2021 / 104739A1, the relationship that links the diagonal a and the depth h of the truncated pyramid micro-recess with the angle of incidence ai of the light rays Ik is: a — 2h x tan[ SÎn'^isinctj) ] ' °where n is the refractive index of the optical component.
[0056] Figure 2 schematically illustrates micro-recesses 13 of the optical component 10 of [Fig. 1A], in order to highlight the formation of the cast shadow. The micro-recesses 13 are shown here for simplicity under cubic notch shape, but the problem is the same with truncated pyramids.
[0057] It appears from the dimensioning of the micro-recesses 13 that, for an angle of incidence of 45° and an optical index of 1.5, a micro-recess 60 pm deep has a diagonal of approximately 64 pm. Therefore, since, on the one hand, the micro-recesses are oriented towards the exit face 12b and no longer, as in the prior art, towards the entrance face 11a, and on the other hand, the depth and the diagonal have values of the same order, the effect of the shadow cast by the truncated pyramid is present and not negligible. The shadow cast is represented here by the dashed area formed by the solid line ray h which is flush with the right-hand trihedron.
[0058] If we denote by q a retroreflection efficiency of the L rays (and therefore Ik) defined by the relation: q=Tccxy, simulations carried out by the inventor show that the theoretical value of 50% (i.e. with the values Tcc=50% and y=100% indicated previously) decreases to an effective value close to approximately 25% due to the shadow cast (see in particular [Fig. 7A] described below). The useful transmission rate Tu then decreases from approximately 12% to approximately 6%.
[0059] Figures 3A to 3C illustrate an optical component 10 according to an embodiment that has an improved back-reflection efficiency q of the h rays, and therefore an improved useful transmission rate Tu. [Fig. 3A] is a schematic and partial cross-sectional view of the optical component 10. [Fig. 3B] illustrates in more detail the micro-recesses 13 adjacent to [Fig. 3A], and [Fig. 3C] is a top view of the micro-recesses 13 of [Fig. 3A].
[0060] According to the invention, the optical component 10 is similar to that of [Fig. 1A] but differs essentially in that the truncated pyramid-shaped micro-recesses 13 are arranged to form several distinct and parallel retroreflective bands, which are separated in pairs by a transparent longitudinal region that does not contain micro-recesses. Furthermore, within the same retroreflective band, the micro-recesses are placed side by side (juxtaposed) so as to prevent the transmission of light from the entrance face, and are oriented along a transverse axis of the retroreflective band.
[0061] The retroreflective strips are formed by a regular arrangement of micro-recesses 13 with a pitch Dec along the longitudinal axis, and have a width Lee. The width Lee is greater than the value a of the diagonal AG of the micro-recesses. The strips are distinct and parallel to each other. They are arranged transversely with a pitch Lm, which may or may not be constant. Two strips are separated by a transparent longitudinal region that does not contain micro-recesses. This transparent longitudinal region thus has a Width Lm-Lcc. The dimensions Lee and Lm are illustrated in [Fig. 4A]. Furthermore, the bands are parallel to each other: they can be straight, as in [Fig. 4A], or concentric, as in [Fig. 5A]. Finally, a single band can extend longitudinally continuously or discontinuously (in segments, as in [Fig. 5A]).
[0062] Preferably, the transverse spacing Lm of the retroreflective strips is approximately equal to 2 times Lee: Lm = 2 x Lcc. The Lcc / Lm ratio can, however, be between 30% and 70%, and preferably between approximately 40% and 60%. Preferably, it is approximately 50%. Furthermore, the width Lee is a multiple of the value a of the diagonal AG: Lcc = N x a, where N > 2. The larger the value N, the more limited the shadow effect. However, the value N cannot be too high, or the user may be able to see the retroreflective strips. As an example, if we consider a visual acuity of 0.5 arcmin and a distance between the optical component and the user of 0.5 m to 1 m, we obtain a width Lee of the strips of approximately 70 to 140 pm. With a dimension of micro-recesses equal to approximately 35pm, the value of N is then between 2 and 4.We can consider a dimension a at least equal to lOpm, which would allow us to have a number N of the order of 7 to 14 approximately. Also, preferably, the number N is between 2 and 15.
[0063] The micro-recesses 13 are oriented substantially along the transverse axis of the retroreflective strips, this transverse axis preferably being contained in the plane of incidence of the incident beam Io. In other words, preferably, the diagonal AG of each micro-recess (the diagonal formed by the common point A of the retroreflective trihedron and the opposite point G) is oriented substantially orthogonally to the longitudinal axis. Thus, the micro-recesses are oriented substantially along the plane of incidence of the light beam Io that illuminates the optical component.
[0064] The micro-recesses 13 preferably have a square base: the diagonals AG and FH have the same value a here. This improves the retroreflection efficiency, and also allows for a regular high-density tiling that minimizes the intermediate surface between two neighboring micro-recesses.
[0065] The micro-recesses 13 are contiguous, i.e., adjacent to one another. The intermediate surface between two neighboring micro-recesses is negligible or sufficiently small to limit or completely prevent the transmission of h rays in the retroreflective strips. Preferably, the transverse distance of this intermediate surface, defined as the distance between an edge of the base EFGH and that of a neighboring micro-recess, is less than one-fifth, or even one-tenth, of the depth h of the micro-recesses. It can also be zero (the edge of one micro-recess touches that of the neighboring micro-recess).
[0066] Preferably, the reflective layer extends continuously across the surface of a single retroreflective health strip, therefore on the internal surface of the micro-recesses 13, but also on the intermediate surface (when present) of face 11b located between the edges of the bases EFGH of the neighboring micro-recesses 13.
[0067] Furthermore, to promote the coverage of the micro-recesses 13 by the light beam h and then reflected by the output diopter to form the beam Ik, the distance Lm and the thickness D are adjusted as a function of the angle of incidence ai of the rays h by the following relation: £) ......L™.... , where “mod” is the operator àxuuna. SKtana, modulo.
[0068] Figure 4A illustrates an example of a band arrangement of the micro-recesses 13, here in straight bands. Figure 4B illustrates an example of an optical component 10 where the retroreflective bands are straight. In this example, the object to be imaged is offset with respect to the optical axis A of the optical component.
[0069] As shown in [Fig. 4A], the retroreflective strips extend longitudinally in a substantially straight line. The micro-recesses 13 have a square base; the diagonals EG and FH have the value a. Here, the distance Dec is substantially equal to the distance a, and the width Lee is substantially equal to twice the distance a. Furthermore, the transverse spacing of the retroreflective strips Lm is equal to twice the width Lee. Other arrangements of the micro-recesses are possible, where they are all oriented in the same way and have the same dimensions.
[0070] As shown in [Fig. 4B], an optical component 10 having such an arrangement of micro-reflective bands can be used as an imaging optical system exhibiting planar-symmetric transmission. It thus forms the image point A' from the light rays originating from the object point A. Unlike conventional lenses, the optical component 10 deviates and converges the rays in a planar-symmetric manner with respect to the principal (mean) plane of the optical component. Thus, for a point A contained in the YZ plane and at a given distance from the optical axis, the image point A' is also contained in the same YZ plane and is at the same distance and in the same direction with respect to the optical axis as point A. Point A' therefore exhibits planar symmetry with point A.
[0071] It is noted that the light beam Io has an angle of incidence between a0-ôa and a0+ôa, so that the upper bands receive the rays at an angle of incidence a0+ôa, the middle bands receive the rays at an angle a0, and the lower bands at an angle a0-ôa. The micro-recesses of all the bands can be dimensioned according to the same average angle of incidence a0, or the bands can be dimensioned according to the local angle of incidence (therefore, by For example, the upper bands as a function of a0+ôa, the middle bands as a function of a0, and the lower bands as a function of a0-ôa). Preferably, the micro-recesses of the same band have the same transverse orientation (i.e., in the plane parallel to the YZ incidence plane passing through A). Preferably, the micro-recesses have the same orientation from one retroreflective band to another.
[0072] Figure 5A illustrates another example of the band arrangement of the micro-recesses 13, here in concentric circles. Figure 5B illustrates an example of an optical component where the retroreflective bands have such an arrangement. In this example, the object to be imaged is located on the optical axis A of the optical component 10.
[0073] As shown in [Fig. 5A], the retroreflective strips extend in a substantially circular and concentric manner, centered on the optical axis A. Each strip therefore forms a ring in the principal plane of the optical component. Here, the orientation of the micro-recesses is uniform along each strip segment. Thus, each strip is formed of several longitudinal segments that extend in a straight line, and where the micro-recesses of the same segment have the same orientation. The orientation of the micro-recesses 13 therefore depends on the corresponding mean plane of incidence. Thus, a single strip is formed of M distinct segments inclined with respect to a vertical axis parallel to the Z-axis and passing through the central axis at an angle [3i+i], with i ranging from 1 to M. [Fig. 5A] illustrates a segment inclined at an angle [3i+i] and the adjacent segment inclined at an angle [3i+i].The value M is large enough to limit the spacing between two adjacent sections of the same retroreflective strip on the one hand, and to ensure that the strips remain substantially circular.
[0074] As in the example of [Fig. 4B], the optical component 10 can be used as a planar-symmetric imaging lens. Indeed, the image A' of point A is located on the optical axis at the same distance from the optical component as point A, regardless of the latter's position. The optical component is therefore planar-symmetric, unlike a conventional lens.
[0075] Since the rays emitted from point A have different angles of incidence, ranging from 0° to a0>max, the micro-recesses 13 are preferably dimensioned according to the corresponding angle of incidence. Thus, for example, for a depth h of 60 pm and an optical index n of 1.5 of the transparent material, the micro-recesses 13 of the band located near the optical axis may have a dimension a of approximately 15 pm (for an angle of incidence of approximately 10°), while those of the band furthest from the axis optics can have a dimension a of approximately 100pm (for an angle of incidence of approximately 60°).
[0076] In this respect, let a0 be the angle of incidence of the rays Io which sweeps the values from 0° to aOjmax. Let i be the rank of the concentric bands, with i=l for the band closest to the optical axis A and i=P for the band furthest away. Each band can then be located between the angles of incidence aOji and a0,i+i. The dimension a of the diagonals of the micro-recesses of the band of rank i can then satisfy the relation: a. = 2h x tan [ sin1 ( 4 sma] ; ) ] ' with ^u+i + ai,i ) / 2.
[0077] Furthermore, the thickness D of the layer 12 can be chosen to be approximately equal to N times h: D = Nxh. Recall that N is the number of micro-recesses 13 along the width of the band considered, and that h is the depth of the micro-recesses 13. Moreover, between the angles au and ai.i+i, several concentric bands may be present. The number Nb of bands present in the angular increment au+i - au can be calculated by the relation: , where Z is the distance between 4xtancfy the object to be imaged and the optical component along the optical axis. As an example, for a depth h of 45pm and a number N of 4, a distance Z of 10cm, and an angular increment of 2°, and finally for a minimum value of the dimension a of 5pm, we observe that the value a increases linearly from 5pm to 60pm while a0 goes from 5° to 60°, and that the number Nb decreases from 44 bands for a0 = 5° (therefore 44 bands of micro-recesses of 5pm) to 9 bands around 40° where the micro-recesses have a dimension a of approximately 40pm.
[0078] Figure 6 illustrates a floating imaging system 1 comprising an image formation component and an optical component 10 according to one embodiment.
[0079] The image formation component here comprises a projector 21, 22 of an image to be displayed, a reflecting mirror 23, and a transparent and diffusing structure 24. It is associated with the optical component 10, and here, an absorbing structure 25. The projector comprises an image source 21 (screen displaying the image) associated with a projection optic 22. Alternatively, the image formation component can be a screen (less efficient from an energy point of view (Lambertian emission, high diffusion) but also less bulky (the diffuser is integrated into it)).
[0080] The image displayed by the source 21 is thus projected onto a transparent and diffusing structure 24 by the projection optics 22 and the reflecting mirror 23. The image diffused by the diffusing structure 24 includes in particular the points A and B. The light beams from the diffused image are noted Io, with reference to [Fig.3A].
[0081] The Io rays of the image diffused by the diffusing structure 24 are incident on the entrance face 1 la of the optical component 10. A part of these rays, denoted IOr, is reflected by this entrance face 1 la, then are absorbed by the absorbing structure 25.
[0082] Another part, denoted U, is refracted and transmitted through the transparent longitudinal regions of the optical component 10. They emerge from the optical component through the exit face 12b with the same angle of incidence as the Io rays.
[0083] On the other hand, a part I2 of the rays Io is reflected by the exit face 12b towards the micro-recesses, then is retroreflected by the retroreflective strips with micro-recesses, and finally refracted out of the optical component 10 through the exit face 12b. They then converge to form the image points A' and B', which are placed according to a planar symmetry with respect to the principal plane of the optical component 10.
[0084] Thus, the optical component 10 separates the lower image generation space from the upper image viewing space. This floating imaging system 1 limits the ghosting effect that occurs when the floating imaging system includes a semi-reflective plate instead of our optical component, as well as a retroreflective cube-corner surface instead of our absorber. Such a system is described, in particular, in the article by Yoshimizu & Iwase entitled "Radially arranged dihedral corner reflector array for wide viewing angle offloating image without Virtual image," Opt. Express 27(2), 918-927 (2019). Furthermore, the viewed image is less blurry than in this prior art example because it is located closer to the floating imaging system than in prior art examples.
[0085] Figures 7A and 7B illustrate examples of the angular evolution of the backscattering efficiency q of h-rays and therefore also of Iir rays. The value of the efficiency q is relative to an optical component 10 of a floating imaging system similar to that of [Fig. 6], in the case where the user's eyes are located in the eye box of the system. The viewing angle q is that which sweeps the horizontal XY plane and the viewing angle rp is that which sweeps the vertical YZ plane. These angular evolutions are obtained by numerical simulation using Matlab® software, taking into account the shadow effects cast by a set of geometric relationships.
[0086] Figure 7A corresponds to the case where the optical component is similar to that of Figure 1A, that is, where the micro-recesses are not arranged in distinct retroreflective bands and are not adjacent to one another. It appears that the efficiency q has a maximum value of approximately 20% here, consistent with the theoretical maximum value of 25% indicated previously. This The degradation of efficiency r| is due, as we have shown above, to a shadow effect.
[0087] Figure 7B corresponds to the case where the optical component is similar to that of Figure 3A, that is, where the micro-recesses are arranged into distinct retroreflective bands by being placed side by side. It appears that the efficiency q has a maximum value of approximately 45% here. As we have shown previously, this arrangement limits the shadowing effect, which allows the efficiency q to approach the theoretical maximum value of 50%. This significant improvement in the efficiency q translates de facto into an improvement in the useful transmission rate Tu, which improves the performance of the optical component and therefore of the floating imaging system.
[0088] Furthermore, it is noted that the efficiency p is better when the step size Dec is as small as possible, that is to say when it corresponds to that of [Fig. 4A] where Dec is equal to the value a of the diagonal FH. Indeed, it exhibits a high value for a wide angular range of 15° of the horizontal angle q>.
[0089] Specific embodiments have just been described. Various variants and modifications will be apparent to those skilled in the art.
Claims
Demands
1. Optical component (10), extending in a principal plane (P), and having an entrance face (1la) and an opposite exit face (12b), planar and parallel to the principal plane (P), comprising: • a first transparent layer (11), having the entrance face (1la), and a second opposite face (11b), planar and parallel to the principal plane (P), and having retroreflective micro-recesses (13), in the shape of a truncated pyramid, extending from the second face (Hb); • a second transparent layer (20), having the exit face (12b), and extending on and in contact with the second face (11b) of the first layer (11) and the micro-recesses (13);• characterized in that: • the micro-recesses (13) are arranged in distinct and parallel retroreflective bands, the retroreflective bands being separated in pairs by a transparent longitudinal portion without micro-recesses, • the micro-recesses (13) of the same retroreflective band being placed side by side and oriented along a transverse axis of the retroreflective band.
2. Optical component (10) according to claim 1, wherein the micro-recesses (13) of the same band all have the same dimensions.
3. Optical component (10) according to claim 1 or 2, wherein the micro-recesses (13) each have a square apex face (ABCD) of the truncated pyramid and a square base (EFGH), parallel to the apex face and coplanar with the second face (11b) of the first layer (11).
4. Optical component (10) according to claim 3, wherein the micro-recesses (13) each have a trihedron formed of the apex face (ABCD) and two lateral faces (AEFB; EAHD) orthogonal to each other and to the apex face (ABCD).
5. Optical component (10) according to claim 4, wherein the micro-recesses (13) each have a first diagonal (AG) formed from a common point (A) to the trihedron and the opposite point (G) of the base, this diagonal being substantially oriented along the transverse axis of the retroreflective health strip.
6. Optical component (10) according to claim 5, wherein, in the same retroreflective band, the micro-recesses (13) are arranged periodically according to a pitch (Dec) substantially equal to the dimension of a diagonal (FH) of the base orthogonal to the first diagonal (AG).
7. Optical component (10) according to any one of claims 1 to 6, wherein a reflective layer covers the internal surface of the micro-recesses (13) as well as an intermediate surface of the second face (11b) of the first layer (11) located between two adjacent micro-recesses (13).
8. Optical component (10) according to any one of claims 1 to 7, wherein the retroreflective bands are straight or concentric.
9. Optical component (10) according to any one of claims 1 to 8, wherein each retroreflective band comprises, along its transverse axis, between 2 and 15 micro-recesses.
10. An optical component (10) according to any one of claims 1 to 9, wherein the entrance face (1a) is intended to be illuminated by a light beam with a non-zero mean angle of incidence α0, which is refracted to form a light beam having a non-zero angle αi with respect to an axis orthogonal to the principal plane; wherein the retroreflective strips are arranged side by side at a pitch Lm and wherein the second layer (12) has a thickness D; the values D and Lm being chosen to satisfy the relation: n--—..... mrwl............. 4xtana| 2xtanaj
11. Optical component (10) according to any one of claims 1 to 10, wherein two adjacent micro-recesses of the same retroreflective strip are spaced apart from each other by a distance not more than one-fifth of their depth (h) and preferably not more than one-tenth of their depth (h).
12. Floating imaging system (1), comprising: • an image formation component, adapted to provide an image; • the optical component (10) according to any one of the preceding claims, its entrance face (lia) being oriented towards the image formation component and disposed in an inclined manner to an optical axis of the latter.
13. Floating imaging system (1) according to claim 12, comprising an absorbing structure (25) located opposite the entrance face (1la) of the optical component (10) so as to receive the light beams from the image-forming component and reflected by the entrance face (1la).
14. Floating imaging system (1) according to claim 12 or 13, wherein the image-forming component comprises: an image projector, comprising an image source (21) and an optical system (22); and a transparent diffuser (24), located in the image plane of the optical system (22), adapted to transmit and diffuse the image received from the projector.
Citation Information
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