Optical module
11022763 ยท 2021-06-01
Assignee
Inventors
Cpc classification
G02B6/4248
PHYSICS
G02B6/4292
PHYSICS
G02B6/4204
PHYSICS
G02B7/10
PHYSICS
G02B27/0006
PHYSICS
G02B7/028
PHYSICS
International classification
G02B7/10
PHYSICS
Abstract
An optical module in which an optical element is housed in a housing includes: an optical window member through which input light to the optical element or output light from the optical element passes and which hermetically seals inside of the housing; and a holding member that holds the optical window member. The optical window member is fixed to the housing by the holding member. A difference between linear expansion coefficients of the holding member and the optical window member is smaller than a difference between linear expansion coefficients of the housing and the optical window member. A position where the optical window member is attached on the holding member protrudes to an optical element side from a position where the holding member itself is fixed.
Claims
1. An optical module in which an optical element is housed in a housing, comprising: an optical window through which input light from outside of the housing to the optical element or output light from the optical element to outside of the housing passes and which hermetically seals inside of the housing, a holding member that holds the optical window, a lens barrel which is provided outside the housing and in which a lens for condensing the input light or the output light is housed, a pedestal by which the lens barrel is fixed to the housing, wherein a material forming the holding member is different from a material forming the housing, a difference between linear expansion coefficients of the holding member and the optical window is smaller than a difference between linear expansion coefficients of the housing and the optical window, the holding member is fixed to the pedestal, a position where the pedestal is fixed to the housing is closer to the optical element side than a position where the holding member is fixed to the pedestal, and a position where the optical window is attached on the holding member protrudes to an optical element side from the position where the holding member is fixed to the pedestal.
2. The optical module according to claim 1, wherein a linear expansion coefficient of the pedestal is larger than a liner expansion coefficient of the holding member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF THE INVENTION
(7) Hereinafter, an optical module of the invention will be described in detail using preferred examples.
(8) As shown in
(9)
(10) In the optical module of the invention, a transparent substrate such as sapphire is used as the optical window member 3. For the holding member 7 that holds the optical window member 3, Kovar (alloy of iron, nickel, and cobalt) or the like that is a material (usually, a metal material such as JIS-SUS303 and JIS-SUS304 is used) whose linear expansion coefficient is closer to that of the optical window member than that of the material forming the housing 1 is used. Therefore, since the difference between the linear expansion coefficients of the holding member and the optical window member can be made smaller than the difference between the linear expansion coefficients of the housing and the optical window member in the related art, it is possible to prevent damage to the optical window member and the like due to stress distortion generated between the holding member and the optical window member even in a case where the environmental temperature changes.
(11) In addition, although the thickness of the holding member depends on the material, it is preferable to have a thickness of 1 mm or more in the case of Kovar in order to obtain an effect of reducing the impact on the optical window member or the mechanical stress. Since the thickness of such a holding member also affects the increase in the size of the optical module, a study regarding a structure for fixing a holding member, such as that described in a second or third embodiment to be described later, is also required.
(12) In the first embodiment shown in
(13) In the second embodiment of
(14) Next,
(15) As an assembling method of such an optical module, for example, the optical window member 3 is first attached to the holding member 7, and then the holding member 7 is bonded to the pedestal 5. Finally, by bonding the pedestal 5 to the housing 1, the optical window member 3 can be disposed at a predetermined position of the housing 1. It is needless to say that the working procedure does not depend on such order.
(16) The advantage of the third embodiment is that it is not necessary to separate the pedestal 5 from the fixing portion of the holding member 7 as shown in
(17) In addition, in such a configuration, in a case where the linear expansion coefficient of the pedestal 5 is larger than the linear expansion coefficient of the holding member 7, protruding of the holding member 7 to the inside of the housing 1 is suppressed. Therefore, since it is possible to effectively use the space inside the housing 1, it is possible to reduce the size of the optical module.
(18) As described above, according to the invention, it is possible to provide an optical module capable of suppressing damage to an optical window member due to a change in ambient temperature while suppressing an increase in the size of the optical module.