1. Field of the Invention
The present invention relates to a projector system and, particularly, to a projector system with combined light sources.
2. Description of the Related Art
In a projector system, an integrator is arranged in a light path of a light source to enhance the uniformity of light emitted from the light source. To enhance the brightness of the projector system, two or more light sources may be used. Generally, the light source includes an elliptical cover and a light emitting portion received in the elliptical cover. Light emitted from each light emitting portion is reflected by the corresponding elliptical cover to directly propagate to a light receiving surface of the integrator. However, the two elliptical covers are combined together in a ε-shaped fashion, and the two light emitting portions are received in two chambers defined by the two elliptical covers respectively. Light reflected by a combined portion of the two elliptical covers may be lost, resulting in an inadequate use of the light.
Therefore, what is needed is to provide a projector system in which the above problem is eliminated or at least alleviated.
An exemplary projector system includes a light source module and an integrator, which comprises a light receiving surface for receiving light from the light source module. The light source module includes a number of light sources for emitting parallel light, multiple sets of light-adjusting prisms corresponding to the light sources, and a focusing lens arranged near the integrator. Initially, light emitted from each of the light sources is refracted by the corresponding set of light-adjusting prisms. The light is then focused by the focusing lens to the light receiving surface of the integrator and forms into a converging light cone with the apex being at the light receiving surface of the integrator. An angle of the light cone is 1/N of a cone formed by the light without being refracted, where N is number of the light sources and is greater than 1.
Other advantages and novel features of the present invention will become more apparent from the following detailed description of exemplary embodiments when taken in conjunction with the accompanying drawings.
Referring to
Each light source 10 includes a cover 14 and a light emitting portion 12 received in the cover 14. The cover 14 is parabolic-shaped and the light emitting portion 12 is positioned at a focal point of the cover 14. Generally, the light emitting portion 12 is a metal halide lamp, a high-voltage mercury lamp, or a white light emitting diode for emitting white light.
Each set of light-adjusting prisms 20 includes a first prism 22 and a second prism 24 arranged in that order along the light path from the corresponding light source 10 to the integrator 60. In this embodiment, both the first prism 22 and the second prism 24 are right-angled trapezoidal prisms. Referring to
The vertex angle of the first prism 22 (i.e., an acute angle formed by extended lines of the right-angled side L13 and the hypotenuse L14 of the first prism 22) is equal to that of the second prism 24 (i.e., an acute angle formed by extended lines of the right-angled side L23 and the hypotenuse of the second prism 24), which is represented as θ1. The right-angled side L23 of the second prism 24 is inclined relative to the right-angled side L13 of the first prism 22 by an angle θ2. The length of the right-angled side L13 of the first prism 22 is represented as D1, and the length of the lower side L12 of the first prism 22 is represented as D2. The length of the right-angled side L23 of the second prism 24 is represented as D3, and the length of the lower side L22 of the second prism 24 is represented as D4. The refractive indexes of the first prism 22 and the second prism 24 are equal and represented as n1.
Referring to
Referring to
For merging light emitted from the two light sources 10 into the integrator 60, in this embodiment, each converging light cone is formed by focusing the elliptical light spot formed on the light emitting surface 242 of each second prism 24, and an angle of each converging light cone with the apex being at the light receiving surface 62 of the integrator 60 is ½ of that of a light cone formed by the light without being refracted by the each set of light-adjusting prisms 20. Referring to
To satisfy the above light cone distribution of light emitted from each light source 10, a relationship between d2 and d1 is found using the formula:
d2/d1=(cos(arcsin(n1 sin θ1))2/(cos θ1)2 (1),
and a relationship between θ1 and θ2 is found using the formula:
θ2=arcsin(n1 sin θ1)−θ1 (2).
In this embodiment, n1=1.5168, d2/d1=½, therefore, θ1=32° using the formula (1), and θ2=21.5° using the formula (2). For an exemplary compact size of the projector system, D1=60 millimeters (mm), D2=48.75 mm, D3=40 mm, and D4=34 mm.
Referring to
In this embodiment, the ratio of the length d2′ of the short axis of an elliptical light spot formed on the light emitting surface 242′ of each second prism 24′ to the diameter d1′ of a circular light spot formed on the light incident surface 222′ of each first prism 22′ is equal to ⅓, i.e., d2′/d1′=⅓.
It is to be understood that, in other embodiments, the light source module of the projector system may include N light sources and N sets of light-adjusting prisms corresponding to the N light sources. The ratio of the length d2″ of the short axis of an elliptical light spot formed on the light emitting surface of each second prism to the diameter d1″ of a circular light spot formed on the light incident surface of each first prism is equal to 1/N, i.e., d2″/d1″=1/N, wherein N is a natural number.
Light emitted from each light source is merged into the integrator of the projector system satisfactorily using a number of sets of light-adjusting prisms. As a result, the light usage is enhanced significantly.
It is to be understood, however, that even though numerous characteristics and advantages of the present embodiments have been set forth in the foregoing description, together with details of the structures and functions of the embodiments, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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2008 1 0300781 | Mar 2008 | CN | national |
Number | Name | Date | Kind |
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5517000 | Nishiwaki et al. | May 1996 | A |
6075648 | Yamamoto et al. | Jun 2000 | A |
20050057729 | Huang | Mar 2005 | A1 |
Number | Date | Country | |
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20090244489 A1 | Oct 2009 | US |