Micro Free-Space WDM Device
Techniques for designing optical devices that can be manufactured in volume are disclosed. In an exemplary an optical assembly, to ensure that all collimators are on one side to facilitate efficient packaging, all collimators are positioned on both sides of a substrate. Thus one or more beam folding components are used to fold a light beam up and down through the collimators on top of the substrate and bottom of the substrate.
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This application is related to U.S. patent Ser. No. 11/379,788, commonly assigned, entitled “Optical devices and method for making the same”, now U.S. Pat. No. 7,224,865.
BACKGROUND OF THE INVENTION1. Field of the Invention
The invention is generally related to the area of optical devices. In particular, the present invention is related to optical wavelength multiplexing/demultiplexer or add/drop devices with new optical layouts and manufacturing processes.
2. The Background of Related Art
Optical add/drop and multiplexer/demultiplexer devices are optical components often used in optical systems and networks. These devices using wavelength division multiplexing (WDM) techniques allow a simultaneous transfer of optical signals at different wavelengths or channels through a single optical link such as an optical fiber. In operation, a WDM device or system may need to drop or add a set of channels from or to a transmitting signal. Multiplexer/demultiplexer (Mux/Demux) is often needed for this application.
It is well known that a fiber is not allowed to bend too small. For example, for the widely used SMF-28e fiber, the minimum bend radius is about 30 mm. When being routed, the fiber roll wastes a specific space, for example, 60 mm in diameter for SMF-28e fiber. Without fiber routing, a WDM device box could be even smaller than a square of 30 mm by 30 mm.
Even so, for the prior art device of
The one-sided optical layout is realized by beam folding components. Prisms or mirrors are commonly used as beam folding components as shown in
This section is for the purpose of summarizing some aspects of the present invention and to briefly introduce some preferred embodiments. Simplifications or omissions in this section as well as in the abstract and the title may be made to avoid obscuring the purpose of this section, the abstract and the title. Such simplifications or omissions are not intended to limit the scope of the present invention.
In general, the present invention pertains to improved designs of optical devices, particularly for adding or dropping a selected wavelength or a group of wavelengths as well as multiplexing a plurality of signals into a multiplexed signal or demultiplexing a multiplexed signal into several signals. For simplicity, a group of selected wavelengths or channels will be deemed or described as a selected wavelength hereinafter. According to one aspect of the present invention, an assembly is described. To ensure that all collimators are on one side to facilitate efficient packaging, all collimators are positioned on both sides of a substrate. Thus one or more beam folding components are used to fold a light beam up and down through the collimators on top of the substrate and bottom of the substrate.
Depending on implementation, different means are provided to ensure that the collimators are securely boned to the substrate. According to one embodiment, wedges are used to hold each of the collimators. Depending on the shape of the collimators, the wedges are designed in different shape to prove a best contact with the collimators.
The present invention may be implemented in many ways as a subsystem, a device or a method. According to one embodiment, the present invention is an optical assembly. The optical assembly comprises at least a common collimator; a substrate; an array of channel collimators including an upper set of collimators and a lower set of collimators, wherein the upper set of collimators is mounted on top of the substrate, and the lower set of collimators is mounted on bottom of the substrate; one or more beam folding components mounted near an end of the substrate, wherein the one or more of the beam folding components turn a light beam traveling through the upper set of collimators to the lower set of collimators, or a light beam traveling through the lower set of collimators to the upper set of collimators, wherein all of the collimators and the common collimator are on one side of the beam folding components.
Objects, features, and advantages of the present invention will become apparent upon examining the following detailed description of an embodiment thereof, taken in conjunction with the attached drawings
These and other features, aspects, and advantages of the present invention will become better understood with regard to the following description, appended claims, and accompanying drawings where:
The detailed description of the present invention is presented largely in terms of procedures, steps, logic blocks, processing, or other symbolic representations that directly or indirectly resemble the operations of optical devices or systems that can be used in optical networks. These descriptions and representations are typically used by those skilled in the art to most effectively convey the substance of their work to others skilled in the art.
Reference herein to “one embodiment” or “an embodiment” means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the invention. The appearances of the phrase “in one embodiment” in various places in the specification are not necessarily all referring to the same embodiment, nor are separate or alternative embodiments mutually exclusive of other embodiments.
Referring now to the drawings, in which like numerals refer to like parts throughout the several views.
This kind of splitting propagation produces a Demux device. If the beam travels in a reversed manner, the device works as a combining mode, resulting in a Mux device. It can be appreciated by those skilled in the art that each of the embodiments described herein works in either mode (Mux or Demux).
As shown in
The design of
Another mounting method is to use flexible bridges or wedges. To mount a collimator to a flat substrate, the bridge block has two touch surfaces: one with the collimator, the other with substrate. Since the substrate is flat, the best contact is a flat surface. But a collimator has a cylindrical or similar outer shape, the contact surface can be more flexible. If this contact surface is also flat, then the bridge block is a wedge.
If the surface is curved, curved wedges may be used as shown respectively in
In some network designs, two or more similar devices are required to be mounted at the same location. Mux/Demux pair is a typical setting. In one embodiment, an array of Mux/Demux devices is mounted on one substrate and within one enclosure to save space and cost.
For a first device D1, there are three ports (“D1-COM”, “D1-Ch2”, and “D1-Ch4”) are on the upper row and two (“D1-Ch1” and “D1-Ch3”) on the lower row. For a second device, there are two ports (“D2-Ch1” and “D2-Ch3”) are on the upper row and three ports (“D2-COM”,“D2-Ch2”, and “D2-Ch4”) on the lower row. These two devices operate independently. Two individual optical signal inputs or outputs “D1-COM” or “D2-COM” port are Demux or Mux, respectively. The drop or add signals are separated via the channel ports (“D1-Ch1”,“D1-Ch2, . . . ).
It should be noted that the wavelength band for each port and each device can be allocated in a customizable manner, mostly based on application request. And each device in the shared enclosure may have a different wavelength channel layout.
More than two devices may be lined up side by side in a similar fashion and the devices in the array can have the same or different channel count.
While the present invention has been described with reference to specific embodiments, the description is illustrative of the invention and is not to be construed as limiting the invention. Various modifications to the present invention can be made to the preferred embodiments by those skilled in the art without departing from the true spirit and scope of the invention as defined by the appended claim. Accordingly, the scope of the present invention is defined by the appended claims rather than the forgoing description of embodiments.
Claims
1. An optical assembly comprising:
- at least a common collimator;
- a substrate;
- an array of channel collimators including an upper set of collimators and a lower set of collimators, wherein the upper set of collimators is mounted on top of the substrate, and the lower set of collimators is mounted on bottom of the substrate;
- one or more beam folding components mounted near an end of the substrate, wherein the one or more of the beam folding components turn a light beam traveling through the upper set of collimators to the lower set of collimators, or a light beam traveling through the lower set of collimators to the upper set of collimators, wherein all of the collimators and the common collimator are on one side of the beam folding components.
2. The optical assembly of claim 1, wherein the one or more beam folding components are mounted on portions extended from the substrate.
3. The optical assembly of claim 1, wherein the one or more beam folding components are mounted on a side wall of the substrate.
4. The optical assembly of claim 1, wherein each of the one or more beam folding components is cut into two halves, one being mounted on top of the substrate and the other being mounted on bottom of the substrate.
5. The optical assembly of claim 4, wherein each of the one or more beam folding components is slanted to accommodate an arrangement of the channel collimators and common collimator.
6. The optical assembly of claim 1, wherein the channel collimators and common collimator are arranged in parallel and boned to the substrate.
7. The optical assembly of claim 6, wherein a pair of wedges is used to securely position each of the channel collimators and common collimator to the substrate.
8. The optical assembly of claim 7, wherein the edges are curved on one side to accommodate a shape of the each of the channel collimators and common collimator.
9. The optical assembly of claim 1, where the optical assembly is enclosed in an enclosure that is shaped in a way to accommodate a duplicated optical assembly.
10. An optical assembly comprising:
- at least a common collimator;
- a substrate with a certain thickness to form a side surface;
- an array of channel collimators including an upper set of collimators and a lower set of collimators, wherein the upper set of collimators is mounted on top of the substrate, and the lower set of collimators is mounted on bottom of the substrate;
- one or more beam folding components mounted onto the side surface of the substrate, wherein the one or more of the beam folding components turn a light beam traveling through the upper set of collimators to the lower set of collimators, or a light beam traveling through the lower set of collimators to the upper set of collimators, wherein all of the collimators and the common collimator are on one side of the beam folding components.
11. The optical assembly of claim 10, wherein the channel collimators and common collimator are arranged in parallel and boned to the substrate.
12. The optical assembly of claim 11, wherein a pair of wedges is used to securely position each of the channel collimators and common collimator to the substrate.
13. The optical assembly of claim 12, wherein the edges are curved on one side to accommodate a shape of the each of the channel collimators and common collimator.
14. The optical assembly of claim 10, wherein each of the one or more beam folding components is a prism.
15. The optical assembly of claim 10, wherein each of the one or more beam folding components is a pair of mirrors.
Type: Application
Filed: Jun 29, 2009
Publication Date: Sep 20, 2012
Patent Grant number: 8538210
Applicant: Alliance Fiber Optic Products, Inc. (Sunnyvale, CA)
Inventors: Daoyi Wang (Sunnyvale, CA), Frank Wu (Fremont, CA)
Application Number: 12/493,855
International Classification: H04J 14/02 (20060101);