CONNECTOR FOR PHOTOELECTRIC CONVERSION MODULE AND CONNECTOR ASSEMBLY FOR PHOTOELECTRIC CONVERSION MODULE
20220393392 · 2022-12-08
Inventors
Cpc classification
H01R13/6583
ELECTRICITY
H02S40/425
ELECTRICITY
H02S40/36
ELECTRICITY
G02B6/4284
PHYSICS
International classification
H01R13/533
ELECTRICITY
Abstract
A connector (7) includes: a first connector part (10) having a first module side connection part connected to one end of an OSFP module in the front (F), having a first substrate side connection part connected to a substrate, and installed on the substrate; a second connector part (20) provided at a position such that the first module side connection part is interposed between the substrate and the second connector part (20), having a second module side connection part connected to one end of an OSFP module at the front (F), having a second substrate side connection part connected to the substrate, and stacked on the first connector part (10); and an intermediate part (30) provided between the first connector part (10) and the second connector part (20), and a cooling flow path in which air flows from the front (F) side toward the rear (R) side of the connector (7) is formed in the intermediate part (30).
Claims
1. A connector for photoelectric conversion modules, the connector comprising: a first connector part having a first module side connection part connected to one end of a first photoelectric conversion module in the front of the connector, having a first substrate side connection part connected to a substrate, and installed on the substrate; a second connector part provided at a position such that the first module side connection part is interposed between the substrate and the second connector part, having a second module side connection part connected to one end of a second photoelectric conversion module at the front of the connector, having a second substrate side connection part connected to the substrate, and stacked on the first connector part; and an intermediate part provided between the first connector part and the second connector part, wherein a cooling flow path in which a cooling medium flows from the front side toward the rear side of the connector is formed in the intermediate part.
2. The connector for photoelectric conversion modules according to claim 1, wherein the intermediate part comprises a tapered part whose width increases from the front side toward the rear side.
3. The connector for photoelectric conversion modules according to claim 2, wherein the intermediate part is provided with a side wall connected to the tapered part and configured to guide a cooling medium to the rear.
4. The connector for photoelectric conversion modules according to claim 1, wherein the first connector part, the second connector part, and the intermediate part are integrally configured.
5. The connector for photoelectric conversion modules according to claim 1, wherein the second connector part and the intermediate part are integrally configured and separated from the first connector part.
6. A connector assembly for photoelectric conversion modules, the connector assembly comprising: at least one connector for photoelectric conversion modules according to claim 1; a substrate on which the connector for photoelectric conversion modules is installed; and a cage fixed to the substrate and provided so as to cover the connector for photoelectric conversion modules.
7. The connector assembly for photoelectric conversion modules according to claim 6, wherein a discharge flow path configured to cause a cooling medium around the connector for photoelectric conversion modules to flow to outside is formed in the cage.
8. The connector assembly for photoelectric conversion modules according to claim 6, wherein a plurality of connectors for photoelectric conversion modules are arranged in parallel, and wherein a plurality of through holes are formed in a partition wall of the cage, the partition wall being provided between the connectors for photoelectric conversion modules arranged in parallel.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
DESCRIPTION OF EMBODIMENTS
[0043] One embodiment according to the present invention will be described below with reference to the drawings.
[0044]
[0045] The connector assembly 1 includes a substrate 3, a cage 5 fixed to the substrate 3, and a connector (connector for photoelectric conversion modules) 7 fixed onto the substrate and housed in the cage 5.
[Configuration of Cage 5]
[0046] The cage 5 is made of a metal and has a substantially rectangular parallelepiped shape, and two slots SL1 and SL2 are provided vertically in the front F. Note that, in
[0047] An OSFP module (not illustrated) is inserted in each of the slots SL1 and SL2 in the longitudinal direction, and the rear end of each OSFP module (the right end in
[0048] As illustrated in
[0049] The cage 5 has a plurality of hooks 5a protruding downward on the lower edges of the right side wall 5R and the left side wall 5L. Respective hooks 5a are put into insertion holes (not illustrated) formed in the substrate 3, and thereby the cage 5 is positioned and fixed to the substrate 3.
[0050] A plurality of cooling holes (discharge flow paths) 5b are formed on the rear R side of the cage 5. The cooling holes 5b are provided to each of the right side wall 5R, the left side wall 5L, and the upper wall 5U of the cage 5. The cooling holes 5b are provided in association with the position of the connector 7 (see
[0051]
[Configuration of Connector 7]
[0052]
[0053] The connector 7 includes a first connector part 10 located at the bottom, namely, on the substrate 3 (see
[0054] The rear end of the OSFP module inserted in the lower slot SL1 (see
[0055] An intermediate part 30 is provided between the first module connection part 10a and the second module connection part 20a. In the present embodiment, the intermediate part 30 is integrally formed with the second connector part 20.
[Configuration of First Connector Part 10]
[0056]
[0057] The first connector part 10 has a wide, substantially rectangular parallelepiped shape whose dimension in the width direction is larger than that in the longitudinal direction from the front F toward the rear R. The first connector part 10 includes the first module connection part 10a at the front end and includes a first substrate side connection part 10b on the bottom side, as illustrated in
[0058] As illustrated in
[Configuration of Second Connector Part 20]
[0059]
[0060] The intermediate part 30 is integrally formed to the second connector part 20. The second connector part 20 having the intermediate part 30 has a vertically inversed substantial L-shape in side view. The second connector part 20 includes an upper part 20U including the second module connection part 20a in the front F and includes a vertically extending back part 20B connected to the rear R of the upper part 20U.
[0061] The upper part 20U has a wide, substantially rectangular parallelepiped shape whose dimension in the width direction is larger than that in the longitudinal direction from the front F toward the rear R. The upper surface of the upper part 20U is provided with two pillars 20U1 arranged extending upward from both edges. A clearance is secured between the upper surface of the upper part 20U and the upper wall 5U of the cage 5 (see
[0062] The back part 20B has a vertical, substantially rectangular parallelepiped shape. The width (in the direction orthogonal to the direction from the front F to the rear R) of the back part 20B is narrower than the width of the upper part 20U. Accordingly, clearances are formed between both the side walls 5R, 5L of the cage 5 (see
[0063] As illustrated in
[0064] As illustrated in
[0065] As illustrated in
[0066] The horizontal plate part 30a has a horizontally extending plate shape. The horizontal plate part 30a is arranged under the upper part 20U and spaced apart from the upper part 20U with a predetermined spacing. The horizontal plate part 30a is substantially rectangular in plan view. The horizontal plate part 30a is connected to the front end of the back part 20B and protrudes from the back part 20B toward the front F. The width of the horizontal plate part 30a is larger than the width of the back part 20B and substantially the same as the width of the upper part 20U. A space in which the first connector part 10 is arranged is formed under the horizontal plate part 30a (for example, see
[0067] The triangular prism part 30b is provided between the upper surface of the horizontal plate part 30a and the under surface of the upper part 20U. The horizontal sectional shape of the triangular prism part 30b is a triangle whose width increases from the front F side toward the rear R side, in other words, whose width decreases from the rear R side toward the front F side. The vertex of the triangle of the triangular prism part 30b is located in the front F and located at substantially the center in the width direction.
[Cooling Air Flow of Second Connector Part 20]
[0068] Next, a flow of cooling air (cooling medium) provided using the second connector part 20 configured as described above will be described.
[0069] The cooling air is supplied from outside of the cage 5 by a fan device such as a fan (not illustrated). The cooling air flows from the front F toward the rear R of the cage 5. The cooling air that has flown into the cage 5 passes through the OSFP modules inserted in the slots SL1 and SL2 of the cage 5 and moves to the connector 7. The cooling air flowing above the connector 7 passes through the clearance formed by the pillars 20U1 provided on the upper surface of the upper part 20U of the second connector part 20 and flows from the front F to the rear R of the upper part 20U, as illustrated by the arrow FL1 in
[0070] The cooling air flowing in the middle area in the height direction of the connector 7 flows toward the intermediate part 30, as illustrated by the arrow FL2 in
[0071] The cooling air that has flown in the connector 7 is discharged to outside via respective cooling holes 5b formed in the cage 5.
Effect and Advantage of the Present Embodiment
[0072] According to the connector assembly 1 described above, the following effects and advantages are achieved.
[0073] Since the first connector part 10 and the second connector part 20 are stacked on each other, it appears that the intermediate part 30 provided between the first connector part 10 and the second connector part 20 may be a resistance to a flow and obstruct a smooth flow of air. In particular, since the first connector part 10 is installed on the substrate 3 and interposed between the second connector part 20 and the substrate 3, there may be a concern about reduced cooling performance.
[0074] To address this, a cooling flow path in which air flows in the direction indicated by the arrow FL2 (
[0075] The triangular prism part 30b is provided in the intermediate part 30. The triangular prism part 30b is formed such that the width thereof increases from the front F side toward the rear R side. Accordingly, cooling air that has flown in from the tip side of the triangular prism part 30b flows along the triangular prism part 30b and thereby flows toward both sides of the intermediate part 30, and a smooth cooling flow path can be formed.
[0076] The cooling air guided by the triangular prism part 30b is caused to flow along the side part 20B1 of the back part 20B and thereby pass therethrough to the rear R side. This enables air to flow so as to pass through the connector 7 and can further increase the cooling effect.
[0077] The second connector part 20 and the intermediate part 30 are integrated with each other and separated from the first connector part 10. Such a separate type configuration can increase flexibility of design or assembly.
[0078] The cooling holes 5b are provided in the cage 5 at a position corresponding to the area around the connector 7. Accordingly, cooling air is smoothly discharged to outside, and this can facilitate an air flow flowing in the cage 5.
[0079] Note that, in the present embodiment, the connector 7 has been described as the second connector part 20 and the intermediate part 30 being an integral structure and the first connector part 10 being a separate structure from the second connector part 20 and the intermediate part 30. However, the present invention is not limited thereto, and the first connector part 10, the second connector part 20, and the intermediate part all may be an integral structure. This can reduce the number of components. Further, the first connector part 10 and the intermediate part 30 may be an integral structure, and the second connector part 20 may be a separate structure therefrom. Alternatively, the first connector part 10, the second connector part 20, and the intermediate part 30 may be separate structures, respectively.
[0080] Further, although, in the present embodiment, the 2×1 cage 5 having only one column of the vertically arranged two slots SL1 and SL2 as illustrated in
[0081] As illustrated in
REFERENCE SIGNS LIST
[0082] 1 connector assembly (connector assembly for photoelectric conversion modules)
[0083] 3 substrate
[0084] 5 cage
[0085] 5a hook
[0086] 5b cooling hole (discharge flow path)
[0087] 5B back wall
[0088] 5L left side wall
[0089] 5R right side wall
[0090] 5S partition plate
[0091] 5U upper wall
[0092] 7 connector (connector for photoelectric conversion modules)
[0093] 10 first connector part
[0094] 10a first module connection part
[0095] 10b first substrate side connection part
[0096] 20 second connector part
[0097] 20a second module connection part
[0098] 20b second substrate side connection part
[0099] 20B back part
[0100] 20B1 side part
[0101] 20U upper part
[0102] 20U1 pillar
[0103] 30 intermediate part
[0104] 30a horizontal plate
[0105] 30b triangular prism part (tapered part)
[0106] F front
[0107] R rear
[0108] SL1 slot
[0109] SL2 slot