REVERSE CLAMPING COMPRESSION DEVICE FOR CPO OR NPO
20240061196 ยท 2024-02-22
Assignee
Inventors
Cpc classification
G02B6/43
PHYSICS
H05K7/2039
ELECTRICITY
International classification
G02B6/43
PHYSICS
Abstract
The present disclosure provides a reverse clamping compression device for CPO or NPO. The device includes a mechanical bolster placed on a main board, a compression cover covering optical modules, and a fastening connecting and fixing the compression cover to the mechanical bolster and protruding below the mechanical bolster. In the present disclosure, the compression cover above the optical modules is used to apply a compression force to the optical modules, and the spring element is placed in space below the main board, therefore, the space above the compression cover is not occupied, which can maximize the use of the space above the optical modules, greatly shorten the heat conduct path of the heat sink module, and ensure that the entire device is still assembled from top to bottom.
Claims
1. A reverse clamping compression device for CPO or NPO, comprising: a mechanical bolster, placed on a main board; a compression cover covering optical modules mounted on a mezzanine board; and a fastening connecting and fixing the compression cover to the mechanical bolster and protruding below the mechanical bolster.
2. The reverse clamping compression device for CPO or NPO according to claim 1, wherein one or more first connecting holes are arranged on the circumference of the compression cover for the fastening to be attached.
3. The reverse clamping compression device for CPO or NPO according to claim 2, wherein one or more second connecting holes are arranged on the circumference of the mechanical bolster for the fastening to be attached.
4. The reverse clamping compression device for CPO or NPO according to claim 1, wherein the fastening includes a floating standoff placed on a top surface of the mechanical bolster, an spring element connected with the floating standoff and passing through the mechanical bolster and placed under the mechanical bolster, and a bolt passing through the compression cover and connecting to the floating standoff.
5. The reverse clamping compression device for CPO or NPO according to claim 1, wherein the fastening includes a floating standoff placed on a top surface of the mechanical bolster, an spring element connected with the floating standoff and passing through the mechanical bolster and placed under the mechanical bolster, and a bolt passing through the compression cover and connecting to the floating standoff.
6. The reverse clamping compression device for CPO or NPO according to claim 1, wherein the fastening includes a floating standoff placed on a top surface of the mechanical bolster, an spring element connected with the floating standoff and passing through the mechanical bolster and placed under the mechanical bolster, and a bolt passing through the compression cover and connecting to the floating standoff.
7. The reverse clamping compression device for CPO or NPO according to claim 4, wherein the spring element comprises a spring bolt connected with the floating standoff and a compression spring sleeved on the spring bolt.
8. The reverse clamping compression device for CPO or NPO according to claim 4, wherein the bolt is a shoulder screw.
9. The reverse clamping compression device for CPO or NPO according to claim 1, wherein the compression cover includes a plurality of openings.
10. The reverse clamping compression device for CPO or NPO according to claim 9, wherein the position and shape of each of the plurality of openings match with those of the corresponding optical module.
11. The reverse clamping compression device for CPO or NPO according to claim 9, wherein each of the optical modules comprises an IHS on a top, and the size of each of the openings matches that of the IHS.
12. The reverse clamping compression device for CPO or NPO according to claim 11, wherein each of the optical modules is covered by the compression cover on a circumstance of the IHS.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
DESCRIPTION OF REFERENCE NUMERALS
[0019] 100 Reverse clamping compression device for CPO or NPO [0020] 110 Main board [0021] 120 Mechanical Bolster [0022] 130 Mezzanine board [0023] 131 OM LGA socket [0024] 132 Optical Module [0025] 140 Compression cover [0026] 151 Floating standoff [0027] 152 Spring bolt [0028] 153 Compression spring [0029] 154 Shoulder screw
DETAILED DESCRIPTION
[0030] The embodiments of the present disclosure will be described below. Those skilled may easily understand other advantages and effects of the present disclosure according to the contents disclosed by the specification.
[0031] Please refer to
[0032] In the meantime, the terms upper, lower, left, right, intermediate, one, and the like as used in this specification are also for convenience of description, and are not intended to limit the scope of the present disclosure, and the change or adjustment of the relative relationship is considered to be within the scope of the present disclosure without substantial changes in technology.
[0033] An embodiment of the present disclosure provides a reverse clamping compression device for CPO or NPO to provide a clamping force for the assembly of CPO or NPO and to ensure the installation sequence.
[0034] The principle and implementation of the reverse clamping compression device for CPO or NPO of this embodiment will be described in detail below so that a person skilled in the art can understand the device.
[0035] As shown in
[0036] The reverse clamping compression device 100 for CPO or NPO in this embodiment is described in detail below.
[0037] As shown in
[0038] The mechanical bolster 120 is the main component of the whole reverse clamping device, and the mechanical bolster 120 is mounted on the main board 110. The mezzanine board 130 is mounted on the mechanical bolster 120, and the mechanical bolster 120 provides support and fixation for the mezzanine board 130 above it. The mezzanine card 130 includes several LGA sockets 131, each of the sockets 131 is populated by an optical module 132.
[0039] In this embodiment, the compression cover 140 is mounted above the optical modules 132, and the compression cover 140 is fastened to the optical modules 132. The compression cover 140 is a purely mechanical passive part for applying a compression force to the optical modules 132.
[0040] Specifically, in this embodiment, one or more first connecting holes are arranged on the circumference of the compression cover 140 for the fastenings to be attached, and correspondingly, one or more second connecting holes are arranged on the circumference of the mechanical bolster 120 for the fastening to be attached. The compression cover 140 is connected to the mechanical bolster 120 by means of the fastening passing through the first connecting holes and the second connecting holes.
[0041] In this embodiment, the compression cover 140 includes a number of openings, and the position and shape of each of the openings match with those of the corresponding optical module 132.
[0042] In this embodiment, each of the optical modules 132 includes an IHS on a top of it, and the size of each of the openings matches the size of the IHS. Each of the optical modules 132 is covered by the compression cover 140 on a circumstance of the IHS.
[0043] In this embodiment, the fastening attaches and fixes the compression cover 140 to the mechanical bolster 120 and protrudes below the mechanical bolster 120.
[0044] Specifically, in this embodiment, the fastening includes a floating standoff 151 placed on the top surface of the mechanical bolster 120, an spring element connected with the floating standoff 151 and passing through the mechanical bolster 120 and placed under the mechanical base 120, and a fastening passing through the compression cover 140 and connecting to the floating standoff 151.
[0045] In this embodiment, the spring element includes a spring bolt 152 connected with the floating standoff 151 and a compression spring 153 sleeved on the spring bolt 152. The fastening is a shoulder screw 154.
[0046] In this embodiment, the shoulder screw 154 connects the compression cover 140 to the floating standoff 151 below, and the engagement stroke of the shoulder screw 154 controls the compression distance of the compression spring 153. The mechanical bolster 120 is the main part of the whole reverse clamping device, as shown in
[0047] The working principle of the reverse clamping compression device for CPO or NPO in this embodiment is as follows.
[0048] The mechanical bolster 120 is placed below the mezzanine board 130 of the CPO or NPO, and the mechanical bolster 120 includes features that provide support and fixation to the mezzanine board 130. Several floating standoffs 151 are employed for transmitting the compression force of the LGA sockets 131 to the optical modules 132, and each of the floating standoffs 151 is connected to a spring bolt 152 of a compression spring 153 placed below the mechanical bolster 120. The compression cover 140 is assembled above the optical modules 132, and several shoulder screws 154 passing through the compression cover 140 are connected to the corresponding floating standoffs 151 located under the mezzanine board 130.
[0049] When the shoulder screws 154 are tightened, the floating standoffs 151 are pulled upward, the spring bolts 152 under the floating standoffs 151 are then pulled upward, afterwards the compression springs 153 will be compressed, therefore, the spring bolts 152 generate a reaction force that, through the above connection, acts in the reverse direction on the compression cover 140, and then the reaction force is transmitted as the required clamping force to the optical modules 132 through the contact surfaces between the compression covers 140 and the optical modules 132.
[0050] Compared to conventional technology, the reverse clamping compression device 100 for CPO or NPO of this embodiment utilizes the mezzanine board 130 and the space below the main board 110 to place the compression springs 153, therefore, the compression spring 153 does not occupy the space above the compression cover 140, and the heat sink module can maximize the use of the space above the module and greatly shorten the heat conduct path of the heat sink module. Further, the compression cover 140 is connected to the compression spring 153 below by mechanical screws, which ensures that the whole device is still assembled from top to bottom.
[0051] In summary, in the present disclosure, the compression cover above the optical modules is used to apply the clamping force to the optical modules, and the spring elements are placed in space below the main board, therefore, the space above the compression cover is not occupied, which can maximize the use of the space above the optical modules, greatly shorten the heat conduct path of the heat sink module, and ensure that the entire device is still assembled from top to bottom. Therefore, the present disclosure effectively overcomes shortcomings in the existing technology and has high industrial utilization value.
[0052] The above-mentioned embodiments are just used for exemplarily describing the principle and effects of the present disclosure instead of limiting the present disclosure. Those skilled in the art can make modifications or changes to the above-mentioned embodiments without going against the spirit and the range of the present disclosure. Therefore, all equivalent modifications or changes made by those who have common knowledge in the art without departing from the spirit and technical concept disclosed by the present disclosure shall be still covered by the claims of the present disclosure.