This application claims priority to Chinese Patent Application No. 201110443878.9, filed on Dec. 27, 2011, which is hereby incorporated by reference in its entirety.
The present invention relates to the field of optical communication technologies, and in particular, to an optical path coupling device, an optical path coupling apparatus and an optical path coupling method, which couple light from a light emitter to an optical fiber or an optical waveguide.
In optical fiber communication technologies, it is needed to first convert an electrical signal to an optical signal through a light emitter (such as a semiconductor laser); and in an application of the optical fiber communication technologies, it is needed to first convert an electrical signal to an optical signal through a light emitting apparatus (such as a semiconductor laser), and then couple the optical signal to an optical fiber for transmitting the optical signal or a planar optical waveguide for modulating the optical signal (such as a thin-film optical waveguide or a strip-shaped optical waveguide).
In general, design of an optical path coupling apparatus is to make a light emitting apparatus, all optical devices and an optical fiber align along an optical path in a straight line. An advantage of this alignment solution is that an optical component is relatively simple and may be made by using only one simple optical element, such as a convex lens. However, this design solution requires that the optical fiber and the light emitting apparatus be aligned along the optical path strictly, and each optical path coupling device has to be designed meticulously, so that effective optical path coupling can be achieved.
In view of this, it is needed to provide an optical path coupling device which is simpler, more convenient and more effective, so as to reduce assembly difficulty and manufacturing costs of optical path coupling between optical elements.
A technical problem to be solved primarily by the present invention is to provide an optical path coupling device, an optical path coupling apparatus and its optical path coupling method, so as to reduce assembly difficulty and manufacturing costs of optical path coupling between optical elements.
To solve the foregoing technical problem, a technical solution adopted by the present invention is to provide an optical path coupling device, including a light beam collimating element and a light beam concentrating element. The light beam collimating element includes a first focus, a first optical axis and a light concentrating surface; the light concentrating surface receives incident light emitted from a position of the first focus and collimates the incident light into collimated light beams which are transmitted along the first optical axis. The light beam concentrating element includes a second focus, a second optical axis and a reflective concave surface; the second optical axis is disposed in parallel with and at a preset distance away from the first optical axis; the reflective concave surface is disposed obliquely relative to the first optical axis, and the reflective concave surface receives the collimated light beams and reflects and concentrates the collimated light beams to a position of the second focus.
According to an exemplary embodiment of the present invention, the collimated light beams are parallel to the first optical axis.
According to an exemplary embodiment of the present invention, a shape of a light beam envelope of the collimated light beams on a section perpendicular to the first optical axis includes one of a circle, an ellipse and a rectangle or a combination thereof.
According to an exemplary embodiment of the present invention, the light beam collimating element is a condenser lens; the first focus is an object-side focus of the condenser lens; the first optical axis is an optical axis of the condenser lens; and the light concentrating surface is an object-side convex surface of the condenser lens.
According to an exemplary embodiment of the present invention, the condenser lens includes one of a spherical lens, an aspherical lens, a cylindrical lens, a gradient-index lens, a plano-convex lens group or a concavo-convex lens group.
According to an exemplary embodiment of the present invention, the light beam concentrating element is a concave reflector; the second focus is a focus of the concave reflector; the second optical axis is an optical axis of the concave reflector; and the reflective concave surface is a concave surface of the concave reflector.
According to an exemplary embodiment of the present invention, the concave reflector includes one of a spherical concave mirror, a parabolic concave mirror or a hyperbolic concave mirror.
According to an exemplary embodiment of the present invention, the light beam collimating element and the light beam concentrating element are disposed on the first optical axis separately.
According to an exemplary embodiment of the present invention, the light beam collimating element further includes a light outgoing surface, and the light outgoing surface and the reflective concave surface of the light beam concentrating element are bonded to each other.
According to an exemplary embodiment of the present invention, the optical path coupling device is a compound lens, and the compound lens includes a concentrated light collimating portion and a reflecting portion; the light beam collimating element is the concentrated light collimating portion of the compound lens, the light beam concentrating element is the reflecting portion of the compound lens; the first focus is an object-side focus of the concentrated light collimating portion; the first optical axis is an optical axis of the concentrated light collimating portion; the light concentrating surface is an object-side convex surface of the concentrated light collimating portion; the second focus is a focus of the reflecting portion; the second optical axis is an optical axis of the reflecting portion; and the reflective concave surface is an outer concave surface of the reflecting portion, and a reflecting film is disposed on the outer concave surface.
According to an exemplary embodiment of the present invention, an antireflection film is disposed on the light concentrating surface; and a reflecting film is disposed on the reflective concave surface.
To solve the foregoing technical problem, another technical solution adopted by the present invention is to provide an optical path coupling apparatus, including a light emitting device, a light receiving device and the optical path coupling device in the foregoing exemplary embodiments of the present invention; the light emitting device is located at the position of the first focus of the optical path coupling device, and the light receiving device is located at the position of the second focus of the optical path coupling device.
According to an exemplary embodiment of the present invention, the optical path coupling apparatus further includes a pedestal, the pedestal includes a bearing platform, and the optical path coupling device is fixedly disposed on the bearing platform.
According to an exemplary embodiment of the present invention, the pedestal further includes an adjusting screw, and the adjusting screw is connected to the bearing platform to adjust a horizontal pitch angle, a vertical pitch angle or a combination thereof.
According to an exemplary embodiment of the present invention, the light emitting device includes one of a laser, a light emitting diode or a spotlight.
According to an exemplary embodiment of the present invention, the light receiving device includes one of an optical fiber, a thin-film optical waveguide or a strip-shaped optical waveguide.
To solve the foregoing technical problem, another technical solution adopted by the present invention is to provide an optical path coupling method, including steps of: emitting incident light at a position of a first focus on a first optical axis; receiving the incident light via a light concentrating surface, and collimating the incident light into collimated light beams which are transmitted along the first optical axis; and receiving the collimated light beams via a reflective concave surface that is disposed obliquely relative to the first optical axis, and reflecting and concentrating the collimated light beams to a position of a second focus of a second optical axis; where an optical axis of the reflective concave surface is the second optical axis, and the second optical axis is disposed in parallel with and at a preset distance away from the first optical axis.
According to an exemplary embodiment of the present invention, the collimated light beams are parallel to the first optical axis.
According to an exemplary embodiment of the present invention, a shape of a light beam envelope of the collimated light beams on a section perpendicular to the first optical axis includes one of a circle, an ellipse and a rectangle or a combination thereof.
Beneficial effects of the present invention are that, by cooperating of the light beam collimating element and the reflective concave surface of the light beam concentrating element with each other, the optical path coupling device of the present invention implements large-angle off-axis light focusing, and reduces the assembly difficulty and the manufacturing costs of the optical path coupling between the optical elements.
The present invention is further illustrated in detail below with reference to accompanying drawings.
To make persons skilled in the art understand the technical solutions of the present invention more easily, a structure and a working principle of an optical path coupling apparatus of the present invention are first illustrated.
The optical path coupling device 120 includes a light beam collimating element 121 and a light beam concentrating element 122. The light beam collimating element 121 includes a light concentrating surface 1211, a first optical axis 1212 and a first focus 1213; the first focus 1213 is the input focus of the optical path coupling device 120; the light concentrating surface 1211 receives incident light 140 that is emitted by the light emitting device 110 at a position of the first focus 1213, and collimates the incident light 140 into collimated light beams 150 which are transmitted along the first optical axis 1212. Further, an antireflection film is disposed on the light concentrating surface 1211, to increase transmittance when the incident light 140 passes through the light concentrating surface 1211.
The light beam concentrating element 122 includes a reflective concave surface 1221, a second optical axis 1222 and a second focus 1223. In the present invention, the second optical axis 1222 is at a preset distance away from the first optical axis 1212, the preset distance is an off-axis offset h, and an off-axis focusing function of the light beam concentrating element 122 is fulfilled just because of existence of the off-axis offset h between the second optical axis 1222 and the first optical axis 1212. The reflective concave surface 1221 is disposed obliquely relative to the first optical axis 1212, and is configured to receive the collimated light beams 150 and to reflect and concentrate the collimated light beams 150 to a position of the second focus 1223. The second focus 1223 is the output focus of the optical path coupling device 120; the light receiving device is located at the second focus 1223 to receive concentrated light beams 160. Further, a reflecting film is disposed on the reflective concave surface 1221 to increase a reflectivity.
The optical path coupling apparatus 100 of the present invention and its core optical path coupling device 120 are briefly described above; to make persons skilled in the art understand the technical solutions of the present invention more deeply, its optical path transmission principle is illustrated below, so as to describe an obtaining process of structural parameters of the optical path coupling device 120 of the present invention.
In combination with the foregoing description of
Other embodiments of the present invention are described below one by one.
Step S101: Emit incident light at a position of a first focus on a first optical axis.
Step S102: Receive the incident light via a light concentrating surface, and collimate the incident light into collimated light beams which are transmitted along the first optical axis.
Step S103: Receive the collimated light beams via a reflective concave surface that is disposed obliquely relative to the first optical axis, and reflect and concentrate the collimated light beams to a position of a second focus of a second optical axis, where an optical axis of the reflective concave surface is the second optical axis, and the second optical axis is parallel to and at a preset distance away from the first optical axis.
In an exemplary embodiment, the collimated light beams in step S102 are parallel to the first optical axis.
With reference to what is shown in
In the foregoing embodiments, by cooperating of the light beam collimating element and the reflective concave surface of the light beam concentrating element, the optical path coupling device of the present invention implements large-angle off-axis light focusing, and reduces assembly difficulty and manufacturing costs of optical path coupling between optical elements.
The foregoing is only embodiments of the present invention and is not intended to limit the patent scope of the present invention. Any equivalent structure or equivalent procedure transformation made by using the specification and content of the accompanying drawings of the present invention, or direct or indirect applications in other related technical fields shall all fall within the patent protection scope of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
201110443878.9 | Dec 2011 | CN | national |