This application claims the benefit of Taiwan application Serial No. 109100318, filed Jan. 6, 2020, the subject matter of which is incorporated herein by reference.
The invention relates in general to a projection device and a headlight, and more particularly to a projection device and a headlight for vehicle.
Currently, the two projection surfaces projected by the projection device have different levels of resolution. Normally, the resolution of one of the two projection surfaces is poor, making the entire projection quality deteriorate. Therefore, it has become a prominent task for the industries to provide a new projection device capable of resolving the above problem.
The invention is directed to a projection device and a headlight for vehicle capable of resolving the above problem.
According to one embodiment the present invention, a projection device for vehicle is provided. The projection device includes a light source, a light valve and a projection lens. The light valve is located at a downstream of an optical path of the light source. The projection lens is located at a downstream of an optical path of the light valve and has an optical axis. The light valve is located on the optical axis of the projection lens and is tilted with respect to the projection lens to form an acute angle with the optical axis. The projection lens is used for projecting a light beam emitted from the light source on a first projection surface and a second projection surface substantially perpendicular to the first projection surface. Since the light valve is tilted with respect to the optical axis, the resolution of the projection surface is increased.
According to another embodiment the present invention, a projection device for vehicle is provided. The projection device includes a light valve, a projection lens and a lampshade. The light valve includes several self-luminous light-emitting elements arranged in form of a matrix. The projection lens is located at a downstream of an optical path of the light valve and has an optical axis. The lampshade is located at a downstream of an optical path of the projection lens. The light valve is located on the optical axis of the projection lens and is tilted with respect to the projection lens to form an acute angle with the optical axis. The projection lens is used for projecting a light beam with a pattern emitted from the light valve passes through the lampshade on a first projection surface and a second projection surface substantially perpendicular to the first projection surface. Since the light valve is tilted with respect to the optical axis, the resolution of the projection surface is increased.
According to another alternate embodiment the present invention, a headlight is provided. The headlight includes a self-luminous light valve, a lens group and a lampshade. The lens group is arranged at a downstream of an optical path of the light valve. The lampshade is arranged at a downstream of an optical path of the lens group. The optical axis of the self-luminous light valve substantially is not parallel to an optical axis of the lens group, and the lens group is used for projecting a light beam with a pattern emitted from the self-luminous light valve passes through the vehicle lampshade on a first projection surface and a second projection surface substantially perpendicular to the first projection surface.
The above and other aspects of the invention will become better understood with regard to the following detailed description of the preferred but non-limiting embodiment(s). The following description is made with reference to the accompanying drawings.
Refer to
As indicated in
The first projection surface M1 and the second projection surface M2 are not co-planar, and the angle formed between the first projection surface M1 and the second projection surface M2 is not 0° or 180°. As indicated in
In an embodiment, the acute angle A1 between the light valve 120 and the optical axis O1 is in a range of about 84° to 88°, such that the resolution of the second projection surface M2 can be increased, and the projection device 100 can provide a satisfactory projection quality.
When the light valve 120 is tilted, a focal point F1 of the light beam L1 reflected from the light valve 120 will be upwardly or downwardly deviated from the optical axis O1, causing the resolution of the projection surface to deteriorate accordingly. As indicated in
As indicated in
As indicated in
Referring to
Since the modulation transfer curve S21 of the second projection surface M2 obtained when the light valve 120 is not tilted (the angle A1 is 90°) is lower than the modulation transfer curve S22 of the second projection surface M2 obtained when the light valve 120 is tilted (the acute angle A1 is 84°), the resolution of the second projection surface M2 will be increased when the light valve 120 is tilted.
Referring to
The light valve 210, such as a self-luminous light valve, includes several self-luminous light-emitting elements 211 arranged in form of a matrix. The projection lens 130 is located at the downstream of an optical path of the light valve 210 and has an optical axis O1. The light valve 210 is located on the optical axis O1 of the projection lens 130, and is tilted with respect to the projection lens 130 to form the acute angle A1 with the optical axis O1. In the present embodiment, the first portion 212 of the light valve 210 is tilted towards the projection lens 130. The projection lens is used for projecting the light beam L2 emitted from the light valve 210 on a first projection surface M1 and a second projection surface M2. Since the light valve 210 is arranged on the optical axis O1 with the first portion 212 being tilted towards the projection lens 130, the resolution of the second projection surface M2 can be increased.
In an embodiment, the acute angle A1 between the light valve 210 and the optical axis O1 is in a range of about 84° to 88°, such that the resolution of the second projection surface M2 can be increased.
When the light valve 210 is tilted, a focal point F2 of the light beam L2 reflected from the light valve 210 will be upwardly or downwardly deviated from the optical axis O1, causing the resolution of the projection surface to deteriorate accordingly. As indicated in
As indicated in
Besides, the light-emitting elements 211 can be arranged as an n×m matrix, wherein n and m both are a positive integer equal to or greater than 1, the sum of n and m is greater than 2, and the values of n and m can be identical or different. In an embodiment, n and m are in a range of about 1 to 1000000, such as several, tens, hundreds, thousands, hundreds of thousands, or even larger. Thus, the resolution of the pattern of the light beam L1 can be increased and/or the light beam L1 can provide a diversity of patterns.
Referring to
In the present embodiment, the projection lens 330 includes at least one lens 131 with a diopter, and an anamorphic optical element 331. The number of the lens 131 can be one or more than one, and the lens 131 can be located on the optical path between the light valve 120 and the anamorphic optical element 331. The anamorphic optical element 331 can be located on the optical path between the light source 110 and the light valve 120 or can be located on the optical path between the light valve 120 and the projection lens 130, such as the optical path between the light valve 120 and the lens 131. The anamorphic optical element 331 can change the aspect ratio of the light beam L1 passing through the projection lens 330. In other words, the projection lens 330 can change the aspect ratio of the light emitted from the light source 110, such that the aspect ratio of the projection surface (the first projection surface M1 and the second projection surface M2) is not limited to the aspect ratio of the light emitted from the light source 110.
In an embodiment, the anamorphic optical element 331 may include two lenses, wherein one of the two lenses is a wedge plate, a wedge lens or a lens with a diopter, and the other lens is a wedge plate, a wedge lens or a lens with a diopter. As the two lenses are coupled, the pattern of the light beam L1 passing through the projection lens 330 will be deformed and the dispersion of the light can be compensated. The wedge plate or the wedge lens disclosed above changes the aspect ratio of the light beam L1 passing through the projection lens 330 through the difference in optical paths. Also, the lens with a diopter disclosed above can be a cylindrical lens, a lenticular Lens, a bi-conic lens or a combination thereof, or a lens with a plane, a spherical surface, an aspheric surface or a curvature.
Referring to
The projection device (headlight) 400 includes a light source casing 110, the said light valve 210, the said projection lens 130 (or 330), the said lens array 140, a lens barrel 430, a circuit board 440, a cooling fins 450, a fan 460 and a lampshade (the lampshade of a headlight) 470. In another embodiment, the projection device 400 can selectively omit at least one of the light source casing 410, the lens barrel 430, the circuit board 440, the cooling fins 450, the fan 460 and the lampshade 470 that is not required.
The light source 110 is arranged inside the light source casing 410 which protects the light source 110 and avoids light leakage. The projection lens 130 (or 330) is arranged inside the lens barrel 430 which protects the projection lens 130 (or 330). In the present embodiment, the light source 110 is electrically connected to the circuit board 440, such that external signals (not illustrated) can control the light emitting mode the light source 110 through the circuit board 440. The heat generated by the light source 110 can be transferred to the cooling fins 450 through the heat pipe (not illustrated). The fan 460 can dissipate the heat generated by the cooling fins 450 off the projection device 400. The lampshade 470 can cover and protect the light source casing 410, the light source 110, the lens array 140, the lens barrel 430, the projection lens 130 (or 330), the circuit board 440, the cooling fins 450 and the fan 460. In another embodiment, the lampshade 470 can accommodate two or more than two projection modules, wherein one of the two projection modules includes the light source casing 410, the light source 110, the lens array 140, the lens barrel 430, the projection lens 130 (or 330), the circuit board 440, the cooling fins 450 and the fan 460.
The lampshade 470 is located at the downstream of an optical path of the projection lens 130 (or 330). The lampshade 470 allows the light beam L1 passing through the projection lens 130 (or 330) to pass through and exit. The light beam L1 emitted from the lampshade 470 can be projected on the road surface or a remote object. To put it in greater details, the projection lens 130 (or 330) is used for projecting the light beam L1 with a pattern emitted from the light valve 210 passes through the lampshade 470 on a first projection surface and a second projection surface roughly or substantially perpendicular to the first projection surface. As indicated in
As indicated in
Besides, the manufacturing method of a projection device of the present invention includes the following steps: providing a light source; arranging a light valve at the downstream of an optical path of the light source; and arranging a projection lens at the downstream of an optical path of the light valve, wherein the projection lens is used for projecting a light beam emitted from the light source on a first projection surface and a second projection surface roughly or substantially perpendicular to the first projection surface, and the light valve is located on an optical axis of the projection lens and is tilted with respect to the projection lens to form an acute angle with the optical axis. However, the projection device of the present invention can also be manufactured using other manufacturing methods and is not restricted by the above manufacturing processes.
As indicated in the projection device of the present invention, the light valve or the light source is tilted with respect to the optical axis, such that the resolution of one of the projection surfaces (such as the second projection surface M2) can be increased, and the projection device can provide a satisfactory projection quality. Each of the projection devices 100, 200, 300 and 400 can increase the resolution of one of the projection surfaces (such as the second projection surface M2) as indicated in
While the invention has been described by way of example and in terms of the preferred embodiment(s), it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
Number | Date | Country | Kind |
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109100318 | Jan 2020 | TW | national |