1. Field of the Invention
The present invention relates to an optical reflecting mirror such as an axial eccentric a spherical mirror and free curved surface mirror.
2. Description of the Related Art
Conventional optical reflecting mirrors having a curved reflecting surface, which is difficult to manufacture from glass, are formed by applying injection molding to a plastic material. However, molding using an injection molding method produces sinks, warpage, distortion, etc., on the optical reflecting mirror due to molding contraction, resulting in deteriorated accuracy of the mirror surface.
In molding using normal injection molding, the thickness from a mirror surface 100 to the back surface 101 partially varies as shown in
With regard to a method for forming an optical reflecting mirror whose thickness partially varies through injection molding, there is a proposal on a method (Japanese Patent Laid-Open No. H9-155928) which molds an optical reflecting mirror shaped in such a way as to connect a body having a mirror surface and a rib which intersects with this body through resin injection into a molding die, places a gate at a position facing the rib and preferentially sinks the rib while cooling and keeping the pressure of the resin so that sinks on the mirror surface can be suppressed and the mirror surface can be formed with a high degree of accuracy.
That is, this method is intended to complement the amount of contraction of the body having the mirror surface by sinking the side of the rib and prevent sinks from occurring on the mirror surface of the optical reflecting mirror.
However, the method described in Japanese Patent Laid-Open No. H9-155928 seems to be unable to form the mirror surface of an optical reflecting mirror having a complicated surface shape used for a projector (e.g., axial eccentric a spherical mirror and free curved surface mirror) with a high degree of accuracy.
On the other hand, the present inventor proposes a method for forming an optical reflecting mirror having a complicated surface shape such as an axial eccentric a spherical mirror and free curved surface mirror, capable of suppressing sinks on a mirror surface 100′ shown in
However, while the conventional art can prevent sinks on the optical reflecting mirror, when an optical reflecting mirror having a mirror surface with nonuniform curvature such as an axial eccentric a spherical mirror and free curved surface mirror is formed through injection molding, there is a possibility of warpage or distortion occurring due to the shape of the mirror surface (difference in curvature) . That is, the optical reflecting mirror having nonuniform curvature of the mirror surface has a nonuniform sum total of vectors of the amount of contraction, causing warpage or distortion on the mirror surface and making it difficult to form a high accuracy mirror surface.
Therefore, it is an object of the present invention to provide an optical reflecting mirror designed to improve the accuracy of the mirror surface having a complicated curved shape used for a projector, etc.
In order to attain the above described object, for an axial eccentric a spherical mirror or free curved surface mirror formed by applying injection molding to a plastic material, the present invention involves forming of a rib which is connected in such a way as to intersect with a body having a mirror surface at least at the outer edge of the mirror surface closest to the maximum curvature part within the mirror surface.
The optical reflecting mirror of the present invention strengthens (reinforces) the resistance to a deforming force during molding contraction, and can thereby suppress warpage or distortion of the mirror surface. That is, the present invention can improve the accuracy of the mirror surface of an optical reflecting mirror having a mirror surface of complicated curved shape such as an axial eccentric a spherical mirror or free curved surface mirror.
a) and 1(b) illustrate an optical reflecting mirror according to a conventional technology;
a) and 2(b) illustrate a first embodiment of an optical reflecting mirror according to the present invention;
a) and 3(b) illustrate a second embodiment of an optical reflecting mirror according to the present invention;
a) and 4(b) illustrate a third embodiment of an optical reflecting mirror according to the present invention:
a) and 5(b) illustrate a fourth embodiment of an optical reflecting mirror according to the present invention; and
a) and 6(b) illustrate cross-sectional view of a molding die apparatus for manufacturing an optical reflecting mirror.
With reference now to the attached drawings, embodiments of the present invention will be described below.
The present invention involves forming of a rib 4 at the outer edge of the mirror surface (outside the effective surface) of an optical reflecting mirror such as an axial eccentric a spherical mirror or free curved surface mirror having a mirror surface (effective surface) 2 with the curvature of the surface shape of which is not uniform.
The axial eccentric a spherical mirror refers to a mirror whose mirror surface (effective surface) 2 consists of a portion cut out from an a spherical mirror, which is symmetric with respect to the axis of rotation and a curved section with no rotation axis on the mirror surface 2.
The free curved surface mirror refers to a mirror with the mirror surface (effective surface) 2 including a curved section such as a free curves surface, a spherical surface, paraboloid, etc.
Note that the term “having a curved section” means that the mirror surface may include a partially flat section or may also have an entirely curved surface.
An optical reflecting mirror according to a first embodiment will be described with reference to
The optical reflecting mirror shown in
Furthermore, the body 1 having the generally-rectangular mirror surface 2 is provided with the rib 4a connected in such a way as to intersect with the body 1 on one side at the outer edge of the mirror surface.
a) shows a plan view and a cross-sectional view along a line D—D extend in the direction of a first axis along the optical reflecting surface of the minor of this embodiment.
In the optical reflecting mirror of this embodiment, the maximum curvature part within the mirror surface (effective surface) 2 of the body 1 is close to the line A—A (see
That is, an optical reflecting mirror comprising a body 1 having a mirror 2 of nonuniform curvature and a rib 4a formed at the outer edge of the mirror surface closest to the maximum curvature part within the mirror surface is molded through resin injection into a molding die, and in this way the optical reflecting mirror having the highly accurate mirror surface 2 is formed with warpage or distortion due to molding contraction prevented through the rib 4a connected to the body 1.
Then, an optical reflecting mirror according to a second embodiment will be described with reference to
The optical reflecting mirror shown in
Furthermore, the body 1 having the generally-rectangular mirror surface 2 is provided with the ribs 4a and 4b connected in such a way as to intersect with the body 1 on two facing sides at the outer edge of the mirror surface.
a) shows a plan view and a cross-sectional view along a line D—D of the optical reflecting mirror of this embodiment and
In the optical reflecting mirror of this embodiment, the maximum curvature part in the mirror surface (effective surface) 2 of the body 1 is close to the line A—A (see
That is, an optical reflecting mirror comprising a body 1 having a mirror 2 of nonuniform curvature, a rib 4a formed at the outer edge of the mirror surface closest to the maximum curvature part within the mirror surface and a rib 4b formed at the outer edge of the mirror surface opposite to the rib 4a is molded through resin injection into a molding die, and in this way the optical reflecting mirror having the highly accurate mirror surface 2 is formed with warpage or distortion due to molding contraction prevented through the two ribs 4a and 4b connected to the body 1.
Then, an optical reflecting mirror according to a third embodiment will be described with reference to
The optical reflecting mirror shown in
Furthermore, the body 1 having the generally-rectangular mirror surface 2 is provided with the four ribs 4a, 4b, 4c and 4d connected in such a way as to intersect with this body 1 on the entire circumference (4 sides) of the mirror surface.
a) shows a plan view and a cross-sectional view along a line D—D of the optical reflecting mirror of this embodiment and
In the optical reflecting mirror of this embodiment, the maximum curvature part in the mirror surface (effective surface) 2 of the body 1 is close to the line A—A (see
That is, an optical reflecting mirror comprising a body 1 having a mirror 2 of nonuniform curvature, ribs 4a, 4b, 4c and 4d formed on the entire circumference of the mirror surface is molded through resin injection into a molding die, and in this way the optical reflecting mirror having the highly accurate mirror surface 2 is formed with warpage or distortion due to molding contraction prevented through the four ribs 4a, 4b, 4c and 4d connected to the body 1.
Then, an optical reflecting mirror according to a fourth embodiment will be described with reference to
The optical reflecting mirror shown in
Furthermore, the body 1 having the quasi-circular mirror surface 2 is provided with the rib 4e connected in such a way as to intersect with this body 1 on the entire circumference of the mirror surface.
a) shows a plan view and a cross-sectional view along a line D—D of the optical reflecting mirror of this embodiment and
In the optical reflecting mirror of this embodiment, the rib 4e connected in such a way as to intersect with the body 1 having the quasi-circular mirror surface (effective surface) 2 is formed on the entire circumference of the mirror surface. That is, an optical reflecting mirror comprising a body 1 having a mirror 2 of nonuniform curvature and a rib 4e formed on the entire circumference of the mirror surface is molded through resin injection into the molding die, and in this way the optical reflecting mirror having the highly accurate mirror surface 2 is formed with warpage or distortion due to molding contraction prevented through the rib 4e connected to the body 1.
Note that the optical reflecting mirror in this embodiment, the maximum curvature part within the mirror surface (effective surface) 2 of the body 1 is close to the line A—A (see
The molding die apparatus 10 shown in
Silver or aluminum is evaporated onto the surface of the injection-molded plastic (surface onto which a mirror surface molding surface is transferred), which is formed as a mirror surface 2. As the mirror forming means, various publicly known means can be adopted.
According to this embodiment, as shown in
Since the molding accuracy is poor in the vicinity of the gate 5 into which the plastic material is charged, placing the resin inlet 11 in such a way that this gate 5 is placed at the position apart from the mirror surface 2 of the optical reflecting mirror makes it possible to form an optical reflecting mirror having the high accuracy mirror surface 2.
That is, this embodiment forms the optical reflecting mirror with the gate 5 formed at the position apart from the mirror surface 2. Then, this embodiment forms the gate 5 at the rib 4 in the position apart from the mirror 2 of the optical reflecting mirror for which the rib 4 is formed at the outer edge of the mirror surface to suppress warpage or distortion of the mirror surface 2.
Number | Date | Country | Kind |
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2003-134582 | May 2003 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
3764201 | Haile | Oct 1973 | A |
4264144 | McCord | Apr 1981 | A |
4436372 | Schmidt et al. | Mar 1984 | A |
4730914 | Stout | Mar 1988 | A |
4822157 | Stout | Apr 1989 | A |
4938578 | Schmidt et al. | Jul 1990 | A |
5084785 | Albers et al. | Jan 1992 | A |
5307211 | Schmidt et al. | Apr 1994 | A |
5329406 | Nakanishi et al. | Jul 1994 | A |
5549855 | Nakanishi et al. | Aug 1996 | A |
5589984 | Schmidt et al. | Dec 1996 | A |
5668656 | Fujinawa et al. | Sep 1997 | A |
5712719 | Hama | Jan 1998 | A |
6144505 | Nakanishi et al. | Nov 2000 | A |
Number | Date | Country |
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9-155928 | Jun 1997 | JP |
2003-134028 | May 2003 | JP |
Number | Date | Country | |
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20040228017 A1 | Nov 2004 | US |