The present invention relates to an optical lighting device and the technical field applied thereof, and more particularly, to an optical lighting device for vehicles.
The devise of bicycle lamps usually follows the protocols: firstly, the cut-off line should be no upside flood light and at proper height avoiding the beam dazzling the vision of the drivers and the pedestrians; secondly, the light distribution area should be wide enough as to cover the vision at front of both sides.
Generally, the formation of the cut-off line is formed by the emitting light which is refracted inside of the light cup deployed in front of the light source. However, after the light went through the progress of reflection and the diffusion, it generates energy consumption and lit deficiency.
US20100149801A1 discloses an optical lens and light emitting diode (LED) illuminating device thereof. The provisional application utilizes a Toric surface formula to contour the optical surface being axial symmetry in M shape with an concave inner and an convex outer. Having such special structure on the optical surface makes it difficult to produce.
U.S. patent application No. US2015/0330589 discloses a headlight for vehicles Wherein the optical unit comprises two lens element with different geometrical shapes to form a predetermined light distribution. Said provisional patent employs two different shapes of lens and adopts no light cup for headlight to meet the requirement which makes the structure more complicated.
The objective of present invention is provide a solution downsizing the optical elements and simplifying the structure at the same time.
The objective of present invention is provide an optical lighting device having one light source by one optical lens formation for generating a predetermined light distribution area by primary optical projection to achieve the performance of minimum elements and simplified configuration. The optical lighting device applied on vehicles, such as bicycle, complies with the regulation and utilization for vehicle lamps.
To achieve aforementioned goal and the performance, the present invention reveals an optical lighting device having a light incident surface and a light emitting surface, wherein at least either of the light incident surface or the light emitting surface forms a first anamorphic asphere. A first light source is positioned on one side of the optical element and opposite to the light incident surface, wherein the first light source projects a predetermined shape of light distribution area and forms a cut-off line on the upper fringe of the light distribution area after the light transmits out of the light emitting surface by the refraction of the first anamorphic asphere when the light directly projects into the light incident surface.
As shown in
Noticeably, at least either of the light incident surface 12 or the light emitting surface 14 forms a first anamorphic asphere 30, and the first light source 20, square in shape, projects a beam into the light incident surface 12, a primary optical mode for beam directing into a lens, and transmits out of the light emitting surface 14; to be more specifically, the beam of the first light source refracts out from a first anamorphic asphere 30.
As shown in
Wherein A2n is a symmetry coefficient, B2n is an asymmetry coefficient, Kx,Ky are conic coefficients, and Cx,Cy are curvatures
Besides, the first light source 20 is directed to the center 16 of the optical element 10 and their relative positions are given as an example in the figure and should not be seen as to limit the spirit and scope of the present invention.
In
Wherein the A′2n is a symmetry coefficient, B′2n is asymmetry coefficient, K′x, K′y are conic coefficients, and C′x,C′y are curvatures.
Noticeably, the first anamorphic sphere 30 and the second anamorphic sphere 32 occupy the same X-Y-Z coordination, wherein the first anamorphic sphere facing to the Y≥0 direction, while the other anamorphic sphere facing to the Y≤0 direction, and at least one coefficient has different value for configuring the first anamorphic sphere 30 and the second anamorphic sphere 32 among the symmetry coefficients, the asymmetry coefficients and the conic coefficients, such as A2n=A′2n;B2n=B′2n;Cx=C′x;Kx=K′x; Cy≠C′y;Ky≠K′y.
Noticeably, the first anamorphic sphere 30 and the second anamorphic sphere 32 occupy the same X-Y-Z coordination, wherein the first anamorphic sphere facing to the Y≥0 direction, while the other anamorphic sphere facing to the Y≤0 direction, and at least one coefficient has different value for configuring the first anamorphic sphere 30 and the second anamorphic sphere 32 among the symmetry coefficients, the asymmetry coefficients and the conic coefficients, such as A2n=A′2n;B2n=B′2n;Cx=C′x;Kx=K′x; Cy≠C′y;Ky≠K′y
Because the first light source 20 is a square shape and is accordingly given either the first anamorphic asphere 30 or the second anamorphic asphere 32 for the beam projecting into and the generated result of the light distribution pattern 52 is enlarged in width having a cut-off line 54 of spontaneous reflection.
According to aforementioned embodiment, the present invention may be embodies as below.
In
In
In
In
This invention is configured with a single lens and a single light source which is capable of complying with the protocol of the bicycle lamp and illuminating effect. Therefore, it has merits of simplified structure and low manufacturing cost. Furthermore, as the devise of primary optical projection, the present invention can achieve the target of minimum elements requirement, a downsized volume and low light energy consumption.
The abovementioned embodiments are only to exemplify, not limit, the technique and the performance of the present invention, and anyone skilled in the arts may alter or amend the embodiments per the circumstances without violating the principle and the spirit of the present invention. Therefore, the scope of right protection shall be as described claims later.
Number | Date | Country | Kind |
---|---|---|---|
107113177 A | Apr 2018 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
8733992 | Bushre | May 2014 | B2 |
9494288 | Kobayashi | Nov 2016 | B2 |
9982864 | Fukui | May 2018 | B2 |
10114279 | Lim | Oct 2018 | B2 |
10203081 | Matsuda | Feb 2019 | B2 |
20100149801 | Lo et al. | Jun 2010 | A1 |
20150330589 | Kloos | Nov 2015 | A1 |
20190265468 | Hirata | Aug 2019 | A1 |
Number | Date | Country | |
---|---|---|---|
20190323671 A1 | Oct 2019 | US |