1. Technical Field
The present disclosure relates to light source modules and, particularly, to a light source module using lasers as a light source.
2. Description of Related Art
Projectors generally include a light source, a color wheel, and a digital mirror device. Light rays emitting from the light source penetrate the color wheel and project on the digital mirror device. The digital mirror device reflects the light rays under control of image signals to modulate the light rays into optical images. However, at present, the light source is typically a halogen lamp or three light emitting diodes (LEDs), directionality of the light rays is less than satisfactory and off-axis light rays do not project on the digital mirror device and are not used, decreasing light usage efficiency.
Therefore, it is desirable to provide a light source module, which can overcome the limitations described.
Embodiments of the disclosure will be described with reference to the drawings.
The first triangular prism 10 is made of glass, and a refractive index of the first triangular prism 10 is represented by n1. The first triangular prism 10 includes a first incident surface 11, a first emergent surface 12, and a first bottom surface 13. The first emergent surface 12 connects the first incident surface 11. The first bottom surface 13 connects between the first incident surface 11 and the first emergent surface 12. A cross-section of the first triangular prism 10 is an isosceles triangle. The cross-sections of the first incident surface 11 and the first emergent surface 12 are two equal sides. The first triangular prism 10 includes a first film 131 coated on the first bottom surface 13, and the first film 131 reflects the first laser beam and transmits the second laser beam.
The second triangular prism 20 is made of glass, and a refractive index of the second triangular prism 20 is represented by n2. The second triangular prism 20 is adjacent to the first triangular prism 10. The second triangular prism 20 includes a second incident surface 21, a second emergent surface 22, and a second bottom surface 23. The second emergent surface 22 connects the second incident surface 21. The second bottom surface 23 connects between the second incident surface 21 and the second emergent surface 22. A cross-section of the second triangular prism 20 is an isosceles triangle. The cross-sections of the second incident surface 21 and the second emergent surface 22 are two equal sides. The second triangular prism 20 includes a second film 231 coated on the second bottom surface 23, and the second film 231 reflects the third laser beam and transmits the first and the second laser beams.
The first laser source 30 faces the first incident surface 11 of the first triangular prism 10. The first laser beam emitted from the first laser source 30 perpendicularly penetrates the first incident surface 11. The first laser beam penetrating the first incident surface 11 is reflected to the first emergent surface 12 by the first film 131 coated on the first bottom surface 13. The first laser beam reflected by the first film 131 is perpendicularly emitted from the first emergent surface 12. In the embodiment, the first laser beam is red light rays. An incidence angle of the first laser beam on the first film 131 is α1, according to Newton's law of reflection, a reflection angle of the first laser beam on the first film 131 is also α1. A point of the first film 131 reflecting the first laser beam is a first reflecting point 132.
The second laser source 40 faces the first bottom surface 13 of the first triangular prism 10. The second laser beam emitted from the second laser source 40 projects into the first triangular prism 10 from the first reflecting point 132 of the first film 131. An incidence angle of the second laser beam on the first film 131 is β1, wherein Sin β1=n1 Sin α1. A refraction angle of the second laser beam on the first film 131 is equal to the reflection angle of the first laser beam on the first film 131. Therefore the first laser beam reflected by the first film 131 and the second laser beam refracted by the first film 131 perpendicularly emit from a same point of the first emergence surface 12. The first laser beam and the second laser beam are mixed to a first mixed laser beam. In the embodiment, the second laser beam is green light rays.
The third laser source 50 faces the second incident surface 21 of the second triangular prism 20. The third laser beam emitted from the third laser source 50 perpendicularly penetrates the second incident surface 21. The third laser beam penetrating the second incident surface 21 is reflected to the second emergent surface 22 by the second film 231 coated on the second bottom surface 23. The third laser beam reflected by the second film 231 is perpendicularly emitted from the second emergent surface 22. In the embodiment, the third laser beam is blue light rays. An incidence angle of the third laser beam on the second film 231 is α2, according to Newton's law of reflection, a reflection angle of the third laser beam on the second film 231 is also α2. A point of the second film 231 reflecting the third laser beam is a second reflecting point 232.
In assembly, the second triangular prism 20 is positioned at a side of the first triangular prism 10. The second bottom surface 23 faces the first emergence surface 12. The first mixed laser beam emitted from the first triangular prism 10 projects into the second triangular prism 20 from the second reflecting point 232 of the second film 231. An incidence angle of the first mixed laser beam on the second film 231 is β2, wherein Sin β2=n2 Sin α2. A refraction angle of the first mixed laser beam on the second film 231 is equal to the reflection angle of the third laser beam on the second film 231. Therefore the third laser beam reflected by the second film 231 and the first mixed laser beam refracted by the second film 231 perpendicularly emit from a same point of the second emergence surface 22. The second laser beam and the first mixed laser beam are mixed to a second mixed laser beam. The second mixed laser beam is a white laser beam.
In use, the first triangular prism 10 reflects the first laser beam emitted from the first laser source 30, and the first triangular prism 10 refracts the second laser beam emitted from the second laser source 40. The first laser beam and the second laser beam are mixed with the first mixed laser beam by the first triangular prism 10. The first mixed laser beam emits from the first emergence surface 12. The third laser beam emitted from third laser source 50 is reflected by the second triangular prism 20, and the first mixed laser beam emitted from the first triangular prism 10 is refracted by the second triangular prism 20. The third laser beam and the first mixed laser beam are mixed into the second mixed laser beam by the second triangular prism 20. The second mixed laser beam emits from the second emergence surface 22.
As the light source module 100 using the lasers as the light source, the collimation of the light rays emitted from the light source is ensured. The first triangular prism 10 and the second triangular prism 20 mix the three laser beams, therefore the mixing accuracy of light source module 100 is increased.
Particular embodiments are shown and are described by way of illustration only. The principles and the features of the present disclosure may be employed in various and numerous embodiments thereof without departing from the scope of the disclosure as claimed. The above-described embodiments illustrate the scope of the disclosure but do not restrict the scope of the disclosure.
Number | Date | Country | Kind |
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102103220 A | Jan 2013 | TW | national |
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Number | Date | Country | |
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20140211461 A1 | Jul 2014 | US |