a) is a front view of an exemplary light source device 10 according to the present invention;
b) is a left-side view of the light source device 10;
a) is a cross-sectional view taken along the line A-A in
b) is an enlarged cross-sectional view showing a positional relationship between a reflector 2 and a cover glass 4;
a) is a perspective view of a reflector 2 used in a light source device according to a second embodiment of the present invention;
b) is a cross-sectional view of the reflector 2 with x and y coordinate axes;
a) is a front view of a cover glass 4;
b) is a left-side view of the cover glass 4;
c) is a cross-sectional view of the cover glass 4 (that is, a cross-sectional view taken along the line A-A in
a) is a front view of an exemplary light source device 10 according to the present invention. The light source device 10 has an arc tube 1 and a reflector 2. The arc tube 1 contains 0.2 mg/mm3or more mercury and has a pair of electrodes opposed to each other at the center thereof. In addition, the arc tube 1 has a lead wire 3a and a trigger wire 3b. When a predetermined amount of electrical power is applied to the electrodes of the arc tube 1, the electrical discharge starts, and light is emitted. The arc tube 1 of the high pressure discharge lamp according to this embodiment may be a direct-current type or an alternating-current type.
The reflector 2 may be made of inexpensive borosilicate glass (although crystallized glass can be used, it is expensive). The borosilicate glass is known to be strained and crack because of a thermal stress if the temperature difference between the inner surface and the outer surface of the borosilicate glass exceeds 180 degrees Celsius. It is considered that a thickness of about 3.5 mm can provide a temperature difference equal to or lower than 180 degrees Celsius. (For information, it is said that a thickness of 3.6 mm provides a temperature difference about 10 degrees Celsius greater than the specification.) In this regard, the reflector 2 has to have a thickness that prevents the occurrence of a strain and a crack caused by thermal stress therein. As for the lower limit, the thickness of the reflector 2 has to be about 1.8 mm or more, from the viewpoint of glass forming. In any case, it is essential only that the reflector has a thickness that prevents the occurrence of a crack due to a strain caused by thermal stress.
The reflector 2 has a multilayer film formed on the inner surface thereof, which serves as an antireflection film. Thus, of the light emitted by the arc tube 1, about 95% to 98% of visible light is reflected, and about 95% of infrared light is transmitted. The percentage representation is not based on the whole emitted light as 100% but on the light in each relevant area as 100% (the same holds true for the following description). The inner surface of the reflector constitutes a concave reflecting mirror, and the curved surface may be an ellipsoid of revolution or a paraboloid of revolution depending on the application and is not limited to a particular one in this embodiment.
b) is a left-side view of the light source device 10.
The cover glass 4 can be made of any hard glass that can be processed into a reflector shape, and the material thereof is not limited to a particular one. The arc tube 1 is supported by a lamp holder 5 and covered with the reflector 2 and the cover glass 4. The arc tube 1 and the lamp holder 5 are bonded to the reflector 2 with an adhesive 6, and electrical power is supplied to the arc tube 1 via an electric wire 7 and the lead wire 3a.
b) is an enlarged cross-sectional view showing a positional relationship between the reflector 2 and the cover glass 4. As shown in this drawing, the cover glass 4 is not completely in intimate contact with the reflector 2, and a small gap S is formed between the cover glass 4 and the reflector 2 depending on the difference in curvature therebetween. Even if a burst of the arc tube exerts a great mechanical impact on the reflector 2, the gap S serves as a buffering space to prevent the impact from being transferred to the cover glass 4.
The means of fixing the reflector 2 and the cover glass 4 is not limited to a particular one. For example, the reflector 2 and the cover glass 4 can be fixed using a heat-resistant inorganic adhesive.
Reference numerals 8a and 8b in
With regard to the second and the third embodiment, there will be described configurations in which a cover glass serves as a secondary reflecting mirror, that is, the light scattered to the rear of a reflector is reflected from the surface of a cover glass 4 and collected again. According to the second and the third embodiment, the cover glass 4 has, on a surface thereof, a multilayer film that selectively reflects visible light and transmits infrared light. The multilayer film functions as a reflecting film.
a) is a perspective view of a reflector 2 used in a light source device according to this embodiment. Protrusions 9a and 9b, which are shown in
With regard to the second embodiment, a case where the reflector is a concave reflecting mirror in the shape of an ellipsoid of revolution (that is, the reflector is an ellipsoidal reflecting mirror) will be described. In this case, the inner surface of the cover glass is also in the shape of an ellipsoid of revolution, and the shape of and the positional relationship between the reflector and the cover glass are determined as described below.
1. Shape of Reflector
First, the shape of the reflector 2 will be described.
b) is a cross-sectional view of the reflector 2 with x and y coordinate axes. The coordinates are set so that the optical axis coincides with the x axis. The inner curved surface of the reflector 2 is in the shape of an ellipsoid of revolution, and the reflector 2 is elliptical in a cross section taken along the optical axis.
Supposing that a primary focus and a secondary focus of the ellipse are denoted by f1 and f2, respectively, the x-intercept and the y-intercept of the elliptical curve C1 are 36 mm and 22.6274 mm, respectively. In other words, the elliptical curve C1 is represented by the following elliptical curve Formula 1.
The coordinates of the two focuses f1 and f2 are (−28.0, 0) and (28.0, 0), respectively. The positional relationship between an arc tube 1 and the reflector 2 is determined in such a manner that the brightest point P of the arc tube 1 (referred to as “luminous point”) coincides with the primary focus.
The light reflected from the reflector 2, which constitutes a part of the elliptical curve, is collected at the secondary focus (f2), and thus, an optical element, such as a color wheel, is disposed at this position.
2. Shape of Cover Glass and Positional Relationship Thereof with Respect to Reflector
Next, the shape of the cover glass 4 and the positional relationship thereof with respect to the reflector will be described.
a) is a front view of the cover glass 4, and
c) is a cross sectional view of the cover glass 4 (that is, a cross sectional view taken along the line A-A in
Supposing that a primary focus and a secondary focus of the ellipse are denoted by F1 and F2, respectively, the x-intercept and the y-intercept of the elliptical curve C2 are 38.5 mm and 26.4 mm, respectively. In other words, the elliptical curve C2 is represented by the following elliptical curve Formula 2.
The coordinates of the two focuses F1 and F2 are (−28.0, 0) and (28.0, 0), respectively. The positional relationship between the arc tube 1 and the cover glass 4 is determined in such a manner that the brightest point P of the arc tube 1 (referred to as “luminous point”) coincides with the primary focus. The light reflected from the cover glass 4 is collected at the secondary focus F2.
For front projectors, rear projection television sets and the like, which are used for several thousands of or several tens of thousands of hours, even the 2% to 5% of visible light can cause a temporal change (carbonization or the like) of a resin part forming an optical unit, such as a lamp house and a color wheel, or a fire due to heating of the resin part. However, these problems can be prevented, and the utilization efficiency of light can be improved.
The numerical values in the description of this embodiment are intended only for the illustrative purposes, and, of course, the present invention is not limited thereto. As described above with regard to this embodiment, the values a1, b1, a2 and b2 in the elliptical curve Formulas 1 and 2 are preferably selected so that both the primary focuses and the secondary focuses coincide with each other.
The light transmitted through the reflector and incident on the cover glass travels along slightly different paths depending on the refractive index of the reflector. By taking this into consideration, the reflector and the cover glass can be more precisely positioned.
According to the second embodiment described above, the reflector 2 and the cover glass 4 have a surface in the shape of an ellipsoid of revolution. Next, a case of a paraboloid of revolution (that is, an embodiment in which a reflector and a cover glass are parabolic reflecting mirrors) will be described. Whereas an elliptical curve has two focuses, a parabola has only one focus. Thus, a reflector 2 and a cover glass 4 are arranged in such a manner that the focuses thereof coincide with the luminous point P (the brightest point of an arc tube 1).
The focuses f3 (0, p) and F3 (0, p2-p1) of two parabolas represented by the following formulas coincide with each other (where p2 represents a negative value).
y=(1/4p)*x2 (Formula 3)
y=1/(4p1)*x2+p2 (Formula 4)
The reflector 2 and the cover glass 4 are arranged in such a manner that the reflector 2 matches with a part of the paraboloid of revolution whose cross section taken along the optical axis is expressed by the Formula 3, and the cover glass 4 matches with a part of the paraboloid of revolution whose cross section taken along the optical axis is expressed by the Formula 4.
With such a configuration, a slight amount of light transmitted to the rear of the reflector 2 is reflected again by the cover glass, so that the utilization efficiency of light is improved.
The light transmitted through the reflector and incident on the cover glass travels along slightly different paths depending on the refractive index of the reflector. By taking this into consideration, the reflector and the cover glass can be more precisely positioned.
In the second and the third embodiment described above, the cover glass 4 has a multilayer film, which serves as a secondary reflecting mirror. However, even if the cover glass does not serve as the secondary reflecting mirror as in the first embodiment, arranging the cover glass 4 at the rear of the reflector 2 is effective to some extent for the prevention of cracking or the like of the reflector 2. Thus, for example, in the case where the cover glass 4 has no multilayer film and is made of simple transparent glass or the like, the cover glass 4 is not used as the secondary reflecting mirror, so that there is no need to take into consideration the positional relationship between the reflector 2 and the cover glass 4.
The light source device according to the present invention can minimize the occurrence of cracks or chips in the reflector even if the arc tube bursts and thus can prevent damages to the device.
In addition, by arranging the cover glass so that the light transmitted to the rear of the reflector is reflected again in a predetermined direction as described above with regard to the second and third embodiments, the utilization efficiency of light can be further improved.
As described above, the present invention has an exceedingly high industrial applicability.
Number | Date | Country | Kind |
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2006-114951 | Apr 2006 | JP | national |