This application claims the priority benefit of Taiwan application serial no. 92128258, filed on Oct. 13, 2003.
1. Field of Invention
The present invention relates to an illumination structure of projection system system. More particularly, the present invention relates to a projection system with multiple light sources and light integration device.
2. Description of Related Art
The digital light processing (DLP) projection system is a projecting system designed under an almost new concept, in which the image from the DLP projection system is processed. The rather conventional digital liquid-crystal (LC) projection system is also in digital manner. However, it is done by respectively projecting three-color image signals from the red, green, and blue LC panels to being overlapping on the screen, and then the color image is displayed due to the effect of light overlapping. In the digital LC projection system, the procedure for forming the image includes the steps of analog-to-digital conversion and digital-to-analog conversion, and the final image to be projected is still in analog form. During processing several conversions of image signals between digital and analog, the distortion of image inevitably occurs.
The whole DLP projection system includes the light source, the optical splitter, the X-cube, and digital micromirror device (DMD). In the DLP projection system, in order to improve the uniformity of the light source, usually, an integration rod is implemented within the light path of the system. The light beam emitted from light source can enter into integration rod. After multiple times of total internal reflection in the integration rod, the light beam emits out from the integration rod, so as to produce the effect of uniformity. In order to improve the luminosity of the DLP projection system, one of the methods is using two light lamps for illumination. The conventional illumination structure for multiple light sources is basically in several ways as follows.
From the above discussions, the conventional illumination structure with multiple light sources in the projecting system has large volume incapable of reducing the volume. The aberration produced by the condenser lens structure causes worse on the whole performance. Moreover, for the foregoing conventional structure, it cannot be avoided inevitably about some disadvantages of low optical coupling efficiency and low light utility rate.
In one aspect, the invention provides an illumination structure with multiple light sources of a projection system, which structure can have small volume, high optical coupling efficiency, and having less issue of aberration with high light utility rate.
In addition, the another aspect of the invention is to provide an illumination structure with multiple light sources of a projection system. In this structure, the lamp disposing position can be adjusted according to the different design of the projection system, and high optical coupling efficiency and high light utility rate can be maintained.
For achieving the foregoing objectives, the invention provides an illumination structure with multiple light sources in a projection system. The illumination structure with multiple light sources includes a first integration rod, a second integration rod, a third integration rod, a first light source and a second light source. Usually, the light source is the lamp. The first integration rod has a light incident surface and a light emitting surface, disposed in against relation. The second integration rod is disposed longitudinally adjacent to the first integration rod. Likewise, the second integration rod also has a light incident surface and a light emitting surface, but also has a reflection surface. The incident surface is parallel to the longitudinal direction of the second integration rod, and the reflection surface and the light incident surface form an included angle with a predetermined quantity. The third integration rod, likewise, has a light incident surface and a light emitting surface, the light incident surface of the third integration rod is coupled with each of the light emitting surface of the first integration rod and the second integration rod. The first light source and the second light source are perpendicularly disposed, so that the traveling paths of the light beams emitted from the first and the second light sources are at about 90 degrees. However, other angle is still suitable. The light beam from the first light source is focused onto the light incident surface of the first integration rod, and the light beam emitted from the second light source is incident to the light incident surface of the second integration rod. After reflection by the reflection surface of the second integration rod, the light beam travels onto the light emitting surface.
In the illumination structure with multiple light sources of the projection system, each of the light incident surfaces and the light emitting surfaces of the first the second and the third integration rods can be coated with an anti-reflection layer, and the reflection surface of the second integration rod is coated with a reflection layer. However, the light incident surface of the second integration rod can be only a portion of the longitudinal surface of the second integration rod.
In addition, each of the light emitting surfaces of the first and the second integration rods can abut to the light incident surface of the third integration rod. In this situation, a total area of each of the light emitting surfaces of the first and second integration rods can be equal to the area of the light incident surface of the third integration rod.
In the preferred condition, the included angle formed between the reflection surface and the light incident surface of the second integration rod is set to 45 degrees.
From the other aspect of the invention, the invention further provides an illumination structure with multiple light sources in a projection system, including a first integration rod, a second integration rod, a third integration rod, a first light source, and a second light source. Usually, the light sources are lamps. The first integration rod has a light incident surface, a light emitting surface, and a reflection surface, wherein the light incident surface is parallel to the longitudinal direction of the first integration rod, and a predetermined included angle is formed between the reflection surface and the light incident surface. Likewise, the second integration rod has a light incident surface, a light emitting surface, and a reflection surface, wherein the light incident surface is parallel to the longitudinal direction of the second integration rod, and a predetermined included angle is formed between the reflection surface and the light incident surface. The third integration rod has a light incident surface and a light emitting surface. Each of the light emitting surfaces of the first and the second integration rods is coupled with the light incident surface of the third integration rod. The first light source and the second light source are disposed in against relation, so that the light beams emitted from the first and the second light sources are traveling in parallel. Wherein, the light beam emitted from the first light source is incident to the first integration rod from the light incident surface, and travels toward the light emitting surface after reflection by the reflection surface of the first integration rod. The light beam emitted from the second light source is incident onto the light incident surface of the second integration rod, and then travels to the light emitting surface after reflection by the reflection surface of the second integration rod.
In the illumination structure with multiple light sources of the projection system, each of the light incident surfaces and the light emitting surfaces of the first the second and the third integration rods can be coated with an anti-reflection layer, and the reflection surfaces of the first and the second integration rods is coated with a reflection layer. However, each light incident surface of the first and the second integration rods can be only a portion of the longitudinal surface of the first and the second integration rods, respectively.
In addition, each of the light emitting surfaces of the first and the second integration rods can abut to the light incident surface of the third integration rod. In this situation, a total area of each of the light emitting surfaces of the first and second integration rods can be equal to the area of the light incident surface of the third integration rod.
In the preferred condition, the included angle formed between the reflection surface and the light incident surface of the first and the second integration rods is set to 45 degrees.
In another aspect of the invention, the invention further provides an illumination structure with multiple light sources in a projection system, including at least two integration rods, at least two light sources, and a third integration rod. Wherein, the at least two integration rods respectively have a light incident surface and a light emitting surface, in against relation. The at least two light sources relatively disposed, so that the light beams emitted from the light sources can be focused and incident onto the light incident surfaces of the integration rods. The third integration rod has a light incident surface and the light emitting surface, which are disposed so as to allow each of the light emitting surfaces coupled to the light incident surface of the third integration rod.
The invention also has another object to provide a light integration device of a projection system, including at least two integration rods and a third integration rod. Wherein, the at least two integration rods respectively have a light incident surface and a light emitting surface, in against relation. The third integration rod has a light incident surface and the light emitting surface, which are disposed so as to allow each of the light emitting surfaces coupled to the light incident surface of the third integration rod.
From the foregoing descriptions, according to the illumination structure with multiple light sources in a projection system, the light beams from the lamps, which serve as the light sources, can be directly focused onto the light incident surface of the integration rod, the condenser lens can be saved. This can reduce the volume of the projection system, but also does not produce aberration. IN addition, since the light is directly focused onto the integration rod, the light coupling rate can increase.
In addition, in the invention, the light beam is directly focused onto the integration rod. However, due to the difference of the disposing positions, the light does not be scattered in loss. The light utility rate is greatly improved. In addition, in the invention, the lamp position can be flexibly arranged according to the difference of design in outer appearance.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
The illumination structure with multiple light sources of a projection system in the invention mainly uses three integration rods in place of the conventional design with one integration rod. The advantage is that the light beams emitted from the lamps can be directly focused onto the integrations rod and it is not necessary to have the cutting-angle design on the lamp housing. The light beam emitted from each lamp can pass an integration rod, and then further collected by the third integration rod. After the total internal reflections for getting uniform, the light beams are led out from the integration rod. In the following embodiment, the longitudinal direction is defined as the direction of the longer optical axis of the integration rod, that is, the traveling direction of the light in the integration rod.
The longitudinal side of the integration rod 43 is parallel to the longitudinal side of the first integration rod 41, and the second integration rod 43 is abutting to the first integration rod 41 in the longitudinal direction. The third integration rod 45 also has the light incident surface 45a and the light emitting surface 45b, wherein the light incident surface 45a and the light emitting surface 45b are arranged in a way like the first integration rod 41. The light emitting surface 41b of the first integration rod 41 and the light emitting surface 43c of the second integration rod 43 are coupled to the light incident surface 45a of the third integration rod 45. The light emitting surfaces 41b and 43c are abutting to the light incident surface 45a. In the embodiment, the lamp housings, such as elliptic lamp housing, of the first lamp 47a and the second lamp 47b have the function for focusing the light beam. As shown in
As shown in
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In order to more effectively achieve the above objectives, the invention further processes the light incident surface, the light emitting surface, and the reflection surface of the integration rod.
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In summary, according to the illumination structure with multiple light sources in the invention, since each lamp is with respect to an integration rod, the light cone angle of each lamp can maintain the same effect as that with the structure in single lamp. In addition, according to Etendue optical design theory, the product of the light cone angle and the cross-sectional area of the integration rod is a constant. In this manner, the cross-sectional area of the structure of the invention is not reduced. In other words, the cross-sectional area is not reduced, the light coupling ratio is not reduced either.
Even though the forgoing embodiments use the example for descriptions, implemented by the first integration rod, the second integration rod, the first lamp, and the second lamp, the invention is not limited to this implementation. The implementation manner is not necessary to be limited in the structure elements.
That is, according to the structure of the invention, the end surface of the integration (perpendicular to the longitudinal direction) is designed according to the lamp position. For example, when the light beam from the lamp is focused and is incident to the end surface of the integration rod, the end surface is not necessary to be processed with tilt cutting. In this situation, it has been sufficient to coat the anti-reflection layer thereon. In addition, if the light beam from the lamp is perpendicularly incident to the integration rod from the longitudinal side surface, then the end surface adjacent to the light incident surface is cut by a predetermined tilt angle, so as to allow the light beam to be reflected, as foregoing descriptions, and longitudinally travels along the integration rod. Therefore, in the design principle, no matter how to implement any number of the lamps and the integration rod at any positions, any design at the end satisfies the forgoing design principle is the feature of the invention.
When it has a plurality of lamps (assuming to have N lamps), according to the design principle of the invention, it needs no more than N+1 of integration rods. N of the integration rods are with respect to the number of the light sources one to one, and the additional one of the integration rods is used to collect the light beams from the N of integration rods. As to which one of the integration rods is to be cut at the end surface, it is then depending on the positions of the lamps.
From the foregoing embodiments, the illumination structure with multiple light sources in a projection system of the invention, if the lamp housing of the lamp is, for example, the elliptic lamp housing, it automatically has the focusing function when the light beam is reflected. Therefore, it needs not to use the condenser lens and the half cube reflector without causing the aberration issue, so that the volume can be reduced. In addition, since the light beam from the light source provided by the invention is directly focused on the integration rod, the light cone angle can be reduced.
Even though the light source provided by the invention is directly focused on the integration rod, the light source of the invention needs no the cutting corner. Instead, it is achieved by disposing at different positions. This not only causes the light beam be not easy in scattering loss, so as to increase the utility rate of the light, but also allows the implementing positions of the light sources to be freely adjusted, according to the different design of the projecting system.
It will be apparent to those skilled in the art that various modifications and variations can be made to the illumination structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing descriptions, it is intended that the present invention covers modifications and variations of this invention if they fall within the scope of the following claims and their equivalents.
Number | Date | Country | Kind |
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92128258 | Oct 2003 | TW | national |