OPTICAL CONDENSER WITH DIFFUSER EFFECT

DE502018016337D1Active Publication Date: 2026-01-22FRAUNHOFER GESELLSCHAFT ZUR FORDERUNG DER ANGEWANDTEN FORSCHUNG EV
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Patent Information

Application Number
DE502018016337
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Priority Date
2017-09-28
Filing Date
2018-09-27
Publication Date
2026-01-22
Estimated Expiration
2038-09-27

AI Technical Summary

Technical Problem

Existing diffusers and honeycomb condensers suffer from reduced luminance and dependence on the direction of incidence, limiting their application in luminance-critical and etendue-preserving lighting systems, and are unable to generate complex intensity distributions.

Method used

An optical beam shaper with two lens arrays, where the optical channels have different emission angle ranges and identical projection lenses, allowing for the superposition of partial intensity distributions to create arbitrary symmetrical or asymmetrical far-field distributions, independent of the direction of incidence and maintaining étendue.

Benefits of technology

The optical beam shaper achieves high transmission and luminance while generating complex intensity distributions, suitable for luminance-critical applications such as automotive lighting and general lighting systems.

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Description

[0001] Diffusers are used to generate a continuous intensity distribution of a light beam. Starting from a collimated or slightly divergent incident light source, these elements produce a defined angular distribution of the output beam (scattering lobe) while requiring minimal installation space. Their operation is based on light scattering (volume or surface scattering), light refraction (using engineered diffusers), and / or light diffraction (using holographic diffusers) at micro-optics with a single-sided structure.

[0002] Diffusers preserve the beam area but increase the beam divergence by the opening angle of the scattering lobe, resulting in a reduction of the luminance at the output compared to the input. This behavior is disadvantageous in applications requiring high luminance. Such applications include, for example, the illumination of micro-imagers or the implementation of high-power spotlights.

[0003] To describe relevant geometric aspects of lighting systems, the Etendue is used. E ^ = π n 2 A sin 2 θ with the refractive index of the medium n, the area of ​​the bundle A and half the opening angle θ , introduced. Ideally imaging optics conserve the étendue, whereas imperfectly imaging and scattering elements increase the étendue. An increase in étendue, as is typical for diffusers, causes a reduction in luminance at the system output, which is particularly disadvantageous for the applications mentioned above. The importance of étendue is described in more detail in reference [1].

[0004] Another problem with diffusing discs is the strong dependence of the output beam on the direction of incidence, which determines the orientation of the scattering lobe at the output. Therefore, if the direction of incidence is not precisely defined for diffusing discs, a reproducible intensity distribution at the output will not result.

[0005] Honeycomb condensers known from reference [2] consist of two identical lens arrays arranged at a distance of one focal length from each other. The lenses of both the input and output lens arrays are identical. Each input lens and output lens form an optical channel. Such honeycomb condensers are independent of the angle of incidence, provided the angle of incidence is less than or equal to the so-called acceptance angle, and additionally etendue-preserving if the angle of incidence is equal to the so-called acceptance angle. These honeycomb condensers produce an emitted beam of light whose intensity distribution is homogeneous within a range of the angle of incidence and zero outside of this range. Such an intensity distribution is also referred to as a top-hat intensity distribution.However, more complex intensity distributions are not possible with such honeycomb capacitors.

[0006] Reference [3] discloses a modified honeycomb condenser in which the input and output lenses are identical for each optical channel. However, the lenses for different optical channels differ in size. A specific arrangement of the optical channels with the different lenses enables an approximately bell-shaped intensity distribution of the emitted light beam. However, the acceptance angle of such a honeycomb condenser is significantly smaller than that of a classic honeycomb condenser.

[0007] To increase the acceptance angle, reference [4] proposes a further modified honeycomb condenser featuring a specially structured aperture array. However, the aperture array results in a significantly lower average luminance at the output of the honeycomb condenser.

[0008] Publication US 5 963 305 A describes an optical beam shaper for producing a falling beam of light which has one or more areas with homogeneous intensity in a far field.

[0009] The publication EP 0 563 874 A1 describes another relevant optical beam shaper for generating a falling light beam from an incident light beam.

[0010] The object of the present invention is to provide an improved optical beam shaper which in particular eliminates the aforementioned disadvantages.

[0011] The problem is solved by an optical beam shaper for generating an outgoing light beam from an incident light beam according to the attached claim 1.

[0012] In general, a lens array is characterized by the fact that the optical axes of the individual lenses in the array are parallel and that the individual lenses are arranged along a plane perpendicular to the optical axes. Two lens arrays are parallel to each other if the optical axes of the lenses in one array are parallel to the optical axes of the lenses in the other array. Both condenser lens arrays and projection lens arrays can each be microlens arrays.

[0013] Generally, the aperture of a lens is understood to be the optically effective area of ​​the lens in a plane perpendicular to its optical axis. The center of an aperture is understood to be the region around the centroid of the optically effective area of ​​the respective lens.

[0014] The optical axis of a lens is, at least theoretically, a path for light rays that does not refract them. For two-dimensional lenses, the optical axis has a point-like cross-section, so that it takes the form of a straight line. For one-dimensional lenses, the optical axis has a plane-like cross-section, so that it takes the form of a plane. The optical axis can lie at the center of the aperture, at any point within the aperture, or even outside the aperture.

[0015] The incident partial light beams are each a portion of the incident light beam that passes through a condenser lens of the condenser lens array. The outgoing partial light beams are each a portion of the outgoing light beam that passes through a projection lens of the projection lens array.

[0016] The permissible angle of incidence range of an optical channel is the angular range in which light incident on the condenser lens of the optical channel is refracted in such a way that the light hits the projection lens of the respective optical channel.

[0017] The principal rays of the incidence angle ranges of different optical channels can be aligned parallel to each other. This is advantageous when it is intended that the partial light beams incident on the different optical channels are largely parallel to each other. In particular, the principal rays of the incidence angle ranges can be aligned parallel to the optical axes of the condenser lenses of the optical channels. This is advantageous when it is intended that the partial light beams incident on the different optical channels are largely parallel to the optical axes of the condenser lenses.

[0018] However, embodiments are also conceivable in which the main rays of the incidence angle ranges of different optical channels are at an angle to each other. This is advantageous if it is intended that the partial light beams incident on the different optical channels have noticeably different angles of incidence.

[0019] In general, an intensity distribution exhibits several regions of homogeneous intensity if it includes several regions bounded by edges, each possessing a constant but non-zero intensity. Edges are steep transitions to a different intensity value.

[0020] The far field of the emitted light beam is located at a distance from the projection lens array measured along the optical axes of the projection lenses, a distance so large that the distance of the projection lenses to the center of the array is negligible. In other words, the far field exists where the optical beam shaper acts like a nearly point light source.

[0021] Both condenser lenses and projection lenses can be one-dimensional or two-dimensional. One-dimensional lenses can be, for example, cylindrical lenses. The shape of these cylindrical lenses may deviate slightly from an ideal cylinder shape to avoid aberrations. Without further modifications, one-dimensional lenses only allow the generation of a one-dimensional intensity distribution.

[0022] Two-dimensional lenses can, for example, be spherical lenses. Lenses can also be designed as aspherical lenses, whose surfaces deviate from an ideal spherical surface to avoid aberrations.

[0023] Both the condenser lenses and the projection lenses can have individual curvatures within their respective arrays to avoid imaging errors.

[0024] In the optical beam shaper according to the invention, each of the optical channels generates an emitted partial beam of light, which has a top-hat-shaped partial intensity distribution, i.e., a partial intensity distribution in which the partial intensity distribution within the emission angle range has a constant value, and in which the partial intensity distribution outside the emission angle range assumes the value zero. The intensity distribution of the optical beam shaper then results from the superposition of the partial intensity distributions of the individual optical channels.

[0025] The optical channels are designed such that at least two of them have different emission angle ranges, resulting in different partial intensity distributions. The intensity distribution of the optical beam shaper then results from the superposition of these different partial intensity distributions. In the far field of the emitted light beam, the beam shaper's intensity distribution exhibits several regions with homogeneous intensity. By appropriately designing the optical channels, it is possible, unlike with the classical honeycomb condenser of the reference [2], to generate virtually any intensity distribution.

[0026] Since the permissible angle of incidence ranges of the optical channels in the optical beam shaper according to the invention are of equal magnitude in a plane parallel to the optical axes of the condenser lenses, angular deviations of a real incident light beam compared to a theoretically intended light beam can be compensated equally well by all optical channels. This is a particular advantage over the modified honeycomb condenser of the reference [3], in which the optical channels have different permissible angle of incidence ranges, each of which depends on the different numerical apertures of the projection lenses of the optical channels.

[0027] Since the optical beam shaper according to the invention does not require an aperture array to maintain the acceptance angle of the classical honeycomb condenser, the optical beam shaper enables a higher transmission than the modified honeycomb condenser of the reference [4].

[0028] The optical beam shaper according to the invention is also superior to diffusing discs, since it is both etendue-preserving and independent of the direction of incidence of the incident light beam.

[0029] The optical beam shaper according to the invention enables the generation of arbitrary symmetrical and asymmetrical far-field distributions with a single element, retaining the advantages of the classic honeycomb condenser, namely high transmission and independence from the angle of incidence, as long as the acceptance angle, which corresponds to the numerical aperture of the projection lens array, is not exceeded. In contrast to diffusers, the étendue is maintained with respect to the individual channel, which enables the realization of luminance-critical applications.

[0030] The optical beam shaper according to the invention can be advantageously used in lighting systems with etendue and / or luminance-critical properties and non-homogeneous luminous intensity distribution. Applications for such beam shapers include, for example, general lighting for point sources with a specific angular distribution of emission, or in the automotive sector, e.g., for headlights or rear and indicator lights.

[0031] According to the invention, the apertures of the projection lenses are identical. Two lenses have identical apertures if their apertures are the same in shape and area. If the apertures of the projection lenses of such an optical beam shaper are identical, there are no limitations on the independence from the angle of incidence of the incident light beam compared to the classical honeycomb condenser of the reference [2]. Compared to the modified honeycomb condenser of the reference [3], the acceptance angle of the optical beam shaper is larger, since in the modified honeycomb condenser the acceptance angle depends on the numerical aperture of the smallest projection lens.

[0032] According to an advantageous embodiment of the invention, the main rays of the permissible angles of incidence are parallel to each other in at least some of the optical channels. These features allow the use of the optical beam shaper according to the invention in cases where at least some of the incident partial beams of the incident light beam are substantially parallel to each other.

[0033] According to an advantageous embodiment of the invention, the main rays of the permissible angle of incidence ranges are parallel to the optical axes of the condenser lenses at least in some of the optical channels. These features allow the use of the optical beam shaper according to the invention in cases where at least some of the incident partial beams of the incident light beam are substantially parallel to the optical axes of the condenser lenses.

[0034] According to an advantageous embodiment of the invention, the main rays of the permissible angle of incidence ranges are oblique to each other in at least some of the optical channels. These features allow the use of the optical beam shaper according to the invention in cases where at least some of the incident partial light beams of the incident light beam are oblique to each other.

[0035] According to an advantageous embodiment of the invention, in each of the multiple optical channels, a focal point of the respective condenser lens lies in a region of the projection lenses in the direction of the optical axis of the respective condenser lens. Furthermore, in each of the multiple optical channels, a focal point of the respective projection lens lies in a region of the condenser lenses in the direction of the optical axis of the respective projection lens. This ensures that the partial intensity distributions of the emitted partial light beams are homogeneous within the emission angle range and that no undesired intensities occur outside the emission angle range.

[0036] According to a practical embodiment of the invention, at least two of the different reflection angle ranges overlap. In this way, particularly high luminance levels can be achieved in the intersection areas.

[0037] In an advantageous embodiment of the invention, the optical axis of the respective condenser lens in each of the optical channels is identical to the optical axis of the respective projection lens. This simplifies the calculation of the condenser and projection lenses required for a specific intensity distribution. Furthermore, the condenser and projection lenses exhibit simple geometric shapes that are easier to manufacture.

[0038] According to the invention, the aperture of the condenser lens of one of the optical channels is larger than the apertures of the projection lenses, and the aperture of the condenser lens of another of the optical channels is smaller than the apertures of the projection lenses. The use of condenser lenses of different sizes makes it easy to generate different angles of incidence. A regular arrangement of smaller and larger condenser lenses enables the generation of virtually any desired, but symmetrical, intensity distributions in the far field.

[0039] According to an advantageous embodiment of the invention, the condenser lenses of the condenser lens array comprise rectangular and square condenser lenses, wherein the projection lenses of the projection lens array comprise square or rectangular projection lenses. In this way, unusable areas between the condenser lenses can be minimized, even when condenser lenses of different sizes are used.

[0040] According to a practical embodiment of the invention, the condenser lens with the smaller aperture has a shorter extent in the direction of its optical axis than the condenser lens with the larger aperture. When using condenser lenses of the same thickness, which would be desirable for optical reasons, the smaller lenses develop high edges parallel to their respective optical axes. These can lead to the formation of stray light, which on the one hand reduces the achievable luminance and on the other hand can uncontrollably interfere with the desired intensity distribution in the far field. By using thinner, smaller condenser lenses, such high edges and their negative effects can be avoided.

[0041] According to an advantageous embodiment of the invention, the optical axis of the condenser lens of one of the optical channels is offset from the center of the aperture of the respective condenser lens. This offset is defined by its direction and magnitude. Such offsets also make it possible to generate asymmetric intensity distributions in the far field. Astigmatic lenses can be used to avoid aberrations.

[0042] According to a practical embodiment of the invention, the optical axis of the condenser lens of another of the optical channels has no offset or a different offset from the center of the aperture of the respective condenser lens. Such condenser lenses are also referred to as centered condenser lenses. The offset makes it possible to generate different angles of incidence even if the apertures of the condenser lenses are the same. However, it is also possible to combine offsets in the condenser lenses with different aperture sizes.

[0043] According to an advantageous embodiment of the invention, the apertures of the condenser lenses of the condenser lens array are arranged in a regular hexagonal pattern and are uniformly designed with a round or hexagonal shape, wherein the apertures of the projection lenses of the projection lens array are also arranged in a regular hexagonal pattern and are designed with a round or hexagonal shape. In this way, unusable intermediate surfaces between the lenses can be largely avoided.

[0044] According to a preferred embodiment of the invention, the optical axis of the projection lens of one of the optical channels is offset from the center of the aperture of the respective projection lens. Such projection lenses are also referred to as decentered projection lenses.

[0045] According to a further advantageous embodiment of the invention, the optical axis of the projection lens of another of the optical channels has no offset or a different offset from the center of the aperture of the respective projection lens. Projection lenses without offset are also referred to as centered projection lenses. Combinations of optical channels with different offsets, as well as combinations of offset channels with offset channels, enable the generation of different angles of incidence even with identical condenser lenses, whereby symmetrical or asymmetrical intensity distributions are possible in the far field. Offsets in the projection lens arrays can be combined with offsets in the condenser lenses. Likewise, offsets in the projection lenses can be combined with different aperture sizes in the condenser lenses.Overall, this increases the degrees of freedom in the design of the optical beam shaper.

[0046] According to a further advantageous embodiment of the invention, the condenser lens array is arranged on a first side of a substrate and the projection lens array on a second, opposite side of the substrate. The substrate can be a transparent plate, wherein both the condenser lens array and the projection lens array are each formed directly onto the substrate and bonded to it by means of a heating- and pressureless casting process in a mold.

[0047] According to a practical embodiment of the invention, in each of the optical channels, the respective condenser lens focuses the respective incident partial light beam onto the center of the aperture of the respective projection lens, provided that the respective incident partial light beam is parallel to the optical axis of the respective condenser lens. Such an arrangement is always advantageous when the incident light beam is substantially parallel to the optical axes of the condenser lenses or the projection lenses. In this case, the condenser lens array and the projection lens array can be arranged congruently with respect to the optical axes.

[0048] According to a further advantageous embodiment of the invention, in each of the optical channels, the respective condenser lens focuses the respective incident partial light beam onto the center of the aperture of the respective projection lens when the respective incident partial light beam occurs at an angle to the optical axis of the respective condenser lens. Such an arrangement is always advantageous when the incident light beam occurs at an angle to the optical axes of the condenser lenses or the projection lenses. The condenser lens array and the projection lens array can be arranged offset along the optical axes. To ensure that the same permissible angle of incidence range is achieved for each partial light beam even when incident at different angles, the aperture of the associated projection lens can be enlarged depending on the angle of incidence to account for projection effects.

[0049] In a further aspect, the invention relates to an optical beam shaping arrangement for generating an emitted light beam from an incident light beam, wherein the beam shaping arrangement comprises a first optical beam shaping device according to the invention and a second optical beam shaping device according to the invention, wherein the first optical beam shaping device and the second optical beam shaping device are arranged along a common plane, and wherein the intensity distribution of the first optical beam shaping device and the intensity distribution of the second optical beam shaping device differ.

[0050] If the first optical beam shaper and the second optical beam shaper are arranged along a common plane, this means that the optical axes of the condenser lenses of the first optical beam shaper and the optical axes of the condenser lenses of the second optical beam shaper are parallel to each other. This is equivalent to the optical axes of the projection lenses of the first optical beam shaper and the optical axes of the projection lenses of the second optical beam shaper being parallel to each other, with the first optical beam shaper and the second optical beam shaper exhibiting no offset along the optical axes. Furthermore, the plane is perpendicular to the optical axes of the first beam shaper and perpendicular to the optical axes of the second beam shaper.

[0051] The use of several optical beam shapers arranged side by side can offer manufacturing advantages compared to the use of a single beam shaper that has the same optical properties.

[0052] In a further aspect, the invention relates to an optical beam shaping arrangement for generating an emitted light beam from an incident light beam, wherein the beam shaping arrangement comprises a first optical beam shaping device according to the invention and a second optical beam shaping device according to the invention, wherein the first optical beam shaping device and the second optical beam shaping device are arranged such that at least a part of the emitted light beam of the first optical beam shaping device is supplied to the second optical beam shaping device as its incident light beam.

[0053] In such a beam-shaping arrangement, the optical axes of the condenser lenses of the first optical beam-shaping device and the optical axes of the condenser lenses of the second optical beam-shaping device can be parallel to each other, so that the optical axes of the projection lenses of the first optical beam-shaping device and the optical axes of the projection lenses of the second optical beam-shaping device are also parallel to each other. However, it is also possible that an angle is provided between the optical axes of the first optical beam-shaping device and the optical axes of the second optical beam-shaping device, which should, however, be smaller than the acceptance angle of the second optical beam-shaping device. In this case, the first optical beam-shaping device and the second optical beam-shaping device have an offset in the direction of their optical axes.

[0054] For example, both the first and second optical beam shapers can be configured to generate a one-dimensional intensity distribution. The first optical beam shaper can comprise a condenser lens array and a projection lens array with one-dimensional lenses aligned parallel to each other. Similarly, the second optical beam shaper can comprise a condenser lens array and a projection lens array with one-dimensional lenses aligned parallel to each other but perpendicular to the one-dimensional lenses of the first optical beam shaper. The successive arrangement of the second and third optical beam shapers then results in a two-dimensional intensity distribution. The one-dimensional lenses can, for example, be cylindrical lenses.The shape of the cylindrical lenses can deviate slightly from an ideal cylindrical shape to avoid aberrations. The advantage of this arrangement is that one-dimensional lenses are easier to manufacture than two-dimensional lenses, yet a two-dimensional intensity distribution can still be achieved.

[0055] The use of several optical beam shapers arranged in series can offer manufacturing advantages compared to the use of a single beam shaper with the same optical properties.

[0056] In a further aspect, the invention relates to an optical system for generating an emitted light beam from an incident light beam, wherein the optical system comprises an optical beam shaper according to the invention and a focusing optic for focusing the emitted light beam of the optical beam shaper onto a plane. In this way, a luminance corresponding to the intensity distribution in the far field of the emitted light beam of the beam shaper can be achieved on the plane.

[0057] In another aspect, the invention relates to an optical system for generating a focused outgoing light beam from an incident light beam, wherein the optical system comprises an optical beam shaper according to the invention and a diverging optic for increasing the divergence of the outgoing light beam of the optical beam shaper.

[0058] In a further aspect, the invention relates to an optical system for generating an emitted light beam from an incident light beam, wherein the optical system comprises an optical beam shaper arrangement according to the invention and a focusing optic for focusing the emitted light beam of the optical beam shaper arrangement onto a plane. In this way, a luminance corresponding to the intensity distribution in the far field of the emitted light beam of the beam shaper arrangement can be achieved on the plane.

[0059] In another aspect, the invention relates to an optical system for generating an outgoing light beam from an incident light beam, wherein the optical system comprises an optical beam shaper arrangement according to the invention and a diverging optic for increasing the divergence of the outgoing light beam of the optical beam shaper arrangement.

[0060] The present invention and its advantages are described in more detail below with reference to figures. Figure 1 shows an optical beam shaper known from the prior art with several optical channels; Figure 2 shows the emission angle ranges and the partial intensity distributions of the emitted partial light beams of the optical channels of the optical beam shaper. Figure 1 Figure 3 shows the resulting intensity distribution of the emitted light beam of the optical beam shaper of the Figure 1 Figure 4 shows a first embodiment of an optical beam shaper according to the invention in a schematic sectional side view; Figure 5 shows the emission angle ranges and the partial intensity distributions of the emitted partial light beams of the optical channels of the optical beam shaper. Figure 4 Figure 6 shows the resulting intensity distribution of the emitted light beam of the optical beam shaper of the Figure 4 Figure 7 shows a second embodiment of an optical beam shaper according to the invention in a schematic sectional side view; Figure 8 shows the emission angle ranges and the partial intensity distributions of the emitted partial light beams of the optical channels of the optical beam shaper. Figure 7 Figure 9 shows the resulting intensity distribution of the emitted light beam of the optical beam shaper of the Figure 7 Figure 10 shows a third embodiment of an optical beam shaper according to the invention in a schematic sectional side view; Figure 11 shows the emission angle ranges and the partial intensity distributions of the emitted partial light beams of the optical channels of the optical beam shaper. Figure 10 Figure 12 shows the resulting intensity distribution of the emitted light beam of the optical beam shaper of the Figure 10Figure 13 shows a fourth embodiment of an optical beam shaper, which is not claimed, in a schematic sectional side view; Figure 14 shows the emission angle ranges and the partial intensity distributions of the emitted partial light beams of the optical channels of the optical beam shaper. Figure 13 Figure 15 shows the resulting intensity distribution of the emitted light beam of the optical beam shaper of the Figure 13 Figure 16 shows a fifth embodiment of an optical beam shaper according to the invention in a schematic sectional side view; Figure 17 shows a sixth embodiment of an optical beam shaper according to the invention in a schematic oblique three-dimensional view; Figure 18 shows the condenser lens array of the optical beam shaper of the Figure 17in a schematic spatial oblique view; Figure 19 shows a first embodiment of an optical beam shaper arrangement according to the invention in a schematic side view; Figure 20 shows a second embodiment of an optical beam shaper arrangement according to the invention in a schematic side view; and Figure 21 shows a first embodiment of an optical system according to the invention in a schematic side view.

[0061] Identical or similar elements, or elements with the same or equivalent function, are below designated with the same or similar reference symbols.

[0062] The following description details exemplary embodiments with a multitude of features of the present invention in order to provide a better understanding of the invention. It should be noted, however, that the present invention can also be implemented by omitting individual features described. It should also be pointed out that the features shown in the various exemplary embodiments can be combined in other ways, unless this is expressly excluded or would lead to contradictions.

[0063] Figure 1Figure 1 shows an optical beam shaper 1 known from the prior art. The optical beam shaper 1 for generating an emitted light beam ALB from an incident light beam ELB comprises a condenser lens array 2 for receiving the incident light beam ELB, which has several condenser lenses 3, each having an aperture 4 and an optical axis 5. Furthermore, the optical beam shaper 1 comprises a projection lens array 6 arranged parallel to the condenser lens array 2 for emitting the emitted light beam ALB, which has several projection lenses 7, each having an aperture 8 having a center 8.1 and each having an optical axis 9.Each of the condenser lenses 3 is assigned to exactly one of the projection lenses 7, such that each of the condenser lenses 3 and the respective assigned projection lens 7 form one optical channel 10 of several optical channels 10, and such that each of the several optical channels 10 generates from an incident partial light beam ETLB of the incident light beam EB a partial light beam ATLB of the incident light beam EB that falls out in a reflection angle range 11 with a homogeneous partial intensity distribution TIV.

[0064] All of the condenser lenses 3 are identical in design. Likewise, all of the projection lenses 7 are identical in design. Furthermore, the condenser lenses 3 and the projection lenses 7 have the same construction. In particular, the condenser lenses 3 and projection lenses 7 are identical with respect to their aperture 8 and their focal length. All of the condenser lenses 3 and the projector lenses 7 are arranged such that their respective optical axes 5 and 9 pass through the center of their respective apertures 4 and 8, respectively. Furthermore, the focal point of each condenser lens 3 lies at the center 8.1 of the associated projection lens 7. Likewise, the focal point 13 of each projection lens 7 lies at the center of its associated condenser lens 3.

[0065] In a classic honeycomb condenser, the permissible angle of incidence ranges 13.1 are of equal magnitude for all optical channels 10. The principal rays 13.2 of the angle of incidence ranges 13.1 correspond to the optical axes 5 of the condenser lenses 3.

[0066] Figure 2 shows the angle of incidence ranges 11 and the partial intensity distributions TIV of the emitted partial light beams ATLB of the optical channels 10 of the optical beam shaper 1 of the Figure 1 For each of the optical channels 10, the same angle of incidence range 11 results, in which the respective emitted partial light beam ATLB exhibits a homogeneous intensity distribution. The partial intensity distributions TIV are normalized to the intensity of one of the optical channels 10.

[0067] Figure 3 shows the resulting intensity distribution IV of the far field of the falling light beam ALB of the optical beam shaper of the Figure 1The intensity distribution IV results from the superposition of the partial intensity distribution TIV. The intensity distribution IV exhibits only one region BHI with homogeneous intensity.

[0068] Figure 4 Figure 1 shows a first embodiment of an optical beam shaper according to the invention in a schematic sectional side view. The optical beam shaper is for generating an outgoing light beam ALB from an incident light beam ELB, wherein the optical beam shaper 1 comprises: a condenser lens array 2 for receiving the incident light beam ELB, comprising several condenser lenses 3, each having an aperture 4 and an optical axis 5, the optical axes 5 of the condenser lenses 3 being parallel to each other; and a projection lens array 6 arranged parallel to the condenser lens array 2 for emitting the outgoing light beam ALB, comprising several projection lenses 7, each having an aperture 8 having a center 8.1 and each having an optical axis 9; each of the condenser lenses 3 being assigned exactly one of the projection lenses 7, such that each of the condenser lenses 3 and the respective assigned projection lens 7 form one optical channel 10 of several optical channels 10, and such that each of the several optical channels 10 originates from a permissible angle of incidence range 13.1 of the respective optical channel 10, the incident partial light beam ETLB of the incident light beam ELB generates a partial light beam ATLB of the emitted light beam ALB, emitting in a reflection angle range 11 with a homogeneous partial intensity distribution TIV related to a reflection angle AFW, wherein the permissible reflection angle ranges 13.1 of the optical channels 10 are of equal magnitude in a plane parallel to the optical axes 5 of the condenser lenses 3; and wherein the reflection angle ranges 11 of at least two of the optical channels 10 are different, such that an intensity distribution IV related to the reflection angle AFW has several regions BHI with a homogeneous intensity in a far field of the emitted light beam ALB.

[0069] According to an advantageous further development of the invention, the apertures of the projection lenses 7 are identical.

[0070] According to an advantageous further development of the invention, in each of the several optical channels 10 a focal point 12 of the respective condenser lens 3 in the direction of the optical axis 5 of the respective condenser lens 3 is located in a region of the projection lenses 7 and a focal point 13 of the respective projection lens 7 in the direction of the optical axis 9 of the respective projection lens 7 is located in a region of the condenser lenses 3.

[0071] According to a convenient further development of the invention, at least two of the different angle of incidence ranges 11 overlap.

[0072] According to an advantageous further development of the invention, in each of the optical channels 10 the optical axis 5 of the respective condenser lens 3 is equal to the optical axis 9 of the respective projection lens 7.

[0073] According to the invention, the aperture 4 of the condenser lens 3 of one of the optical channels 10 is larger than the apertures 8 of the projection lenses 7, wherein the aperture 4 of the condenser lens 3 of another of the optical channels 10 is smaller than the apertures 8 of the projection lenses.

[0074] According to an advantageous embodiment of the invention, in each of the optical channels 10, the respective condenser lens 3 focuses the respective incident partial light beam ETLB onto the center 8.1 of the aperture 8 of the respective projection lens 7, when the respective incident partial light beam ETLB occurs parallel to the optical axis 5 of the respective condenser lens 3.

[0075] According to a further development of the invention, in each of the optical channels 10 the respective condenser lens 3 focuses the respective incident partial light beam ETLB onto the center 8.1 of the aperture 8 of the respective projection lens 7, when the respective incident partial light beam ETLB occurs at an angle to the optical axis 5 of the respective condenser lens 3.

[0076] According to a suitable further development of the invention, principal rays 13.2 of the permissible angle of incidence ranges 13.1 run parallel to each other at least in some of the optical channels 10.

[0077] According to a convenient further development of the invention, principal rays 13.2 of the permissible angle of incidence ranges 13.1 run parallel to the optical axes 5 of the condenser lenses 3, at least in some of the optical channels 10.

[0078] In Figure 4The incident light beam ELB is parallel to the optical axes 5 and 9, so that the incident partial light beams ETLB are focused onto the centers 8.1 of the apertures 8 of the respective projection lenses 7. However, if the incident light beam ELB were to occur slightly obliquely from above, then the incident partial light beams ETLB would be focused somewhat further down onto the apertures 8 of the respective projection lenses 7. Conversely, if the incident light beam ELB were to occur slightly obliquely from below, then the incident partial light beams ETLB would be focused somewhat further up onto the apertures 8. This would have no effect on the angle of incidence 11 of the incident partial light beams ATLB and the resulting partial intensity distributions TIV, as this would only mean a lateral shift of the incident light beam ALB that is negligible in the far field.Thus, the intensity distribution IV is always independent of the angle of incidence of the incident light beam ELB measured relative to the optical axes 5 and 9, provided that the incident partial light beams ETLB are still focused onto the projection lens 7 of the respective channel. The angle of incidence at which this condition is just met is also called the acceptance angle. The acceptance angle is equal to the numerical aperture. N / A of the projection lenses 7. The numerical aperture N / A is calculated to a paraxial approximation as NA = h / 2f from the focal length f and the height h of the projection lenses 7. This corresponds to the acceptance angle of the classic honeycomb condenser of the Figure 1 , so that the independence of the optical beam shaper from the angle of incidence is not limited compared to the classic honeycomb condenser.

[0079] In Figure 4The principal rays 13.2ae of the incidence angle ranges 13.1ae of the optical channels 10a-e are aligned parallel to each other. Furthermore, the principal rays 13.2ae of the incidence angle ranges 13.1ae are aligned parallel to the optical axes 5a-e of the condenser lenses 3a-e of the optical channels 10a-e.

[0080] In the exemplary embodiment of the Figure 4The condenser lens array comprises two condenser lenses 3a-e, each with different apertures 4a-e. Condenser lenses 3b and 3d have apertures 4b and 4d that are significantly larger than apertures 4a, 4c, and 4e of condenser lenses 3a, 3c, and 3e. In contrast, the projection lens array comprises six projection lenses 7a-e, all with the same aperture 8a-e. The optical axes 5a-5e of condenser lenses 3a-e correspond to the optical axes 9a-e of projection lenses 7a-e. The optical axes 5a-e of condenser lenses 3a-e pass through the centroid of the apertures 4a-e of condenser lenses 3a-e. The optical axes 9a-e of the projection lenses 7a-e run through the center of mass of the apertures 8a-e of the projection lenses 7a-e.

[0081] If hn the height of the condenser lens 3a-e of one of the optical channels 10a-e and NA nIf half the angle of incidence range 11a-e of the respective optical channel 10a-e is, then half the angle of incidence range 11a-e of the respective optical channel 10a-e is calculated according to NA n = NA h n h .

[0082] The resulting luminous intensity distribution IV of an optical beam shaper 1 with N Condenser lenses in the far field result from the summation of the emission from its optical channels 10. Assuming homogeneous illuminance (luminance) E The resulting luminous intensity IV in the far field is obtained on the condenser lens array 2 for a condenser lens array 2 with rectangular, densely packed condenser lenses 3 with width and height. wn and hn in paraxial approximation to: I θ x , y = E ∑ n = 1 N A n Ω n ∏ θ x f + Δ x n − δ x n 2 f NA x n ∏ θ y f + Δ y n − δ y n 2 f NA y n mit ∏ x = 0 f ü r x > 1 / 2 1 f ü r x > 1 / 2

[0083] This is An the area of n -ten condenser lenses 3 and Ω n the solid angle of the emission of the nth optical channel 10. Substitution of Anand the paraxially approximated solid angle Ω n A n = w n h n und Ω n = w n h n f 2 simplifies the equation to I θ x , y = E f 2 ∑ n = 1 N ∏ θ x f + Δ x n − δ x n 2 f NA x n ∏ θ y f + Δ y n − δ y n 2 f NA y n .

[0084] The design of a beam shaper 1 for generating an arbitrary light distribution l(θ) The solution of equation (4) requires the following constraints: (i) To achieve high system transmission, the fill factor of the condenser lens array of 2 should ideally be equal to 1, but at least as high as possible. In the case of rectangular condenser lenses 3, this corresponds to the requirement ∑ w n = W und ∑ h n = H where W and H(ii) Describe the overall extent of the condenser lens array 2. (ii) Identically designed groups of adjacent optical channels 10 that can produce the required output illuminance distribution without the participation of further channels 10 are called clusters. The higher the number of clusters of a beam shaper, the greater the homogenization effect, which reduces local fluctuations in illuminance. Eof the incident light beam. Preferably, therefore, more than 10 are provided. (iii) The design of the condenser lens arrays 2 with the smallest possible apertures 4 also serves this purpose. If apertures 4, focal lengths, decenterings, and thus also the distance between the condenser and projection arrays are scaled linearly together, the resulting intensity distribution IV in the far field of the optical beam shaper 1 remains constant. This also applies to the area of ​​a cluster, which should be as small as possible. In order to achieve the étendue of the optical beam shaper 1 required by the specific application, the resulting clusters are replicated as an array until the required element area and thus the required element tendue is achieved.(iv) In polychrome systems, i.e., multicolor systems, embodiments with condenser lenses of different sizes and / or with an offset are preferred over embodiments with deflecting projection lenses for achieving the desired intensity distribution. Regular projection lens arrays 6 are more cost-effective and can be manufactured in better quality and cause lower lateral chromatic aberrations, which manifest themselves as color fringing in the far field under white light illumination.

[0085] The mathematical model described here l(θ x,y ) The method for a separable intensity distribution IV in the far field of an optical beam shaper 1 can also be used for optical beam shaper arrangements with multiple beam shapers 1. It can also be applied, in principle, to non-separable distributions.

[0086] Figure 5shows the angle of incidence ranges 11a-e and the partial intensity distributions TIVBa-e of the emitted partial light beams ATLBa-e of the optical channels 10a-e of the optical beam shaper 1 of the Figure 4 The partial intensity distributions TIVBa-e are normalized to an intensity of 1. It is worth noting that the intensity is the same in each of the reflection angle ranges 11a-e, because although the smaller lenses 3a, 3c, and 3e receive less light, they emit it over a smaller reflection angle range 11a, 11c, and 11e than the larger lenses 3b and 3d with their reflection angle ranges 11b and 11d.

[0087] Figure 6 shows the resulting intensity distribution IV of the emitted light beam ALB of the optical beam shaper 1 of the Figure 4 , which results from the superposition of the failing partial light beam bundles ATLBa-e of the optical channels 10a-e of the optical beam shaper 1.

[0088] In area BHIa, the reflection angle ranges 11b and 11d overlap, resulting in a normalized intensity of 2. In area BHIb, however, the reflection angle ranges 11a-d overlap, resulting in a normalized intensity of 5. Finally, in area BHIc, the reflection angle ranges 11b and 11d again overlap, resulting once more in a normalized intensity of 2.

[0089] With the beam shaper 1 of the Figure 4 Any symmetric intensity distributions IV are possible.

[0090] Figure 7 A second embodiment of an optical beam shaper 1 according to the invention is shown in a schematic cutaway side view.

[0091] According to a convenient embodiment of the invention, the optical axis 5 of the condenser lens 3 of one of the optical channels 10 has an offset 14 to a center 15 of the aperture 4 of the respective condenser lens 3.

[0092] According to a preferred embodiment of the invention, the optical axis 5 of the condenser lens 3 of another of the optical channels 10 has no offset 14 or a different offset 14 to the center 15 of the aperture 4 of the respective condenser lens 3.

[0093] Also in Figure 7 The principal rays 13.2ae of the incidence angle ranges 13.1ae of the optical channels 10a-e are aligned parallel to each other. Furthermore, the principal rays 13.2ae of the incidence angle ranges 13.1ae are aligned parallel to the optical axes 5a-e of the condenser lenses 3a-e of the optical channels 10a-e.

[0094] If δ If the offset 14 of a condenser lens 3 of one of the optical channels 10 is specified, then the respective emitted partial light beam ATLB is, in paraxial approximation, offset by an angle relative to the optical axis 9 of the associated projection lens 7. δ n / finclined, so that the offset 14 results in a deflection of the respective falling partial light beam ATLB.

[0095] In the exemplary embodiment of the Figure 7 The condenser lens array 2 comprises condenser lenses 3a, 3b, 3d, and 3e, each with an offset 14a, 14b, 14d, and 14e, respectively. The optical axes 5a, 5b, 5d, and 5e of condenser lenses 3a, 3b, 3d, and 3e therefore do not pass through the centroid 15a, 15b, 15d, and 15e of apertures 4a, 4b, 4d, and 4e of condenser lenses 3a, 3b, 3d, and 3e. Only the optical axis 5c of the unoffset condenser lens 3c passes through the centroid 15c of its aperture 4c. In contrast, the projection lens array 6 comprises only projection lenses 7a-e, which have no offset. All optical axes 9a-e of the projection lenses 7a-e therefore pass through the center of gravity 8.1ae of the apertures 8a-e of the projection lenses 7a-e.

[0096] Condenser lens array 2 has condenser lenses 3a-e, which have significantly different apertures 4a-e. In contrast, projection lens array 6 has projection lenses 7a-e, which have almost the same aperture 8a-e.

[0097] Due to the offset 14a, the distance between the center of projection lens 7a and the center 15a of condenser lens 3a in optical channel 10a is greater than the distance between the center of projection lens 7c and the center 15c of condenser lens 3c in optical channel 10c. Therefore, in order for the acceptance angle range 13.1a to be equal to the acceptance angle range 13.1b, the aperture 8a of condenser lens 7a is slightly larger than the aperture 8c of condenser lens 7c. This also applies analogously to the other optical channels 10b, 10d, and 10e, which have offsets 14b, 14d, and 14e, respectively.

[0098] The numerical aperture NA is calculated here in a paraxial approximation as follows: NA = h / 2f out the focal lengthf and the height h the projection lens 7c, which has the smallest aperture 8c. This corresponds approximately to the acceptance angle of the classic honeycomb condenser of the Figure 1 , so that the independence of the optical beam shaper according to the invention from the direction of incidence is hardly restricted compared to the classic honeycomb condenser.

[0099] Figure 8 shows the emission angle ranges 11a-e and the partial intensity distributions TIVa-e of the emitted partial light beams ATLBa-e of the optical channels 10a-e of the optical beam shaper 1 of the Figure 7 .

[0100] Figure 9 shows the resulting intensity distribution of the emitted light beam of the optical beam shaper of the Figure 7 .

[0101] With the beam shaper 1 of the Figure 7 Any asymmetric or symmetric intensity distributions IV are possible.

[0102] Figure 10Figure 1 shows a third embodiment of an optical beam shaper 1 according to the invention in a schematic sectional side view. The third embodiment is based on the second embodiment, but has the following special feature: While the projection lens array 6, as before, has five projection lenses 7a-e, the condenser lens array 2 now has only three condenser lenses 3a-c. This makes it possible, in the example of the Figure 10 , to provide a particularly large aperture 4b for the condenser lenses 3b, which allows a particularly large reflection angle range 11b.

[0103] In this configuration, condenser lens 3a and projection lens 7a form a first optical channel 10a, condenser lens 3b and projection lens 7b a second optical channel 10b, and condenser lens 3c and projection lens 7c a third optical channel 10a. Projection lenses 7d and 7e have no optical function and could therefore be omitted. However, it may still be advantageous to include projection lenses 7d and 7e, as this allows the projection lens array 6 to be manufactured using the same mold as the projection lens array 6 of the second embodiment.

[0104] In an embodiment not shown, the condenser lens array 2 has more condenser lenses 3 than the projection lens array 6 has projection lenses 7. In this case, one of the projection lenses 7 can be associated with several of the condenser lenses 3, so that this projection lens 7 is part of several of the optical channels 10.

[0105] In the exemplary embodiment of the Figure 10 Optical channels 10a and 10c have an offset that is not shown for clarity. Therefore, the apertures 8a and 8c of projection lenses 7a and 7c are slightly larger than the aperture 8b of projection lens 7b to ensure that the permissible angles of incidence 13.1a and 13.1c are the same as the permissible angle of incidence 13.1b.

[0106] Figure 11shows the emission angle ranges 11a-c and the partial intensity distributions TIVa-c of the emitted partial light beams ATLBa-c of the optical channels 10a-c of the optical beam shaper 1 of the Figure 10 .

[0107] Figure 12 shows the resulting intensity distribution IV of the emitted light beam ALB of the optical beam shaper 1 of the Figure 10 .

[0108] Figure 13 Figure 1 shows a fourth embodiment of an optical beam shaper 1, which is not claimed, in a schematic sectional side view;

[0109] According to an advantageous further development of the invention, the optical axis 9 of the projection lens 7 of one of the optical channels 10 has an offset 16 to the center 8.1 of the aperture 8 of the respective projection lens 7.

[0110] According to an advantageous embodiment of the invention, the optical axis 9 of the projection lens 7 of another of the optical channels 10 has no offset 14 or a different offset 14 to the center 8.1 of the aperture 8 of the respective projection lens 7.

[0111] If Δ If the offset 16 of a projection lens 7 of one of the optical channels 10 is specified, then the respective emitted partial light beam ATLB is, in paraxial approximation, offset by an angle relative to the optical axis 9 of the projection lens 7. Δ n / f inclined, so that the offset 16 results in a deflection of the respective falling partial light beam ATLB.

[0112] In the non-inventive example of the Figure 13The projection lens array comprises 6 projection lenses 7a, 7b, 7d, and 7e, each with an offset 16a, 16b, 16d, and 16e, respectively. The optical axes 9a, 9b, 9d, and 9e of projection lenses 7a, 7b, 7d, and 7e therefore do not pass through the centroid 8.1a, 8.1b, 8.1d, and 8.1e of apertures 8a, 8b, 8d, and 8e of projection lenses 7a, 7b, 7d, and 7e. Only the optical axis 9c of the unoffset projection lens 7c passes through the centroid 8.1c of aperture 8c. In contrast, the condenser lens array 2 comprises only condenser lenses 3a-e, which have no offset. All optical axes 5a-e of the condenser lenses 3a-e therefore run through the center of gravity 15a-e of the apertures 4a-e of the condenser lenses 3a-e.

[0113] Condenser lens array 2 comprises condenser lenses 3a-e, which have identical apertures 4a-e. Similarly, projection lens array 6 comprises projection lenses 7a-e, which have the same aperture 8a-e.

[0114] The numerical aperture NA is also calculated here using a paraxial approximation as follows: NA = h / 2f from the focal length f and the height h of the projection lenses 7. This corresponds to the acceptance angle of the classic honeycomb condenser of the Figure 1 , so that the independence of the optical beam shaper according to the invention from the direction of incidence is not limited compared to the classical honeycomb condenser.

[0115] The projection lens array 6 of the Figure 13 can also be used with the condenser lens arrays 2 of the Figures 4 , 7 and 10 can be combined.

[0116] By using suitable combinations of differently sized, and optionally deflecting, condenser lenses 3, any desired intensity distribution IV can be generated in the far field. Optionally, deflecting projection lenses 7 allow for a further increase in the divergence of the resulting intensity distribution IV in the far field and greater design flexibility. The resulting beam shaper 1 retains the large acceptance angle and high transmission of the classic honeycomb condenser.

[0117] For clarity, the incidence angle ranges of optical channels 10a to 10e are shown in Figure 13 not shown, but they correspond to the angle of incidence ranges of the Figure 1 shown classic honeycomb condenser.

[0118] Figure 14 shows the emission angle ranges 11a-e and the partial intensity distributions TIVa-e of the emitted partial light beams ATLBa-e of the optical channels 10a-e of the optical beam shaper 1 of the Figure 13 .

[0119] Figure 15 shows the resulting intensity distribution IV of the emitted light beam ALB of the optical beam shaper 1 of the Figure 13 .

[0120] Figure 16 Figure 1 shows a fifth embodiment of an optical beam shaper 1 according to the invention in a schematic sectional side view. For clarity, the beam paths of the optical channels 10b, 10d and 10f are not shown. It is essential, however, that the permissible angle of incidence ranges 13.1 of all optical channels 10a to 10f are of equal magnitude.

[0121] According to a preferred embodiment of the invention, the principal rays 13.2 of the permissible angle of incidence ranges 13.1 are oblique to each other at least in some of the optical channels 10. This enables the use of the optical beam shaper 1 in cases where at least some of the incident partial light beams ETLB of the incident light beam ELB are oblique to each other.

[0122] This is how it works in the example of the Figure 16 The incident partial light beams ETLBa, ETLBc, and ETLBe are oblique to each other. This is taken into account by the fact that the main beams 13.2a, 13.2c, and 13.2e are also oblique to each other. Main beam 13.2a runs parallel to the incident partial light beam ETLBa, main beam 13.2c parallel to the incident partial light beam ETLBc, and main beam 13.2e parallel to the incident partial light beam ETLBe.

[0123] The essential point is that the values ​​of the permissible angle of incidence ranges 13.1a, 13.1c and 13.1e are equal, even if the permissible angle of incidence ranges 13.1a, 13.1c and 13.1e have different orientations.

[0124] Figure 17 Figure 1 shows a fifth embodiment of an optical beam shaper 1 according to the invention in a schematic oblique view. The projection lenses 7 of the projection lens array 6 are, by way of example, square and horizontally decentered.

[0125] Figure 18 shows the condenser lens array 6 of the optical beam shaper 1 of the Figure 17 in a schematic spatial oblique view.

[0126] According to a preferred embodiment of the invention, the condenser lens array 2 is arranged on a first side of a substrate 17 and the projection lens array 6 is arranged on a second opposite side of the substrate 17.

[0127] According to a further advantageous embodiment of the invention, the condenser lenses 3 of the condenser lens array 2 comprise rectangular and square condenser lenses 3, wherein the projection lenses 7 of the projection lens array 6 comprise square or rectangular projection lenses 7.

[0128] According to a preferred embodiment of the invention, the condenser lens 3 with the smaller aperture 4 has a smaller extent in the direction of its optical axis 9 than the condenser lens 3 with the larger aperture 4.

[0129] The projection lenses 7 of the projection lens array 6 are square and arranged in a regular, checkerboard pattern. All of the projection lenses 7 are identical and therefore have the same focal length and thickness. Such a projection lens array 6 has a high fill factor and is particularly easy to manufacture.

[0130] The condenser lenses 3 of the condenser lens array 2 comprise square condenser lenses 3a with a larger aperture, square condenser lenses 3b with a smaller aperture, and rectangular condenser lenses 3c, the longer side of which abuts one side of condenser lenses 3a and the shorter side of which abuts one side of condenser lenses 3b. The thickness of the condenser lenses 3a, 3b, and 3c is identical. Such a condenser lens array 2 is also relatively easy to manufacture, since all lenses 3 have the same curvature on their outer surface.However, this results in interference edges at the edges of the condenser lenses 3, particularly at the edges of the smaller square condenser lenses 3b and the rectangular condenser lenses 3c. These interference edges can lead to unwanted stray light, which on the one hand reduces the transmission of the optical beam modifier 1 and on the other hand can uncontrollably superimpose the intensity distribution IV in the far field. To prevent this, the smaller condenser lenses 3b and 3c can be designed with a reduced thickness compared to the larger condenser lenses 3a. To avoid aberrations and a reduction in the acceptance angle, both of which can occur because the reduced thickness results in the respective condenser lenses 3b and 3c being positioned closer to their respective projection lenses, it may then be necessary to adjust the curvature of the outer surfaces of the condenser lenses 3b and 3c.It may also be necessary to adjust the curvature of the respective assigned projection lens 7. In many cases, the defocusing caused by the reduced thickness can also be neglected. For typical numerical apertures... N / A For values ​​≤ 0.2, this effect is negligible. Should a noticeable disturbance occur at higher numerical apertures, the curvature of the affected condenser lenses 3 can be adjusted to achieve an optimally focused image of the source on the associated projection lenses 7. This is achieved using least-squares optimization methods commonly used in optical design.

[0131] Undesired interference edges can also occur with decentered condenser lenses or decentered projection lenses 7. However, since the divergence of the incident light during regular operation is smaller than the acceptance angle of the beam shaper 1, there are no light components on the interference edges of the projection array. This case is therefore not critical for the application.

[0132] Figure 19 Figure 1 shows a first embodiment of an optical beam shaping arrangement 18 according to the invention in a schematic side view.

[0133] The optical beam shaping arrangement 18 for generating an outgoing light beam ALB from an incident light beam ELB comprises a first optical beam shaping device 1a according to the invention and a second optical beam shaping device 1b according to the invention, wherein the first optical beam shaping device 1a and the second optical beam shaping device 1b are arranged along a common plane 19, and wherein the intensity distribution IV of the first optical beam shaping device 1a and the intensity distribution IV of the second optical beam shaping device 1b differ.

[0134] The incident light beam ELB of the beam-shaping arrangement 18 consists of the incident light beam ELBa from the first optical beam-shaping device 1a and the incident light beam ELBb from the second optical beam-shaping device 1b. The incident light beam ELBa from the first optical beam-shaping device and the incident light beam ELBb from the second optical beam-shaping device 1b can originate from the same light source. The intensity distribution of the outgoing light beam ALB of the optical beam-shaping arrangement 18 then results from the superposition of the intensity distribution IV of the outgoing light beam ALBa from the first optical beam-shaping device 1a and the intensity distribution of the outgoing light beam ALBb from the second optical beam-shaping device 1b.

[0135] Figure 20 Figure 2 shows a second embodiment of an optical beam shaping arrangement 20 according to the invention in a schematic side view.

[0136] The optical beam shaping arrangement for generating an outgoing light beam ALB from an incident light beam ELB comprises a first optical beam shaping device 1a according to the invention and a second optical beam shaping device 1b according to the invention, wherein the first optical beam shaping device 1a and the second optical beam shaping device 1b are arranged such that at least a part of the outgoing light beam ALBa of the first optical beam shaping device 1a is supplied to the second optical beam shaping device 1b as its incident light beam ELBb.

[0137] The incident light beam ELBa of the first optical beam shaper 1a is simultaneously the incident light beam ELB of the beam shaper arrangement 20. Furthermore, the emitted light beam ALBb of the second optical beam shaper 1b is simultaneously the emitted light beam ALB of the beam shaper arrangement 20.

[0138] Figure 21A first embodiment of an optical system 21 according to the invention is shown in a schematic side view.

[0139] The optical system 21 for generating a focused outgoing light beam FALB from an incident light beam ELB comprises an optical beam shaper 1 according to the invention and a collecting optic 22 for focusing the outgoing light beam ALB of the optical beam shaper 1 onto a plane EB.

[0140] In a second embodiment not shown, the optical system 21 for generating an outgoing light beam FALB from an incident light beam ELB comprises an optical beam shaper arrangement 19, 20 according to the invention and a collecting optic 22 for focusing the outgoing light beam ALB of the optical beam shaper arrangement onto a plane EB.

[0141] By combining the optical beam shaper 1 or the optical beam shaper arrangement 19, 20 with a focusing lens 22, a transformation of the angle-related intensity distribution into a planar illuminance distribution with several homogeneous areas, which have different illuminances, is possible in the focal plane of this lens 22. Reference symbol:

[0142] 1 Optical beam shaper 2 Condenser lens array 3 Condenser lens 4 Aperture of a condenser lens 5 Optical axis of a condenser lens 6 Projection lens array 7 Projection lens 8 Aperture of a projection lens 8.1 Center of an aperture of a projection lens 9 Optical axis of a projection lens 10 Optical channel 11 Angle of incidence range 12 Focal point of a condenser lens 13 Focal point of a projection lens 13.1 Permissible angle of incidence range of an optical channel 13.2 Principal ray of the permissible angle of incidence range 14 Offset between optical axis of a condenser lens and center of aperture of the condenser lens 15 Center of aperture of a condenser lens 16 Offset between optical axis of a projection lens and center of aperture of the projection lens 17 Substrate 18 Beam shaper arrangement 19 Common planes 20 Beam shaper arrangement 21 Optical system 22 Collectible optics ALB Outgoing light beam EL Incident light beam AFW Angle of incidence IV Intensity distribution BHI Area with homogeneous intensity ETL Incident partial light beam TIV Partial intensity distribution ATLB Outgoing partial light beam EB Plane FALB Focused outgoing light beam Sources:

[0143] [1] Enrico Geißler, "Meeting the Challenges of Developing LED-based Projection Displays", SPIE 6169 (2006) 619601. [2] Peter Schreiber, Sergey Kudaev, Peter Dannberg, Uwe D. Zeitner, "Homogeneous LED-illumination using microlens arrays", SPIE 5942 (2005) 188-96. [3] Julius Muschaweck, “Randomized Micro Lens Arrays for Color Mixing,” SPIE 7954 (2011) 79540A. [4] Marcel Sieler, Peter Schreiber, Peter Dannberg, Andreas Bräuer, Andreas Tünnermann, "Ultraslim fixed pattern projectors with inherent homogenization of illumination", Appl. Opt. 51 (2012) 64-74.

Claims

1. Optical beam former for generating an emerging light beam (ALB) from an incident light beam (ELB), the optical beam former (1) including: a condenser lens array (2) for receiving the incident light beam (ELB), comprising several condenser lenses (3), wherein the condenser lenses (3) each comprise an aperture (4) and an optical axis (5), wherein the optical axes (5) of the condenser lenses (3) extend in parallel to each other; and a projection lens array (6) for radiating the emerging light beam (ALB), arranged in parallel to the condenser lens array (2) and comprising several projection lenses (7), wherein the projection lenses (7) each comprise an aperture (8) having a center (8.1), and an optical axis (9); wherein exactly one of the projection lenses (7) is assigned to each of the condenser lenses (3) so that each of the condenser lenses (3) and the respectively assigned projection lens (7) form an optical channel (10) of several optical channels (10) and so that each of the several optical channels (10) generates a partial light beam (ATLB) of the emerging light beam (ALB), said partial light beam emerging in an angle-of-emergence range (11) with a partial intensity distribution (TIV) that is homogenous with respect to an angle of emergence (AFW), from a partial light beam (ETLB) of the incident light beam (ELB), said partial light beam being incident within an admissible angle-of-incidence range (13.1) of the respective optical channel (10), wherein the admissible angle-of-incidence ranges (13.1) of the optical channels (10) have the same size as to their magnitude in a plane extending in parallel to the optical axes (5) of the condenser lenses (3); and wherein the angle-of-emergence ranges (11) of at least two of the optical channels (10) are different so that an intensity distribution (IV) with respect to the angle of emergence (AFW) comprises in a far field of the emerging light beam (ALB) several regions (BHI) having a homogenous intensity; wherein the apertures (8) of the projection lenses (7) are similar, i.e. correspond to each other regarding form and surface area; and wherein the aperture (4) of the condenser lens (3) of one of the optical channels (10) is larger than the apertures (8) of the projection lenses (7), and wherein the aperture (4) of the condenser lens (3) of another one of the optical channels (10) is smaller than the apertures (8) of the projection lenses.

2. Optical beam former according to claim 1, wherein main rays (13.2) of the admissible angle-of-incidence ranges (13.1) extend in parallel at least in some of the optical channels (10).

3. Optical beam former according to claim 1, wherein main rays (13.2) of the admissible angle-of-incidence ranges (13.1) extend in parallel to the optical axes (5) of the condenser lenses (3) at least in some of the optical channels (10).

4. Optical beam former according to claim 1, wherein main rays (13.2) of the admissible angle-of-incidence ranges (13.1) extend obliquely with respect to each other at least in some of the optical channels (10).

5. Optical beam former according to any one of the preceding claims, wherein, in each of the several optical channels (10), a focal point (12) of the respective condenser lens (3) in the direction of the optical axis (5) of the respective condenser lens (3) is located in a region of the projection lenses (7), and a focal point (13) of the respective projection lens (7) in the direction of the optical axis (9) of the respective projection lens (7) is located in a region of the condenser lenses (3).

6. Optical beam former according to any one of the preceding claims, wherein at least two of the different angle-of-emergence ranges (11) overlap each other.

7. Optical beam former according to any one of the preceding claims, wherein, in each of the optical channels, the optical axis (5) of the respective condenser lens (3) is equal to the optical axis (9) of the respective projection lens (7).

8. Optical beam former according to any of the preceding claims, wherein the optical axis (5) of the condenser lens (3) of one of the optical channels (10) comprises an offset (14) with respect to a center (15) of the aperture of the respective condenser lens (3).

9. Optical beam former according to the preceding claim, wherein the optical axis (5) of the condenser lens (3) of another one of the optical channels (10) does not comprise an offset (14) or comprises a different offset (14) with respect to the center (15) of the aperture (14) of the respective condenser lens (3).

10. Optical beam former according to any of the preceding claims, wherein the optical axis (9) of the projection lens (7) of one of the optical channels (10) comprises an offset (16) with respect to the center (8.1) of the aperture (8) of the respective projection lens (7).

11. Optical beam former according to the preceding claim, wherein the optical axis (9) of the projection lens (7) of another one of the optical channels (10) does not comprise an offset (14) or comprises a different offset (14) with respect to the center (8.1) of the aperture (8) of the respective projection lens (7).

12. Optical beam former according to any one of the preceding claims, wherein, in each of the optical channels (10), the respective condenser lens (3) focuses the respective incident partial light beam (ETLB) onto the center (8.1) of the aperture (8) of the respective projection lens (7) if the respective incident partial light beam (ETLB) is incident in parallel to the optical axis (5) of the respective condenser lens (3).

13. Optical beam former according to any one of claims 1 to 11, wherein, in each of the optical channels (10), the respective condenser lens (3) focuses the respective incident partial light beam (ETLB) onto the center (8.1) of the aperture (8) of the respective projection lens (7) if the respective incident partial light beam (ETLB) is incident at an angle with respect to the optical axis (5) of the respective condenser lens (3).

14. Optical beam former arrangement for generating an emerging light beam (ALB) from an incident light beam (ELB), wherein the beam former arrangement (18) comprises a first optical beam former (1a) according to any one of claims 1 to 13 and a second optical beam former (1b) according to any one of claims 1 to 13, wherein the first optical beam former (1a) and the second optical beam former (1b) are arranged along a mutual plane (19), and wherein the intensity distribution (IV) of the first optical beam former (1a) and the intensity distribution (IV) of the second optical beam former (1b) are different.

15. Optical beam former arrangement for generating an emerging light beam (ALB) from an incident light beam (ELB), wherein the beam former arrangement (20) comprises a first optical beam former (1a) according to any one of claims 1 to 13 and a second optical beam former (1b) according to any one of claims 1 to 13, wherein the first optical beam former (1a) and the second optical beam former (1b) are arranged such that at least a part of the emerging light beam (ALBa) of the first optical beam former (1a) is provided to the second optical beam former (1b) as its incident light beam (ELBb).