Positioning member having cutout portion and polarization beam combining module using positioning member
11204507 · 2021-12-21
Assignee
Inventors
Cpc classification
G02B6/4213
PHYSICS
G02B6/272
PHYSICS
G02B6/4214
PHYSICS
International classification
Abstract
A positioning member for positioning optical components includes a laminated body in which a plurality of thin metal plates is laminated. In the positioning member for positioning the optical components by an upper surface of a first plate forming the laminated body and a side surface of a second plate disposed above the first plate, a portion where two non-parallel side surfaces of the second plate for positioning the optical components cross each other includes a cutout portion including a crossing portion of the side surfaces.
Claims
1. A positioning member for positioning optical components, comprising: a laminated body in which a plurality of thin metal plates is laminated, wherein positioning the optical components is performed by an upper surface of a first plate forming the laminated body and a side surface of a second plate disposed on the first plate wherein the optical components contact the upper surface of the first plate and the side surface of the second plate, and in a corner portion which is formed by two non-parallel side surfaces of the second plate for positioning the optical components, a cutout portion including the corner portion is provided on only one of the two non-parallel side surfaces.
2. The positioning member according to claim 1, wherein another corner portion, which is formed by the side surface having the cutout portion, has a curvature.
3. The positioning member according to claim 1, wherein the cutout portion is U-shaped.
4. A polarization beam combining module that combines a plurality of light waves having different planes of polarization, comprising: the positioning member according to claim 1; and the plurality of optical components, wherein said optical components are used for polarization beam combining and all of the optical components are disposed on the one positioning member.
5. The polarization beam combining module according to claim 4, wherein polarization beam combining is performed for each of a plurality of light waves having different wavelengths.
6. The polarization beam combining module according to claim 4, further comprising: a housing in which the optical components are housed, wherein a step having at least two non-parallel side surfaces is provided on a bottom surface of the housing, a corner portion of the step which is formed by the two side surfaces has a cutout portion including the corner portion, and the positioning member is disposed so as to be in contact with the two side surfaces.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE INVENTION
(6) Hereinafter, a positioning member and a polarization beam combining module using the positioning member of the invention will be described in detail using preferred examples.
(7) First, an example of the polarization beam combining module to which the invention is applied will be described with reference to
(8)
(9) The four signal light beams output from the optical modulation element 2 become parallel light beams by a lens array 3 in which four lenses are disposed. The plane of polarization of the two signal light beams on the center side is rotated about 90° by a wavelength plate 4. 51 and 52 are polarization beam combiner elements (PBC), and the signal light passing through the wavelength plate 4 and the signal light not passing through the wavelength plate 4 are combined into one light beam. The polarization-combined signal light passes through beam shifters 61 and 62 to be guided to the outside of a housing 1. A through-hole through which signal light passes is provided in the housing 1, and beams are formed by collimator lenses 81 and 82 held on the housing 1 by pedestals 71 and 72 and are introduced into an optical fiber and the like (not shown).
(10) As shown in
(11) As shown in
(12) A plurality of thin metal plates 91 to 93 are laminated and are bonded to each other by pressing and heating so as to be integrated. It is also possible to provide a positioning mark indicated by reference numeral G at the time of lamination or firmly bond the side surfaces (for example, the position of the reference numeral G) of the laminated metal plates by welding or the like.
(13) In addition, in a case where the optical component is large, instead of using one metal plate forming the side surface, a plurality of metal plates having the same pattern may be superimposed and all of the plurality of metal plates may be pressed and heated to form the side surface. In this case, since it is possible to increase the area of the side surface, the positioning of the optical components becomes easy and the positional accuracy can be improved.
(14) For example, in a case where the metal plate 91 is the first plate and the metal plate 92 is the second plate, each optical component is positioned using the upper surface of the metal plate 91 as the first plate and a side surface B of the metal plate 92 as the second plate. In addition, in a case where the metal plate 92 is the first plate and the metal plate 93 is the second plate, each optical component is positioned using the upper surface of the metal plate 92 as the first plate and side surfaces C, D, E, and F of the metal plate 93 as the second plate. It is needless to say that the metal plate 91 can be set as the first plate and the metal plate 93 can be set as the second plate.
(15) One of the features of the invention is that, for two side surfaces of the second plate used for positioning, for example, the side surfaces C and D of the metal plate 93 or the side surfaces E and F of the same metal plate, a portion where the side surfaces extend to cross each other includes the recessed cutout portion A including the crossing portion. The shape of the cutout portion A is not limited to the rounded shape of a U shape shown in
(16) In particular, in a case where a U-shaped cutout portion is provided on only one (in this case, the side surface D) of the side surfaces C and D as shown in
(17) In addition, in a corner portion 13 formed by the side surface D and the cutout portion A in
(18) In addition, since the side surface of the positioning member has many linear portions, the U-shaped cutout portion is more conspicuous. Therefore, the working efficiency of the optical component mounting operation is high. For example, at the time of mounting an optical component, positioning can be simply performed by finding a U-shaped portion and disposing the optical component so that the corner portion of the optical component is located at the U-shaped portion.
(19)
(20) The PBCs 51 and 52 are positioned by the upper surface of the metal plate 92 and the side surfaces C and D of the metal plate 93. In addition, the beam shifters 61 and 62 are positioned by the upper surface of the metal plate 92 and the side surfaces E and F of the metal plate 93. The optical component disposed on the positioning member is fixed to each metal plate with an adhesive (not shown) or the like.
(21) Next, a method of disposing optical components, which are disposed on the positioning member as shown in
(22) The positioning member on which the optical members are placed is indicated by reference numeral 9. On the inner bottom surface of the housing 1, a step 11 is formed between a portion 12 where the optical modulation element 2 and the like are disposed and a portion 10 where the positioning member 9 is disposed.
(23) Positioning of the positioning member 9 in the housing 1 is performed by bringing the positioning member 9 into contact with at least two non-parallel side surfaces I and J on which the step 11 is provided. Also in this case, as in
(24) As shown in
(25) In addition, in a case where a U-shaped cutout portion is provided on only one (in this case, the side surface I) of the side surfaces I and J as shown in
(26) In a corner portion formed by the side surface I and the cutout portion H in
(27) As described above, according to the invention, it is possible to provide a positioning member capable of accurately positioning a plurality of optical components. In addition, since a plurality of optical components can be accurately positioned using the positioning member, it is possible to provide a polarization beam combining module including a highly accurate space optical system.