Illumination device for a vehicle headlamp
12474026 · 2025-11-18
Assignee
Inventors
- Sunjung Park (Seoul, KR)
- Bernhard MANDL (Seoul, KR)
- Benedikt KRIST (Vienna, AT)
- Jakob Pühringer (Vienna, AT)
Cpc classification
F21S41/143
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/151
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/147
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W2102/135
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/285
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/322
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21S41/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/147
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/151
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21W102/135
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Illumination device (10) for a motor vehicle headlamp for generating a low beam, wherein a vertical extension of the low beam extends along a VV-line from at least 0 down to at least 10 on the VV-line, said illumination device (10) comprises: an optic body (100) comprising a common light input section (110), a light output section (130) and a shell surface (140) limiting the optic body (100), a projection lens system (200) configured to project the light-rays in front of the illumination device (10), wherein the projection lens system (200) in combination with the optic body (100) are configured to generate the low beam illuminated by the projection lens system (200), wherein the optic body (100) comprises a first set of optically operative surfaces for guiding light-rays along a first light-ray path (LR1), wherein the first set of operative surfaces comprises a first and second light deflection surface (300a, 300b), and a first light exit surface (300c), wherein the first and second light deflection surfaces (300a, 300b) are arranged on the shell surface (140), and wherein the first light exit surface (300c) is arranged on the light output section (130), wherein light rays following the first light-ray path (LR1) are incident on the first deflection surface (300a) and are deflected to the second deflection surface (300b), and wherein light-rays incident on the second deflection surface (300b) are deflected to the first light exit surface (300c), and wherein light-rays emitted by the first light exit surface (300c) contribute to generate a first part of the low beam, and wherein the optic body (100) comprises a second set of optically operative surfaces for guiding light-rays along a second and a third light-ray path (LR2, LR3), wherein the second set of optically operative surfaces comprises a third deflection surface (400a) and a second light exit surface (400b), wherein the third deflection surface (400a) is arranged on the shell surface (140) and the second light exit surface (400b) is arranged on the light output section (130) separate from the first light exit surface (300c), wherein light-rays following the second light-ray path (LR2) are incident on the third deflection surface (400a) and are deflected to the second light exit surface (400b) for coupling out of the optic body (100), and wherein light rays following the third light-ray path (LR3) are incident on the second light exit surface (400b) directly from the common light input section (110), wherein light-rays emitted by the second light exit surface (400b) contribute to generate a second part of the low beam.
Claims
1. An illumination device (10) for a motor vehicle headlamp for generating a low beam, wherein a vertical extension of the low beam extends along a V-V line from at least 0 down to at least 10 on the V-V line, said illumination device (10) comprising: at least one light source (50) configured to emit light-rays in different light-ray paths; an optic body (100) which comprises: a common light input section (110) for coupling light-rays from the at least one light source (50) into the optic body (100), said light input section (110) having at least one light collecting element (120), which is assigned to a respective light source (50) and is configured to couple light rays from the assigned light source (50) into the optic body (100), a light output section (130) for decoupling light-rays that are coupled into the optic body (100) via the common light input section (110), out of the optic body (100) in a main direction (X) of the illumination device (10), and a shell surface (140) limiting the optic body (100), said shell surface (140) is configured to deflect light rays coupled into the optic body (100), which shell surface (140) extends between the common light input section (110) and the light output section (130); and a projection lens system (200), comprising at least one lens, arranged downstream of the optic body (100) along the main direction (X) in order to receive light-rays emitted from light output section (130) of the optic body (100), wherein the projection lens system (200) is configured to project the light-rays in front of the illumination device (10), wherein the projection lens system (200) in combination with the at least one light source (50) and the optic body (100) are configured to generate the low beam illuminated by the projection lens system (200), wherein the optic body (100) comprises a first set of optically operative surfaces for guiding at least a part of the light-rays coupled into the optic body (100) via the common light input section (110) along a first light-ray path (LR1) from the common light input section (110) to the light output section (130), wherein the first set of operative surfaces comprises a first and second light deflection surface (300a, 300b), and a first light exit surface (300c), wherein the first and second light deflection surfaces (300a, 300b) are arranged on the shell surface (140), and wherein the first light exit surface (300c) is arranged on the light output section (130), wherein light rays following the first light-ray path (LR1) are incident on the first deflection surface (300a) and are deflected to the second deflection surface (300b), and wherein light-rays incident on the second deflection surface (300b) are deflected to the first light exit surface (300c) for coupling out of the optic body (100), wherein light-rays emitted by the first light exit surface (300c) contribute to generate a first part of the low beam, wherein the optic body (100) comprises a second set of optically operative surfaces for guiding at least a part of light-rays coupled into the optic body (100) via the common light input section (110) along a second and a third light-ray path (LR2, LR3) from the common light input section (110) to the light output section (130), wherein the second set of optically operative surfaces comprises a third deflection surface (400a) and a second light exit surface (400b), wherein the third deflection surface (400a) is arranged on the shell surface (140) and the second light exit surface (400b) is arranged on the light output section (130) separate from the first light exit surface (300c), wherein light-rays following the second light-ray path (LR2) are incident on the third deflection surface (400a) and are deflected to the second light exit surface (400b) for coupling out of the optic body (100), and wherein light rays following the third light-ray path (LR3) are incident on the second light exit surface (400b) directly from the common light input section (110), wherein light-rays emitted by the second light exit surface (400b) contribute to generate a second part of the low beam, wherein the first part of the low beam contributed by the first light exit surface (300c) and the second part of the low beam contributed by the second light exit surface (400b) form a low beam, wherein the vertical extension of the low beam extends along the V-V line from at least 0 down to lower 10 on the V-V line, and wherein the first light exit surface (300c) and the shell surface (140) intersect in a common surface section line (150), which builds an asymmetric cut-off boundary for the low beam.
2. The illumination device according to claim 1, wherein the second deflection surface (300b) and the third deflection surface (400a) are connected via a convex connection surface.
3. The illumination device according to claim 1, wherein the projection lens system (200) comprises an optical axis (A), wherein the first light exit surface (300c) has a surface vector, which is inclined to the optical axis (A) of the projection lens system (200).
4. The illumination device according to claim 3, wherein the second light exit surface (400b) has a surface vector, which is inclined to the optical axis (A) of the projection lens system (200).
5. The illumination device according to claim 1, wherein the light collecting element (120) is built as collimating optics.
6. The illumination device according to claim 1, wherein the light collecting element (120) comprises: a first lens (120a) with an optical axis (A1), wherein the first lens (120a) is configured to direct light incident on the first lens (120a) onto the first light ray path (LR1), and a second lens (120b) with an optical axis (A2), wherein the second lens (120b) is configured to direct light incident on the second lens (120b) onto the third light ray path (LR3), wherein the first and second lenses (120a, 120b) are arranged directly next to each other in a way that their optical axes (A1, A2) have an offset to each other in a horizontal direction and/or in a vertical direction.
7. The illumination device according to claim 6, wherein the optical axes (A1, A2) of the first and second lens (120a, 120b) of the light collecting element (120) are pivoted to each other around an axis orthogonal to the main direction (X).
8. The illumination device according to claim 1, wherein the light collecting element (120) is built as a Compound Parabolic Concentrator.
9. The illumination device according to claim 8, wherein the Compound Parabolic Concentrator is a non-imaging Compound Parabolic Concentrator.
10. The illumination device according to claim 1, wherein the projection lens system (200) comprises an optical axis (A) and at least one focal point (F) arranged on the optical axis (A), and wherein the common surface section line (150) is arranged in the at least one focal point (F).
11. The illumination device according to claim 1, wherein the common light input section (110) and light output section (130) have an offset to each other along the main direction (X).
12. The illumination device according to claim 1, wherein the illumination device (10) comprises at least two light sources (50), wherein the light sources (50) are arranged in a horizontal line substantially orthogonal to the main direction (X).
13. The illumination device according to claim 1, wherein the at least one light source (50) is a LED.
14. A motor vehicle headlamp comprising at least one illumination device (10) according to claim 1.
Description
(1)
(2)
(3)
(4)
(5)
(6)
(7) The illumination device 10 comprises a plurality of light sources 50 configured to emit light-rays in different light-ray paths, wherein the plurality of light sources 50 are built as LEDs in the shown example. Also, the light sources 50 are arranged in a horizontal line substantially orthogonal to the main direction X.
(8) Further, the illumination device 10 comprises an optic body 100, which is shown in
(9) Further, the optic body 100 comprises a light output section 130 for decoupling light-rays that are coupled into the optic body 100 via the common light input section 110, out of the optic body 100 in a main direction X of the illumination device 10, and a shell surface 140 limiting the optic body 100, said shell surface 140 is configured to deflect light rays coupled into the optic body 100, which shell surface 140 extends between the common light input section 110 and the light output section 130.
(10) The common light input section 110 and light output section 130 having an offset to each other along the main direction X and along an axis orthogonal to the main direction X.
(11) The illumination device 10 further comprises a projection lens system 200, comprising at least one lens (and in the shown example in the figures the projection lens system 200 comprises two lenses), arranged downstream of the optic body 100 along the main direction X in order to receive light-rays emitted from light output section 130 of the optic body 100, wherein the projection lens system 200 is configured to project the light-rays in front of the illumination device 10, wherein the projection lens system 200 in combination with the at least one light source 50 and the optic body 100 are configured to generate the low beam light distribution illuminated by the projection lens system 200.
(12) With regard to
(13) The first set of operative surfaces comprises a first and second light deflection surface 300a, 300b, and a first light exit surface 300c, wherein the first and second light deflection surfaces 300a, 300b are arranged on the shell surface 140, and wherein the first light exit surface 300c is arranged on the light output section 130.
(14) Light rays following the first light-ray path LR1 are incident on the first deflection surface 300a and are deflected to the second deflection surface 300b, and wherein light-rays incident on the second deflection surface 300b are deflected to the first light exit surface 300c for coupling out the light of the optic body 100, wherein light-rays emitted by the first light exit surface 300c contribute to generate a first part of the low beam LB1, which is shown in
(15) The optic body 100 further comprises a second set of optically operative surfaces for guiding at least a part of light-rays coupled into the optic body 100 via the common light input section 110 along a second and a third light-ray path LR2, LR3 from the common light input section 110 to the light output section 130.
(16) The second set of optically operative surfaces comprises a third deflection surface 400a and a second light exit surface 400b, wherein the third deflection surface 400a is arranged on the shell surface 140 and the second light exit surface 400b is arranged on the light output section 130 separate from the first light exit surface 300c.
(17) Light-rays following the second light-ray path LR2 are incident on the third deflection surface 400a and are deflected to the second light exit surface 400b for coupling out of the optic body 100, and wherein light rays following the third light-ray path LR3 are incident on the second light exit surface 400b directly from the common light input section 110, wherein light-rays emitted by the second light exit surface 400b contribute to generate a second part of the low beam LB2, also shown in
(18) The first part of the low beam LB1 contributed by the first light exit surface 300c and the second part of the low beam LB2 contributed by the second light exit surface 400b form a low beam, wherein the vertical extension of the low beam extends along the V-V linefrom at least 0 down to at least 10 on the V-V line.
(19) As can be also seen in
(20) Further, the first light exit surface 300c and the shell surface 140 intersect in a common surface section line 150, said common surface section line 150 builds the asymmetric cut-off boundary for the low beam light distribution, wherein the projection lens system 200 comprises an optical axis A and at least one focal point F arranged on the optical axis A, and wherein the common surface section line 150 is arranged in the at least one focal point F, as can be seen in
(21) The first light exit surface 300c of the optic body 100 having a surface vector SV1, said surface vector SV1 is inclined to the optical axis A of the projection lens system 200, so that the first light exit surface 300c is inclined, wherein the surface vector SV1 of the first light exit surface 300 isseen in a correctly installed state of the illumination device 10 in a vehicle headlamp or vehicleinclined upward.
(22) Also, the second light exit surface 400b having a surface vector SV2, said surface vector SV2 is inclined to the optical axis A of the projection lens system 200, so that the second light exit surface 400b is inclined, wherein the surface vector SV2 of the second light exit surface 400b isseen in a correctly installed state of the illumination device 10 in a vehicle headlamp or vehicleinclined upward.
(23)
(24) Further, as can be seen in
(25) Further,
(26) Moreover, light-rays emitted by the second light exit surface 400b contribute to generate the second part of the low beam LB2, wherein the first and second part of the low beam LB1, LB2 together extends down to an angle 2 on the V-V line, wherein the angle 2 in the shown example is at least 10 starting from 0, the position of the V-V line or the intersection point of the V-V line with the H-H line.
(27)
(28) The first and second lenses 120a, 120b are arranged directly next to each other in a way that their optical axes A1, A2 having an offset to each other in a horizontal direction and/or in a vertical direction.
(29) The terms up, down, vertical, horizontal, forward, front, backward and back are to be understood from an illumination device in a correctly installed state in a vehicle headlamp or in a vehicle.
(30) The optical axes A1, A2 of the first and second lens 120a, 120b of each light collecting element 120 in the shown example in the figures are pivoted to each other around an axis orthogonal to the main direction X.
(31) Also, the first and second lenses 120a, 120b of each light collecting element 120 has a central lens-like surface and total-reflecting surfaces at the periphery.
(32)