The present invention relates to the electronics field such as a network and a computer and, particularly, to the technical field of an optical interconnection device for conversion between an optical signal and an electrical signal.
Although LSIs are becoming increasingly faster, it is considered that there is a limit to the transmission capacity of an electrical line that connects between those LSIs or the like. As a technique to break through the limit, expectations are placed on an optical interconnection technique. The optical interconnection technique is a technique that uses an optical line instead of an electrical line used hitherto. Specifically, a configuration is being researched and developed that converts an electrical signal output from an LSI to an optical signal, transmits the signal over a desired distance by using an optical line such as an optical waveguide or an optical fiber and converts the optical signal to an electrical signal to thereby reach an input pin of a destination LSI.
A large number of, as many as 100 or more, input/output electrical terminals are attached to a high-performance LSI, and in the case of applying the optical interconnection technique, it is necessary to replace all electrical signals corresponding to that number of terminals with optical signals. Further, because a high-speed signal of about 10 Gbps undergoes a large loss in electrical line transmission, it is desirable to make conversion into an optical signal in the circumstances where a loss is as small as possible. In other words, an electrical line distance should be shorter. In order to convert the electrical signals corresponding to the large number of input/output electrical terminals to optical signals in the state where a loss in the electrical lines is small, it is important to place an optical module for opto-electric conversion in close proximity to the LSI.
In terms of heating, a heating value increases as the operating speed becomes higher in the above-described high-performance LSI and optical module. With the increase in heating value, the size of a cooling fin or the like for cooling becomes larger. It is desirable that a cooling structure is of like size to the size of the LSI or the optical module.
In the invention disclosed in Patent Document 1, an LSI package with an interface module using a socket is described. For example, in Patent Document 1, a cross-sectional view of an LSI package with an optical interface module is shown in
In
Specifically, it is described in the paragraph that “Further, as the frequency of a signal becomes higher, power consumption per terminal generally tends to increase. For example, in a CPU used for a personal computer or the like, there is an LSI that consumes as much as 70 to 80 W. In light of this, a structure is employed in which a heat spreader and a big heatsink are mounted on the signal processing LSI to enlarge a heat dissipation area and forced air cooling is performed by a fan or the like. On the other hand, as described earlier, because it is necessary to minimize the line length between the signal processing LSI and the interface module, mounting a heatsink for the signal processing LSI causes a lack of extra space for another head sink for the interface module”. It is assumed from this description that air cooling is supposed for the above-described heatsink.
However, an extremely high cooling capability is required for a product at high speed and with a very large number of signals. In the case of using an air cooling heatsink, it is not within the combined size of the LSI package and the interface as shown in
Further, even in the case where the heatsink is within the size shown in
The present invention has been accomplished in view of the foregoing, and an object of the invention is thus to provide an optical interconnection device in which a volume required for cooling is reduced.
To overcome the above concern, according to the invention described in Claim 1, a plurality of optical modules are arranged on a periphery of an LSI electrically connected to an electric wiring board, and liquid cooling mechanisms are respectively placed on the LSI and the optical modules.
According to the invention described in Claim 2, in the optical interconnection device described in Claim 1, the plurality of optical modules are arranged only on a surface of the electric wiring board where the LSI is mounted.
According to the invention described in Claim 3, in the optical interconnection device described in Claim 1, the plurality of optical modules are arranged only on a surface of the electric wiring board opposite to a surface where the LSI is mounted.
According to the invention described in Claim 4, in the optical interconnection device described in Claim 1, the plurality of optical modules are arranged on both a surface of the electric wiring board where the LSI is mounted and a surface opposite to the surface.
According to the invention described in Claim 5, in the optical interconnection device described in one of Claims 1 to 4, an optical input and output direction of the plurality of optical modules is in a perpendicular direction to the electric wiring board.
According to the invention described in Claim 6, in the optical interconnection device described in one of Claims 1 to 4, an optical input and output direction of the plurality of optical modules is in a parallel direction to the electric wiring board.
According to the invention described in Claim 7, in the optical interconnection device described in one of Claims 1 to 4, the plurality of optical modules are arranged in a dispersed manner on the electric wiring board.
According to the invention described in Claim 8, in the optical interconnection device described in one of Claims 1 to 4, the liquid cooling mechanism of the LSI is a heatsink having micro-fins inside.
According to the invention described in Claim 9, in the optical interconnection device described in one of Claims 1 to 4, a height adjustment member is interposed between the plurality of optical modules and the liquid cooling mechanism according to their heights.
According to the invention described in Claim 10, in the optical interconnection device described in one of Claims 1 to 4, the plurality of optical modules are arranged separated into an optical module for optical transmission and an optical module for optical reception.
According to the invention described in Claim 11, in the optical interconnection device described in Claim 10, an optical fiber connected to the optical module for optical transmission and an optical fiber connected to the optical module for optical reception are tied together in a bundle.
According to the invention described in Claim 12, in the optical interconnection device described in Claim 11, when a component in need of air cooling exists in the device, a partition plate that blocks cooling wind to the optical fibers is placed.
According to the invention described in Claim 13, in the optical interconnection device described in one of Claims 1 to 4, the liquid cooling mechanism for the LSI and the liquid cooling mechanism for the plurality of optical modules are integrated through a heat transfer plate.
According to the invention described in Claim 14, in the optical interconnection device described in one of Claims 1 to 4, the liquid cooling mechanism and an optical fiber are connected to the plurality of optical modules.
In the optical interconnection device according to the present invention, by using the liquid cooling mechanism as a cooling means, it is possible to reduce a volume required for cooling. This leads to an advantage that a product size can be reduced accordingly. Further, by placing the liquid cooling mechanism, the area occupied by the cooling structure in the optical module is reduced, so that either of the parallel direction or the perpendicular direction to the package can be selected for optical input and output. It is thus possible to achieve the optical interconnection device in which the cooling structure and the optical fiber for optical input and output do not interfere with each other.
10 ELECTRIC WIRING BOARD
11 LSI
12 OPTICAL MODULE
12
a TRANSMISSION OPTICAL MODULE
12
b RECEPTION OPTICAL MODULE
13 LIQUID COOLING HEATSINK
13
a MICRO-FIN
14 LIQUID COOLING PIPE
15 COOLANT INLET AND OUTLET
16 OPTICAL INPUT/OUTPUT PART
17 FIXING PART
18 FIXING SCREW
19 HOLDING PLATE
20 HEIGHT ADJUSTMENT MEMBER
21 OPTICAL TRANSMISSION PATH
22 HEAT TRANSFER PLATE
23 OPTICAL FIBER
24 CASING
25 OPTICAL CONNECTOR
Hereinafter, embodiments of the present invention are described in detail with reference to the drawings.
As shown in
Further, in this embodiment, a liquid cooling heatsink 13 is mounted on the LSI 11 as a liquid cooling mechanism of about the same size as the LSI 11, and a liquid cooling pipe 14 is mounted on the optical module 12 as a liquid cooling mechanism of about half the size of its top face area, as shown in
The optical modules 12 are configured such that light can be input and output in the up-and-down (perpendicular) direction with respect to the electric wiring board 10 in
As another structure, as in the first alternative example shown in
The effects of the embodiment and the alternative examples are described hereinafter.
First, a flow of signals in the embodiment and the alternative examples is described.
The LSI 11 has a function of performing electrical input and output for a power supply and an operation part, and its electrical input/output terminals are connected to electrical lines in the electric wiring board 10. The electrical lines are connected to the optical input/output parts 16 of the optical modules 12. Specifically, an electrical input/output terminal of the LSI 11 is connected to an input terminal of the optical input/output part 16 in the optical module 12 for transmission through a line in the electric wiring board 10. An electrical signal that is output from the electrical input/output terminal of the LSI 11 passes through the path, is converted to an optical signal in the optical module 12, and transmitted from the optical input/output part 16 to the destination optical module 12 for reception through an optical fiber or the like. Reversely, an optical signal is transmitted to the optical module 12 for reception, and the optical signal is converted to an electrical signal in the optical module 12. The optical input/output part 16 of the optical module 12 is connected to the electrical input/output terminal of the LSI 11 through a line in the electric wiring board 10, and the output electrical signal from the optical module 12 for reception is transmitted to the LSI 11. Note that, an input/output optical fiber connected to the optical module 12 is omitted in
Next, a cooling mechanism in the embodiment and the alternative examples is described.
The liquid cooling heatsink 13 for cooling the LSI 11 and the liquid cooling pipe 14 for cooling the optical modules 12 are both connected to a pump that circulates a coolant and a radiator that lowers the temperature of a coolant. The pump and the radiator are omitted in
Further, a manufacturing method in the embodiment and the alternative examples is described.
In the case of mounting both of the LSI 11 and the optical modules 12 on the electric wiring board 10 by using a solder, either one can be mounted first. For example, with use of a flip-chip mounter, the LSI 11 is mounted first, and the optical modules 12 are mounted after that. Then, the liquid cooling heatsink 13 for the LSI 11 and the liquid cooling pipe 14 for the optical modules 12 are respectively fixed onto the LSI 11 and the optical modules 12, thereby manufacturing a device capable of optical interconnection.
Further, in the case of mounting both of the LSI 11 and the optical modules 12 on the electric wiring board 10 by using a socket, the manufacturing method is as follows.
First, a socket for the LSI 11 and a socket for the optical modules 12 are mounted on the electric wiring board 10. Then, the LSI 11 and the optical modules 12 are inserted and fixed to the respective sockets, thereby allowing an electrical connection. Finally, the liquid cooling heatsink 13 for the LSI 11 and the liquid cooling pipe 14 for the optical modules 12 are respectively fixed onto the LSI 11 and the optical module 12, thereby manufacturing a device capable of optical interconnection. Note that, the heatsink for cooling may be fixed by using the method of fixing the LSI 11 and the optical modules 12 to the sockets.
Further, a manufacturing method in the case of mounting either one of the LSI 11 or the optical modules 12 by a solder and mounting the other one by a socket is as follows. As one example, the case of mounting the LSI 11 by a solder and mounting the optical modules 12 by a socket is described hereinbelow.
Because the high-temperature tolerance of a socket is generally low, after the LSI 11 is mounted by using a solder, the socket is fixed to the electric wiring board 10, and then the optical modules 12 are inserted and fixed to the socket. The order of attaching the cooling mechanisms is the same as in the above-described case.
As described above, several manufacturing methods can be employed.
In this manner, according to the embodiment and the alternative examples, the liquid cooling heatsink 13 is fixed onto the LSI 11, and the liquid cooling pipe 14 is fixed onto the optical module 12, thereby enabling reduction of a volume required for cooling. This leads to an advantage that the product size can be reduced accordingly. Further, by using the liquid cooling mechanism, the area occupied by the cooling structure in the optical module 12 is reduced, so that the optical input/output part 16 can be placed in either of the parallel direction or the perpendicular direction to the package. Thus, it is possible to achieve the optical interconnection device in which the cooling structure and the optical fiber for optical input and output do not interfere with each other.
In this embodiment, a plurality of optical modules 12 are mounted on both of the same surface as and the opposite surface to the surface of the electric wiring board 10 where the LSI 11 is mounted.
As shown in
The LSI 11 and the optical modules 12 in
Further, as shown in
Note that both of the optical modules 12 on the front surface and the optical modules 12 on the back surface are provided for optical interconnection of input and output signals of the LSI 11, thus having the same function as in the first embodiment described above. Further, a manufacturing method of this embodiment is the same as that of the first embodiment described above, and an explanation thereof is omitted.
As shown in
Thus, in this embodiment, by incorporating the micro-fins 13a, the contact area between a coolant and the liquid cooling heatsink 13 increases, and the rate of flow of a coolant flowing between the micro-fins 13a also increases, so that it is possible to improve a cooling capability and, consequently, to downsize the liquid cooling heatsink 13. As a result of downsizing the liquid cooling heatsink 13 of the LSI 11, an advantage that the optical modules 12 can be mounted closer to the LSI 11 is obtained.
As shown in
As shown in
In the case of making thermal contact with the optical modules 12 directly with use of the holding plate 19, because the holding plate 19 is flat but the height of the optical modules 12 after mounted varies, the situation occurs where thermal contact can be satisfactorily made with some optical modules 12 but thermal contact is not satisfactory with other optical modules 12. Under such a situation, the objective of cooling all of the optical modules 12 is not attained.
In light of that, in this embodiment, a deformable member with a high thermal conductivity such as a compound is interposed as the height adjustment member 20 between the holding plate 19 and the optical modules 12 as described above, so that thermal contact can be made uniformly between the liquid cooling pipe 14 and all of the optical modules 12, thereby enabling suitable cooling of the optical modules 12.
As shown in
Typically, the voltage level of an output signal of the LSI 11 is high, and the output signal is electrically connected to the transmission optical module 12a. On the other hand, the voltage level of a signal input to the LSI 11 is attenuated to a low voltage. Therefore, if the input signal is placed in close proximity to the output signal, the input signal with a low voltage level is easily affected by the output signal with a high voltage level, which results in the occurrence of a noise.
Further, the light intensity of an optical output signal is high and the light intensity of an optical input signal is low in the optical modules 12 as well. In this case also, like the case of an electrical signal, if the optical input signal with a low light intensity is placed in close proximity to the optical output signal with a high light intensity, the optical input signal is easily affected by the optical output signal, which leads to the occurrence of a noise.
In order to overcome the above concern, the structure shown in
In the sixth embodiment shown in
In
In this manner, in this embodiment, the optical fibers of the transmission optical module 12a and the reception optical module 12b are tied together in a bundle, thus having an advantage of easier construction of the device from the system side.
In the seventh embodiment, signal quality is stabilized by avoiding application of wind to optical fibers in the case of liquid cooling.
As shown in
On the other hand, in the case of cooling the optical modules or the LSI with use of air cooling, wind is applied to optical fibers, and the optical fibers thereby swing. Since the optical fibers swing, optical signals in the optical fibers are not stabilized. For example, in the case of multimode optical transmission, the order of the mode of an optical signal to be transmitted varies, which consequently raises a problem of being incapable of controlling jitter of the optical signal.
Note that, in the case where liquid cooling is used for the LSI 11 and the optical modules 12 but air cooling needs to be used for the other parts, a structure that shields the optical fibers from the wind for air cooling with use of a partition plate or the like for windbreak may be employed.
As shown in
Note that, in
As shown in
In the optical interconnection device, it is necessary to perform both of cooling a plurality of optical modules 12 and connecting the optical fiber 23 to the plurality of optical modules 12. Because the liquid cooling technique is used in the embodiment shown in
Note that, although the example of pulling the optical fiber out in the crosswise direction when the heatsink is large is disclosed in related art, it is considered that the heatsink lies in the way in some cases when pulling the optical fiber out in the lengthwise direction.
Although the present invention is described above by referring to the embodiments, the present invention is not limited to the above-described embodiments. Various changes and modifications as would be obvious to one skilled in the art may be made to the structure and the details of the present invention without departing from the scope of the invention.
This application is based upon and claims the benefit of priority from Japanese patent application No. 2008-159793 filed on Jun. 18, 2008, the disclosure of which is incorporated herein in its entirety by reference.
The present invention relates to a device for conversion between an optical signal and an electrical signal and is applicable to a variety of devices, systems and methods in the electronics field such as a network and a computer.
Number | Date | Country | Kind |
---|---|---|---|
2008-036952 | Feb 2008 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2009/052550 | 2/16/2009 | WO | 00 | 8/9/2010 |